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caixa_core/
upgrade.rs

1//! Erlang/OTP-style appup — declarative upgrade instructions per
2//! prior caixa version. Composes with the `:behavior :on-state-change`
3//! callback to deliver state migration during hot upgrades.
4//!
5//! See `theory/INSPIRATIONS.md` §II.4 for the prior-art frame.
6//!
7//! ```lisp
8//! (defcaixa
9//!   :nome   "hello-rio"
10//!   :versao "0.2.0"
11//!   :upgrade-from
12//!     ((:from "0.1.0"
13//!       :instructions ((:load-module "hello-rio")
14//!                      (:state-change "lib/migrations/v01-to-v02.lisp")
15//!                      (:soft-purge "hello-rio-old")))
16//!      (:from "0.1.5"
17//!       :instructions ((:load-module "hello-rio")
18//!                      (:soft-purge "hello-rio-old")))))
19//! ```
20//!
21//! Each `(:from <prior>)` block declares the upgrade path *from* that
22//! version *to* the current `:versao`. wasm-operator picks the
23//! matching block at upgrade time, runs the instructions in order,
24//! and only swaps traffic to the new instance after all instructions
25//! succeed (transactional upgrade). On any failure, the current
26//! version stays load-bearing — a typed atomic upgrade.
27
28use std::path::PathBuf;
29
30use serde::{Deserialize, Serialize};
31use thiserror::Error;
32
33/// One upgrade instruction. The set mirrors OTP's appup low-level
34/// instructions: enough to express every common upgrade pattern,
35/// few enough that the wasm-operator can implement each
36/// deterministically.
37#[derive(
38    Serialize,
39    Deserialize,
40    Debug,
41    Clone,
42    PartialEq,
43    Eq,
44    gen_platform::TypedDispatcher,
45    gen_platform::Discriminant,
46    gen_platform::IsVariant,
47)]
48#[serde(tag = "kind", rename_all = "kebab-case")]
49pub enum UpgradeInstruction {
50    /// Load a new wasm module alongside the current one — the analog
51    /// of OTP's `code:load_module/1`. Both versions remain in memory
52    /// after this instruction; in-flight requests stay on the old
53    /// version, new requests route to the new version.
54    LoadModule { module: String },
55
56    /// Run a state-migration tatara-lisp file. Receives the old state
57    /// + the prior version string; returns the new state. Analog of
58    /// `gen_server:code_change/3`.
59    StateChange { script: PathBuf },
60
61    /// Wait for in-flight requests on a named module to drain, then
62    /// GC it — the analog of `code:soft_purge/1`. Default cooldown is
63    /// 60s; longer-running requests block the upgrade.
64    SoftPurge { module: String },
65
66    /// Discard a named module immediately, without waiting for
67    /// drain — the analog of `code:purge/1`. Used when we don't
68    /// care about in-flight callers (cron, oneShot).
69    Purge { module: String },
70
71    /// Fall back to a full restart for this entry. Used when a typed
72    /// upgrade is impossible (e.g. wasm component world incompatible).
73    Restart,
74}
75
76// Fleet-wide dispatcher-catalog registration. UpgradeInstruction is
77// the OTP-style hot-upgrade primitive (load_module/code_change/
78// soft_purge/purge/restart) — the first NON-ADAPTER consumer of
79// gen-platform's typed-dispatcher catamorphism, satisfying the ★★
80// "two classes of consumer" promotion criterion from
81// theory/QUIRK-APPLIER.md §V.1.
82//
83// Operators query via:
84//   gen dispatchers --from-catalog | jq '.[] | select(.label=="caixa.upgrade-instruction")'
85//
86// The substrate's lib/build/shared/fleet-catalog-coverage-test.nix
87// adds an assertion row for this label on the next snapshot refresh.
88gen_platform::register_dispatcher!("caixa.upgrade-instruction", UpgradeInstruction);
89
90/// One upgrade entry: the *prior* version we're upgrading from, plus
91/// the instruction sequence to execute.
92#[derive(Serialize, Deserialize, Debug, Clone, PartialEq, Eq)]
93#[serde(rename_all = "camelCase")]
94pub struct UpgradeFromEntry {
95    /// Semver of the *prior* version. Authored as a literal string;
96    /// validated lazily by [`UpgradeFromEntry::validate`].
97    pub from: String,
98
99    /// Ordered list of instructions to execute. Empty list = "no-op
100    /// upgrade" (rare; usually means only documentation changed).
101    #[serde(default)]
102    pub instructions: Vec<UpgradeInstruction>,
103}
104
105impl UpgradeFromEntry {
106    /// Prior-versao semver-2 literal this entry declares an upgrade
107    /// path *from* — the string the OTP-shape `release_handler:install_release/1`
108    /// analog matches the running caixa's `:versao` against at hot-
109    /// upgrade dispatch time to pick this entry's `:instructions`
110    /// sequence. Returned byte-for-byte from the typed slot's own
111    /// `String` storage; no cloning, no re-parsing.
112    ///
113    /// The M2 companion of the closed M3 mesh-slot scalar-accessor
114    /// family — sibling in shape to [`crate::Membro::versao_requirement`]
115    /// (a40b0e3), [`crate::Membro::nome`] (4a32abf), and the
116    /// [`crate::WitContract::{source, destination, world_ref}`]
117    /// (7f0fd43 / 0804823) / [`crate::Entrada::{hostname, destination}`]
118    /// (11f3dfe / 6db982c) `&str` accessors already routing every
119    /// per-mesh-slot-atom scalar-value axis through one typed dispatch
120    /// on the substrate primitive — extended here onto the first per-
121    /// M2-slot scalar-value axis. Every downstream consumer of the
122    /// M2 `:upgrade-from :from` axis (the [`UpgradeFromEntry::validate`]
123    /// SemVer-2 parse gate, the [`validate_upgrade_from`] cross-entry
124    /// duplicate-detection re-parse assertion, the
125    /// [`validate_upgrade_from_against_versao`] precedence gate,
126    /// the [`validate_upgrade_from_against_behavior`] state-change-
127    /// callback coherence gate, every per-arm error variant carrying
128    /// the offending `:from` verbatim for `feira lint` rendering)
129    /// now reads through this one accessor rather than open-coding
130    /// `&self.from` / `&entry.from` / `self.from.clone()` /
131    /// `entry.from.clone()`.
132    ///
133    /// A future extension of the axis (an M4 typed `:from`-range slot
134    /// composing multiple prior versions into one entry, an operator-
135    /// side pre-parsed [`semver::Version`] cache the accessor could
136    /// materialize behind the same `&str` return contract, a per-
137    /// cluster `:placement`-scoped prior-versao overlay the
138    /// `caixa-operator` reconciles ahead of dispatch) migrates as a
139    /// single caixa-core edit rather than a coordinated rewrite of
140    /// the four validate-side call sites + every downstream error-
141    /// variant carrying `:from`.
142    #[must_use]
143    pub fn prior_versao(&self) -> &str {
144        &self.from
145    }
146
147    /// Substrate-canonical per-`:upgrade-from :instructions`
148    /// OTP-appup migration-instruction-list slice-return accessor
149    /// every per-entry instructions-list reader keys off — returns
150    /// the author-declared `:instructions` list verbatim as a
151    /// `&[UpgradeInstruction]` slice-view over the same backing
152    /// buffer the raw `self.instructions.as_slice()` field access
153    /// borrows from. Non-optional: an empty slice is the load-bearing
154    /// "author declared `:instructions ()`" sentinel — the
155    /// `Vec<UpgradeInstruction>::default()`-produced empty tail the
156    /// [`UpgradeFromEntry::instructions`] field's own docstring already
157    /// names as the "no-op upgrade" shape (a metadata-only upgrade
158    /// entry — the operator's `:from`-match dispatch matches the entry
159    /// but runs no instructions, advancing straight to the "traffic
160    /// swap" step) and every peer within-entry cross-instruction gate
161    /// no-ops against without allocating a new `Vec` per gate.
162    ///
163    /// The `:upgrade-from :instructions` slot carries the per-`:from`
164    /// OTP-appup ordered instruction list the wasm-operator's hot-
165    /// upgrade dispatch materializes one per-instruction runtime
166    /// primitive from — the Erlang/OTP appup's per-`{from, to,
167    /// UpgradeInstructions, DowngradeInstructions}` entry's
168    /// `UpgradeInstructions` list (`code:load_module/1` /
169    /// `gen_server:code_change/3` / `code:soft_purge/1` /
170    /// `code:purge/1` / `restart_new_emulator` — see INSPIRATIONS
171    /// §II.4), projected through the tatara-lisp
172    /// `:upgrade-from ((:from … :instructions …))` author surface
173    /// onto a typed `Vec<UpgradeInstruction>` whose per-element
174    /// variant is [`UpgradeInstruction::LoadModule`] /
175    /// [`UpgradeInstruction::StateChange`] /
176    /// [`UpgradeInstruction::SoftPurge`] / [`UpgradeInstruction::Purge`]
177    /// / [`UpgradeInstruction::Restart`]. Every downstream consumer
178    /// that fans on the per-entry instruction list keys off this
179    /// slice (the [`UpgradeFromEntry::validate`] per-instruction
180    /// shape-check fan-out, the seven paired within-entry cross-
181    /// instruction gates [`Self::validate_restart_exclusive`] /
182    /// [`Self::validate_state_change_ordering`] /
183    /// [`Self::validate_purge_ordering`] /
184    /// [`Self::validate_state_change_before_cleanup`] /
185    /// [`Self::validate_load_singularity`] /
186    /// [`Self::validate_state_change_singularity`] /
187    /// [`Self::validate_cleanup_singularity`], the layout-side
188    /// [`crate::layout::StandardLayout`]'s per-`:state-change`
189    /// script-existence fan-out
190    /// ([`crate::layout::LayoutError::MissingEntry`]'s
191    /// `LAYOUT_MISSING_ENTRY_KIND_UPGRADE_SCRIPT` arm), the cross-slot
192    /// [`validate_upgrade_from_against_behavior`] gate's per-entry
193    /// `:state-change`-instruction detection loop, every future
194    /// wasm-operator (M2.5) per-`:from`-match hot-upgrade dispatch's
195    /// per-instruction runtime-primitive fan-out, every future M4
196    /// `mesh.pleme.io/v1alpha1/Caixa` CR materializer's per-entry
197    /// upgrade-plan admission-webhook fan-out).
198    ///
199    /// Prior to this lift the `.instructions` `Vec<UpgradeInstruction>`
200    /// was accessed inline at nine production sites across
201    /// `caixa-core/src/upgrade.rs` and `caixa-core/src/layout.rs` —
202    /// the [`UpgradeFromEntry::validate`] per-instruction shape-check
203    /// fan-out (`for instr in &self.instructions`), the paired
204    /// [`Self::validate_restart_exclusive`] restart-count / other-kind
205    /// projections + `.len()` probe (three raw-access sites in one
206    /// gate), the [`Self::validate_state_change_ordering`] /
207    /// [`Self::validate_purge_ordering`] /
208    /// [`Self::validate_state_change_before_cleanup`] /
209    /// [`Self::validate_load_singularity`] /
210    /// [`Self::validate_state_change_singularity`] /
211    /// [`Self::validate_cleanup_singularity`] within-entry cross-
212    /// instruction gate traversal heads, the peer
213    /// [`validate_upgrade_from_against_behavior`] cross-slot
214    /// composition gate's `for instr in &entry.instructions`
215    /// per-entry `:state-change` detection loop, and the
216    /// [`crate::layout::StandardLayout`]-side
217    /// `for instr in &entry.instructions` per-`:state-change`
218    /// script-existence fan-out — nine open-coded field-accesses
219    /// that expressed no compile-time link back to the typed slot.
220    /// A future extension of the `:instructions` axis to a richer
221    /// author surface (a per-cluster overlay the operator pins
222    /// through a future `:upgrade-from :instructions-overrides` slot
223    /// so a canary cluster runs a `(:state-change …)` before the
224    /// production fleet does, a per-tenant instruction-list overlay
225    /// the M4 CR materializer resolves per-CR to inject cluster-
226    /// specific `(:soft-purge …)` cooldown adjustments, a promotion
227    /// of the plain `Vec<UpgradeInstruction>` to a richer
228    /// `{static, dynamic}` partition once virtual-actor-style
229    /// dynamic-instruction composition (an operator-derived
230    /// `(:load-module …)` sequence computed from the running
231    /// module set at upgrade time) comes into typed scope, a
232    /// per-instruction pre-condition scalar the future adaptive-
233    /// upgrade engine reads to bias per-instruction retry
234    /// strategy) would have had to be threaded through all nine
235    /// open-coded copies in lockstep or one consumer would silently
236    /// disagree with the peers on which instruction sequence a
237    /// given `:upgrade-from` entry resolves to — the per-
238    /// instruction shape-check reading the raw slot while the
239    /// paired within-entry ordering gates read an operator-resolved
240    /// slot would silently split the build-time per-entry gate
241    /// cohort from the layout-side script-existence gate + the
242    /// cross-slot behavior-composition gate + the runtime hot-
243    /// upgrade dispatch, a nine-consumer split across the seven
244    /// within-entry cross-instruction gates + the layout invariant +
245    /// the cross-slot composition gate far from the source
246    /// `caixa.lisp` with no field naming the instruction-sequence-
247    /// drift root cause. Lifting the resolution rule to a typed
248    /// method on the substrate primitive means every downstream
249    /// consumer of the per-entry OTP-appup instruction-list surface
250    /// reaches for exactly one typed dispatch — the resolver's
251    /// accept-set migrates as a unit on any future axis addition.
252    ///
253    /// Fifth slice-return (`&[T]`) accessor on any M2 or M3 typed
254    /// slot — sibling to the seed M2
255    /// [`crate::SupervisorSpec::children`] (bc92bce) `&[ChildSpec]`
256    /// accessor on the peer per-`:supervisor` static-child-list
257    /// `Vec`-carry axis, the M3 [`crate::Placement::clusters`]
258    /// (a6e18d7) `&[String]` accessor on the peer per-`:placement`
259    /// distribution-target-list `Vec`-carry axis, the M3
260    /// [`crate::AplicacaoSpec::membros`] (6c77e36) `&[Membro]`
261    /// accessor on the peer per-`:membros` node-list `Vec`-carry
262    /// axis, and the M3 [`crate::AplicacaoSpec::contratos`]
263    /// (0dcc926) `&[WitContract]` accessor on the peer per-
264    /// `:contratos` edge-list `Vec`-carry axis. This lift closes the
265    /// last unlifted `Vec`-carry axis on any M2 or M3 typed slot in
266    /// the substrate — the four peer axes named in the
267    /// [`crate::SupervisorSpec::children`] seed docstring
268    /// (`Placement::clusters`, `AplicacaoSpec::membros`,
269    /// `AplicacaoSpec::contratos`, `UpgradeFromEntry::instructions`)
270    /// are now all closed. The per-`UpgradeFromEntry` type carried
271    /// two axes: the scalar `Copy`-return
272    /// [`UpgradeFromEntry::prior_versao`] (75d27a8) on the
273    /// `:from` axis, and now the slice-return
274    /// [`UpgradeFromEntry::instructions`] on the peer
275    /// `:instructions` axis. Named `instructions()` to match the
276    /// storage field's name verbatim and the tatara-lisp
277    /// author-surface term (`:instructions`) the field's own
278    /// docstring already carries; the accessor's identity maps
279    /// onto the canonical OTP-appup vocabulary the
280    /// [`crate::upgrade`] module doc already reaches for ("runs
281    /// the instructions in order"). Returns `&[UpgradeInstruction]`
282    /// (not `&Vec<UpgradeInstruction>`) because every downstream
283    /// consumer of the instruction list treats it as a read-only
284    /// sequence — the slice-view is the narrowest borrow that
285    /// supports every present + roadmapped consumer (`.iter()`,
286    /// `.len()`, `.filter(...).count()`) without leaking the
287    /// backing `Vec`'s grow/push/reserve surface that no consumer
288    /// of the typed view reaches for (the storage-side `Vec`
289    /// remains reachable through the `pub instructions` field for
290    /// the mutation-carrying `Serialize`/`Deserialize` derive
291    /// round-trip and per-test fixture-mutation paths).
292    #[must_use]
293    pub fn instructions(&self) -> &[UpgradeInstruction] {
294        self.instructions.as_slice()
295    }
296
297    /// Verify the `:from` field is a valid semver, every instruction's
298    /// typed shape, the within-entry `(:restart)`-exclusivity invariant
299    /// (an entry containing `(:restart)` must contain exactly one
300    /// `(:restart)` and nothing else — see
301    /// [`Self::validate_restart_exclusive`]), the within-entry
302    /// state-change-ordering invariant (every `(:state-change …)` must
303    /// be preceded by a `(:load-module …)` — see
304    /// [`Self::validate_state_change_ordering`]), the within-entry
305    /// purge-ordering invariant (every `(:soft-purge …)` / `(:purge …)`
306    /// must be preceded by a `(:load-module …)` — see
307    /// [`Self::validate_purge_ordering`]), the within-entry
308    /// state-change-before-cleanup ordering invariant (no
309    /// `(:state-change …)` may appear after any `(:soft-purge …)` /
310    /// `(:purge …)` — see
311    /// [`Self::validate_state_change_before_cleanup`]), the within-
312    /// entry load-singularity invariant (no module appears as the
313    /// target of `(:load-module …)` more than once — see
314    /// [`Self::validate_load_singularity`]), the within-entry
315    /// state-change-singularity invariant (no script appears as the
316    /// target of `(:state-change …)` more than once — see
317    /// [`Self::validate_state_change_singularity`]), and the within-
318    /// entry cleanup-singularity invariant (no module appears as the
319    /// target of `(:soft-purge …)` or `(:purge …)` more than once
320    /// total — see [`Self::validate_cleanup_singularity`]).
321    pub fn validate(&self) -> Result<(), UpgradeError> {
322        use semver::Version;
323        Version::parse(self.prior_versao()).map_err(|e| UpgradeError::FromInvalid {
324            from: self.prior_versao().to_string(),
325            reason: e.to_string(),
326        })?;
327        // Per-instruction typed shape: kind-tagged `:module` /
328        // `:script` value-shape gates fire here, *before* the
329        // within-entry restart-exclusivity gate below — so a
330        // malformed-shape diagnostic on a Module/Script-bearing
331        // instruction surfaces with its narrower self-locating
332        // wording (`ModuleEmpty`, `ModuleInvalid`, `EmptyScript`,
333        // `AbsoluteScript`, `ParentEscapeScript`) rather than
334        // collapsing two unrelated authoring errors into a single
335        // exclusivity diagnostic. Same empty-first cascade discipline
336        // every peer DNS-1123 / path-shape gate inside this module
337        // uses (`validate_module`'s ModuleEmpty arm precedes the
338        // DNS-1123 predicate; `validate` on `StateChange` consults
339        // the lifted `is_sandboxed_relative_path` shape gate first).
340        // Route the per-instruction shape-check fan-out through the
341        // lifted [`Self::instructions`] slice-return accessor rather
342        // than the raw `self.instructions` field access — first of
343        // nine paired production consumers of the per-`:upgrade-from
344        // :instructions` OTP-appup migration-instruction-list surface
345        // that now key off exactly one typed dispatch on the substrate
346        // primitive.
347        for instr in self.instructions() {
348            instr.validate()?;
349        }
350        self.validate_restart_exclusive()?;
351        self.validate_state_change_ordering()?;
352        self.validate_purge_ordering()?;
353        self.validate_state_change_before_cleanup()?;
354        self.validate_load_singularity()?;
355        self.validate_state_change_singularity()?;
356        self.validate_cleanup_singularity()?;
357        Ok(())
358    }
359
360    /// Reject `:upgrade-from :instructions` lists that carry
361    /// `(:restart)` alongside any other instruction, or that carry
362    /// more than one `(:restart)`. The valid Restart-bearing shape is
363    /// exactly `((:restart))` — a single `Restart` as the entry's
364    /// whole instructions list.
365    ///
366    /// Per [`UpgradeInstruction::Restart`]'s doc comment, `(:restart)`
367    /// is the *fallback* for an entry whose typed upgrade is
368    /// impossible (wasm component-model world incompatibility,
369    /// irreversible state shape change). The fallback is terminal by
370    /// construction: the operator restarts the pod and the new version
371    /// comes up fresh, so any other instructions in the same entry
372    /// are dead code in both directions — either the typed sequence
373    /// would have succeeded and `(:restart)` is unreached, or it
374    /// wouldn't and the typed instructions are dead because the
375    /// operator restarts anyway. Two canonical authoring footguns
376    /// close here:
377    ///
378    ///   - `((:load-module …) (:state-change …) (:restart))` — the
379    ///     "I'll try the typed path *then* restart anyway" footgun.
380    ///     There is no coherent OTP-shaped semantic for this: if the
381    ///     typed sequence succeeds, the trailing restart discards the
382    ///     work that just succeeded (defeating the whole point of
383    ///     declaring it); if it fails, the restart is never reached
384    ///     because the entry already failed.
385    ///   - `((:restart) (:restart))` — multiple `Restart` variants in
386    ///     one entry. The fallback is a single semantic; repeating it
387    ///     is at best redundant, at worst suggests the author thought
388    ///     the second one would re-trigger after the first.
389    ///
390    /// Same within-entry exclusivity discipline OTP's `relup` enforces
391    /// at the `restart_new_emulator | restart_emulator` instruction
392    /// boundary — those instructions are terminal in the upgrade
393    /// script (`systools(3)` rejects sequences that continue past
394    /// them); pleme-io lifts the same shape to a build-time gate,
395    /// matching the CAIXA-SDLC §III "build errors, not runtime
396    /// surprises" frame.
397    ///
398    /// Same within-entry cross-instruction discipline the
399    /// [`crate::AplicacaoSpec::validate_placement`] strategy ↔
400    /// shard-key partition (934bc58) and
401    /// [`validate_upgrade_from_against_versao`]'s `:from` ↔ `:versao`
402    /// precedence partition (de7ab1a) apply on cross-slot axes — now
403    /// extended onto the first within-list cross-instruction axis on
404    /// the `:upgrade-from` typed slot.
405    fn validate_restart_exclusive(&self) -> Result<(), UpgradeError> {
406        // Route the paired restart-count / instructions-len / other-
407        // kind projections through the lifted [`Self::instructions`]
408        // slice-return accessor rather than the raw `self.instructions`
409        // field access — three raw-access sites in one gate collapse
410        // onto exactly one typed dispatch on the substrate primitive.
411        //
412        // The paired positive / negated `Self::Restart` arm-discriminator
413        // predicates route through the `gen_platform::IsVariant`
414        // derive-generated [`UpgradeInstruction::is_restart`] rather than
415        // the raw `matches!(i, UpgradeInstruction::Restart)` /
416        // `!matches!(i, UpgradeInstruction::Restart)` open-coded pattern-
417        // matches — same closed-set-typed-enum arm-discriminator dispatch
418        // discipline the sibling [`crate::CaixaKind`] `IsVariant` derive
419        // (f5bba80) extended onto its ten `caixa.kind() == CaixaKind::X`
420        // / `!= CaixaKind::X` production sites in the substrate's own
421        // layout invariant verifier + typed-view projection gates,
422        // extended here onto the last unlifted `matches!`-based
423        // arm-discriminator axis on the [`UpgradeInstruction`] closed-set
424        // typed enum. A future sixth `UpgradeInstruction` arm (an
425        // adaptive-upgrade-shaped `AwaitReadiness` gate the M2.5
426        // wasm-operator's hot-upgrade runtime could adopt to bracket the
427        // typed instruction sequence against a per-cluster readiness
428        // probe, a `Downgrade` variant OTP's `relup` acknowledges on the
429        // reverse axis, a `CanaryTraffic` split-traffic variant the M4 CR
430        // materializer could resolve per-CR) migrates as a single
431        // enum-declaration edit — the derive auto-generates the paired
432        // `.is_<new_arm>()` predicate; every consumer inherits the new
433        // arm on the next re-derive, rather than the two `matches!` sites
434        // here having to be threaded through in lockstep.
435        let instructions = self.instructions();
436        let restart_count = instructions.iter().filter(|i| i.is_restart()).count();
437        if restart_count == 0 {
438            return Ok(());
439        }
440        if restart_count == 1 && instructions.len() == 1 {
441            return Ok(());
442        }
443        let other_kinds: Vec<&'static str> = instructions
444            .iter()
445            .filter(|i| !i.is_restart())
446            .map(UpgradeInstruction::lisp_form)
447            .collect();
448        Err(UpgradeError::RestartNotExclusive {
449            from: self.prior_versao().to_string(),
450            restart_count,
451            other_kinds,
452        })
453    }
454
455    /// Reject an entry whose `(:state-change …)` is not preceded by a
456    /// `(:load-module …)` in the same `:instructions` list.
457    ///
458    /// `StateChange` is the `gen_server:code_change/3` analog
459    /// ([`UpgradeInstruction::StateChange`] doc; INSPIRATIONS §II.4):
460    /// it runs the migration script that folds the *old* state into the
461    /// shape the *new* code expects. In OTP, `code_change/3` is invoked
462    /// in the context of the newly-loaded code — `release_handler`
463    /// always loads the new module before running the advanced update
464    /// that triggers the callback. caixa decomposes that into two
465    /// explicit instructions (`LoadModule` brings the new version up
466    /// "alongside the current one"; `StateChange` migrates the state),
467    /// and the module doc pins that the operator "runs the instructions
468    /// in order" and only swaps traffic after all succeed. So a
469    /// `:state-change` with no preceding `:load-module` migrates state
470    /// into code that was never loaded — the migration script runs while
471    /// the only resident version is still the *old* one, which expects
472    /// the *old* state. Two authoring footguns close here:
473    ///
474    ///   - `((:state-change "…"))` — the "I wrote the migration but
475    ///     forgot to load the new module" footgun. The new code that
476    ///     defines the new state representation (and that the migration
477    ///     output is destined for) never comes up; the operator runs
478    ///     the script against the old code and either no-ops or corrupts
479    ///     live state.
480    ///   - `((:state-change "…") (:load-module "…"))` — the
481    ///     right-instructions-wrong-order footgun. Because the operator
482    ///     executes in declared order, the migration runs *before* the
483    ///     new code is resident, then the load brings up code expecting
484    ///     already-migrated state that the just-run script produced
485    ///     against the old version's shape. The canonical order is
486    ///     `(:load-module …) (:state-change …) (:soft-purge …)`
487    ///     (module doc example).
488    ///
489    /// Same within-entry cross-instruction discipline as
490    /// [`Self::validate_restart_exclusive`] (the `(:restart)` terminal-
491    /// exclusivity gate it runs beside): both reject an
492    /// `:instructions` list whose instructions are individually
493    /// well-shaped but jointly incoherent, at the typed build surface
494    /// rather than as a runtime surprise. Runs *after*
495    /// `validate_restart_exclusive` so a `((:state-change …)
496    /// (:restart))` shape still surfaces the more-fundamental
497    /// `RestartNotExclusive` (a valid `(:restart)` entry is `(:restart)`
498    /// alone, so no Restart-bearing entry reaches this gate carrying a
499    /// `StateChange`).
500    fn validate_state_change_ordering(&self) -> Result<(), UpgradeError> {
501        // Route the per-instruction load-family arm-discriminator through
502        // the `gen_platform::IsVariant`-derive-generated
503        // [`UpgradeInstruction::is_load_module`] predicate and the
504        // per-instruction migration-family `:script` scalar projection
505        // through the sibling lifted [`UpgradeInstruction::declared_path`]
506        // `Option<&PathBuf>` accessor rather than the raw two-arm
507        // `match instr { UpgradeInstruction::LoadModule { .. } =>
508        // loaded = true, UpgradeInstruction::StateChange { script } if
509        // !loaded => …, _ => {} }` open-coded pattern-match — closes the
510        // last unlifted `match`-shaped per-arm-hand-rolled load-family
511        // arm-discriminator + migration-family script-projection pair
512        // inside `impl UpgradeFromEntry`. Sibling of the peer
513        // [`Self::validate_purge_ordering`] (580d0f1) routing already
514        // lifted onto [`UpgradeInstruction::is_load_module`] on the paired
515        // load → cleanup ordering axis, the peer
516        // [`Self::validate_load_singularity`] (c9ce91d) routing lifted
517        // onto the [`UpgradeInstruction::is_load_module`] +
518        // [`UpgradeInstruction::declared_module`] pair on the singularity
519        // axis, and the peer [`Self::validate_state_change_singularity`]
520        // routing already lifted onto the sibling
521        // [`UpgradeInstruction::declared_path`] `Option<&PathBuf>`
522        // accessor on the migration-family script-projection axis — both
523        // ordering-gate load-family sticky-latch dispatches now key off
524        // exactly one typed dispatch on the substrate primitive for
525        // their load-family arm-discriminator, and both migration-family
526        // projection sites (this ordering gate + the peer singularity
527        // gate) now key off exactly one typed dispatch on the substrate
528        // primitive for the `:script`-carrying axis. A future sixth arm
529        // on [`UpgradeInstruction`] (an `AwaitReadiness` gate, a
530        // `Downgrade` reverse-axis variant OTP's `relup` acknowledges, a
531        // `CanaryTraffic` split-traffic variant the M4 CR materializer
532        // could resolve per-CR — INSPIRATIONS §II.4) migrates as one
533        // enum-declaration edit through the derive rather than a
534        // coordinated rewrite of every ordering / singularity gate's
535        // per-arm hand-rolled pattern-match. Byte-identity of this
536        // dispatch against the pre-lift `match` shape is pinned by
537        // [`tests::validate_state_change_ordering_projects_scripts_through_is_load_module_and_declared_path_accessors`].
538        let mut loaded = false;
539        for instr in self.instructions() {
540            if instr.is_load_module() {
541                loaded = true;
542            } else if !loaded && let Some(script) = instr.declared_path() {
543                return Err(UpgradeError::StateChangeWithoutPriorLoad {
544                    from: self.prior_versao().to_string(),
545                    script: script.clone(),
546                });
547            }
548        }
549        Ok(())
550    }
551
552    /// Reject an entry whose `(:soft-purge …)` or `(:purge …)` is not
553    /// preceded by a `(:load-module …)` in the same `:instructions` list.
554    ///
555    /// `SoftPurge` and `Purge` are the `code:soft_purge/1` /
556    /// `code:purge/1` analogs (INSPIRATIONS §II.4): they remove the
557    /// *old* module from memory after the new one is resident. OTP's
558    /// two-phase code load is `code:load_module/1` *then*
559    /// `code:soft_purge/1` — load the new version alongside the old
560    /// (both in memory, new requests route to new), then purge the old
561    /// after in-flight callers drain. caixa decomposes that into two
562    /// explicit instructions (`LoadModule` brings the new version up
563    /// "alongside the current one", per [`UpgradeInstruction::LoadModule`]
564    /// doc; `SoftPurge` "waits for in-flight requests on a named module
565    /// to drain, then GC it", per [`UpgradeInstruction::SoftPurge`] doc),
566    /// and the module doc pins that the operator "runs the instructions
567    /// in order". So a `:soft-purge` / `:purge` with no preceding
568    /// `:load-module` purges old code while the only resident version is
569    /// still the *same* old code, leaving the upgrade entry asking the
570    /// operator to drain or discard the live module with no replacement
571    /// resident. Two authoring footguns close here:
572    ///
573    ///   - `((:soft-purge "…"))` / `((:purge "…"))` — the "I wrote the
574    ///     cleanup but forgot to load the new module" footgun. The new
575    ///     code never comes up alongside; the operator either drains the
576    ///     old version to nothing (`SoftPurge`) or discards it outright
577    ///     mid-request (`Purge`), with no replacement to route in-flight
578    ///     or future requests to.
579    ///   - `((:soft-purge "…") (:load-module "…"))` /
580    ///     `((:purge "…") (:load-module "…"))` — the right-instructions-
581    ///     wrong-order footgun. Because the operator executes in declared
582    ///     order, the cleanup runs *before* the new code is resident,
583    ///     leaving a window during which neither version is available;
584    ///     the canonical order is `(:load-module …) (:state-change …)
585    ///     (:soft-purge …)` (module doc example).
586    ///
587    /// Same within-entry cross-instruction discipline as
588    /// [`Self::validate_state_change_ordering`] (the `:state-change`-
589    /// ordering gate it runs beside): both close the same load-before-X
590    /// post-condition on the OTP appup ordering contract, now extending
591    /// the typed coverage from "new code resident before its state
592    /// migration runs" to "new code resident before the old code is
593    /// drained or discarded" — the second half of OTP's two-phase code
594    /// load. Runs *after* `validate_state_change_ordering` so an entry
595    /// like `((:state-change …) (:soft-purge …))` surfaces the more-
596    /// fundamental `StateChangeWithoutPriorLoad` first (both instructions
597    /// are load-less, but state-change is the load-bearing semantic — the
598    /// purge is meaningless either way without a preceding load, so the
599    /// author should see the migration-side diagnostic first).
600    fn validate_purge_ordering(&self) -> Result<(), UpgradeError> {
601        let mut loaded = false;
602        for instr in self.instructions() {
603            // Route the per-instruction cleanup-family arm-discriminator
604            // through the lifted [`UpgradeInstruction::is_cleanup`] typed
605            // predicate rather than the raw
606            // `UpgradeInstruction::SoftPurge { module } |
607            // UpgradeInstruction::Purge { module }` open-coded per-arm
608            // union pattern-match — the first of three within-entry cross-
609            // instruction cleanup-facing gates now keys off exactly one
610            // typed dispatch on the substrate primitive, so any future
611            // fifth cleanup-shaped variant (a `Discard` variant the
612            // `code:delete/1` peer inspires) added to
613            // [`UpgradeInstruction`] + a composing `|| self.is_discard()`
614            // term at [`UpgradeInstruction::is_cleanup`] reaches this gate
615            // through the accessor's one body. The paired cleanup-arm
616            // `:module` scalar is routed through the sibling
617            // [`UpgradeInstruction::declared_module`] accessor rather than
618            // the raw pattern-bound `module` binding — same substrate-
619            // primitive-owns-the-scalar discipline every peer
620            // per-`UpgradeInstruction` scalar-value axis already routes
621            // through, with the `is_cleanup`-implies-`declared_module`-is-
622            // `Some` composition pin at
623            // [`tests::upgrade_instruction_is_cleanup_implies_declared_module_is_some`]
624            // making the `.expect(…)` structurally infallible at build
625            // time. Peer of the sibling
626            // [`UpgradeFromEntry::validate_restart_exclusive`]
627            // paired positive / negated
628            // [`UpgradeInstruction::is_restart`] routing (915a934) on the
629            // per-arm terminal-fallback partition — same closed-set-typed-
630            // enum arm-discriminator dispatch discipline extended from
631            // the single-arm terminal-fallback family onto the two-arm
632            // cleanup family here.
633            //
634            // Route the paired load-family arm-discriminator through the
635            // `gen_platform::IsVariant`-derive-generated
636            // [`UpgradeInstruction::is_load_module`] predicate rather than
637            // the raw `matches!(instr, UpgradeInstruction::LoadModule
638            // { .. })` open-coded pattern-match — closes the last
639            // unlifted `matches!`-based per-variant arm-discriminator
640            // axis on the [`UpgradeInstruction`] closed-set typed enum,
641            // sibling of the [`UpgradeInstruction::is_restart`] terminal-
642            // fallback routing (915a934) and the
643            // [`UpgradeInstruction::is_cleanup`] two-arm cleanup-family
644            // routing (0bc469f) that already lifted the paired
645            // arm-discriminator sites in this method. Every arm-family
646            // partition the gate keys off — load-family (`LoadModule`),
647            // cleanup-family (`SoftPurge | Purge`), terminal-fallback
648            // (`Restart`) — now consults exactly one typed dispatch on
649            // the substrate primitive, so a future sixth arm added to
650            // [`UpgradeInstruction`] (an `AwaitReadiness` gate, a
651            // `Downgrade` reverse-axis variant OTP's `relup` acknowledges,
652            // a `CanaryTraffic` split-traffic variant the M4 CR
653            // materializer could resolve per-CR — INSPIRATIONS §II.4)
654            // migrates as a single enum-declaration edit through the
655            // derive rather than a scattered per-consumer rewrite. The
656            // partition invariant is pinned by
657            // [`tests::upgrade_instruction_is_load_module_predicate_partitions_the_arm_set`]
658            // and the byte-identity of this dispatch against the pre-lift
659            // `matches!` pattern by
660            // [`tests::validate_purge_ordering_routes_through_is_load_module_predicate`].
661            if instr.is_load_module() {
662                loaded = true;
663            } else if instr.is_cleanup() && !loaded {
664                return Err(UpgradeError::PurgeWithoutPriorLoad {
665                    from: self.prior_versao().to_string(),
666                    kind: instr.lisp_form(),
667                    module: instr
668                        .declared_module()
669                        .expect("is_cleanup() implies declared_module() is Some")
670                        .to_string(),
671                });
672            }
673        }
674        Ok(())
675    }
676
677    /// Reject an entry whose `(:state-change …)` appears after any
678    /// `(:soft-purge …)` / `(:purge …)` in the same `:instructions`
679    /// list — completing the canonical OTP appup `code:load_module/1`
680    /// → `gen_server:code_change/3` → `code:soft_purge/1` ordering
681    /// chain on the typed `:upgrade-from` slot.
682    ///
683    /// `StateChange` is the `gen_server:code_change/3` analog
684    /// ([`UpgradeInstruction::StateChange`] doc; INSPIRATIONS §II.4
685    /// verbatim: "State migration uses `gen_server:code_change/3` …
686    /// migrate state from v0.1.0 shape to current shape"). The
687    /// callback's input is the *prior* version's state shape, which
688    /// only exists while the prior code is still resident — the running
689    /// `gen_server` processes hold the v0.1.0 state, and the operator's
690    /// dispatch invokes `code_change/3` to fold that state into the
691    /// current shape. `SoftPurge` / `Purge` are the `code:soft_purge/1`
692    /// / `code:purge/1` analogs ([`UpgradeInstruction::SoftPurge`] /
693    /// [`UpgradeInstruction::Purge`] docs): they drain or discard the
694    /// *old* module after the new one is resident. The operator runs
695    /// instructions in declared order (module doc), so a cleanup ahead
696    /// of a state-change discards the prior code before the migration
697    /// fold runs against the state it held — the canonical OTP error
698    /// mode "`code_change/3` invoked on a purged module" the
699    /// `release_handler` enforces by always emitting the migration
700    /// callback before the soft-purge step.
701    ///
702    /// `systools`-generated `.relup` files always emit `code_change`
703    /// before `soft_purge` for this reason; the appup cookbook's
704    /// canonical pattern (`[{load_module, m}, {update, m, soft},
705    /// {soft_purge, m}]`) places the migration-triggering `update`
706    /// strictly between the load and the cleanup. The caixa module
707    /// doc pins the same canonical order verbatim — `(:load-module
708    /// …) (:state-change …) (:soft-purge …)` — and this gate makes
709    /// that ordering a structural property at build time. Three
710    /// authoring footguns close here:
711    ///
712    ///   - `((:load-module "x") (:soft-purge "x-old") (:state-change
713    ///     "lib/m.lisp"))` — the right-instructions-wrong-order
714    ///     footgun on the migrate ↔ cleanup axis. Because the operator
715    ///     executes in declared order, the cleanup drains the v0.1.0
716    ///     module to nothing before the migration callback runs, and
717    ///     the script either no-ops (no v0.1.0 state left to fold) or
718    ///     crashes (`code_change/3` invoked on an unloaded version).
719    ///     The canonical order is `(:load-module …) (:state-change
720    ///     …) (:soft-purge …)` (module doc example).
721    ///   - `((:load-module "x") (:purge "x-old") (:state-change
722    ///     "lib/m.lisp"))` — same shape on the more catastrophic
723    ///     `:purge` variant. The immediate-discard semantic destroys
724    ///     v0.1.0 state mid-request; the trailing migration script
725    ///     has nothing to fold from and the `gen_server` processes that
726    ///     held v0.1.0 state were killed by the `:purge`.
727    ///   - `((:load-module "x") (:soft-purge "x-old") (:state-change
728    ///     "lib/m1.lisp") (:soft-purge "y-old"))` — the "migration
729    ///     sandwiched between two cleanups" footgun. The first
730    ///     cleanup discards v0.1.0; the migration runs against
731    ///     drained state; the second cleanup is irrelevant. The first
732    ///     cleanup → state-change boundary is the load-bearing defect
733    ///     surfaced.
734    ///
735    /// Same within-entry cross-instruction discipline as
736    /// [`Self::validate_state_change_ordering`] (the load → state-
737    /// change ordering gate it runs after) and
738    /// [`Self::validate_purge_ordering`] (the load → cleanup ordering
739    /// gate it runs after): all three close one boundary of the OTP
740    /// canonical sequence `code:load_module/1` →
741    /// `gen_server:code_change/3` → `code:soft_purge/1`. The
742    /// state-change-ordering gate closes the load → migrate boundary;
743    /// the purge-ordering gate closes the load → cleanup boundary;
744    /// this gate closes the migrate → cleanup boundary, completing
745    /// the typed coverage of the canonical sequence. Runs *after*
746    /// [`Self::validate_purge_ordering`] (and therefore after
747    /// [`Self::validate_state_change_ordering`]) so an entry like
748    /// `((:soft-purge "x-old") (:state-change "lib/m.lisp"))` —
749    /// which violates *both* the purge-without-load gate and this
750    /// state-change-after-cleanup gate — surfaces the more-
751    /// fundamental `PurgeWithoutPriorLoad` first (the missing-load
752    /// defect is load-bearing; once a coherent `(:load-module …)`
753    /// precedes both, the migrate ↔ cleanup ordering becomes the
754    /// next live defect). Runs *before* the per-instruction-class
755    /// singularity gates ([`Self::validate_load_singularity`],
756    /// [`Self::validate_state_change_singularity`],
757    /// [`Self::validate_cleanup_singularity`]) so an entry like
758    /// `((:load-module "x") (:soft-purge "x-old") (:state-change
759    /// "lib/m.lisp") (:state-change "lib/m.lisp"))` — which violates
760    /// *both* this ordering gate and the state-change-singularity
761    /// gate — surfaces the ordering defect first; the canonical
762    /// "ordering before singularity" precedence the peer
763    /// `validate_state_change_ordering` / `validate_purge_ordering`
764    /// gates already establish.
765    ///
766    /// Detection: linear scan of the instructions list with a
767    /// `prior_cleanup: Option<(module, kind)>` sticky-once latch
768    /// recording the first cleanup encountered; on any subsequent
769    /// `StateChange` the gate fires with the script + the prior
770    /// cleanup's kind/module. Diagnostic-order pin: the first
771    /// colliding state-change-after-cleanup pair surfaces, not the
772    /// last — mirrors every peer ordering gate's first-collision
773    /// posture ([`Self::validate_state_change_ordering`] returns on
774    /// the first `StateChange` without prior load,
775    /// [`Self::validate_purge_ordering`] on the first cleanup
776    /// without prior load).
777    fn validate_state_change_before_cleanup(&self) -> Result<(), UpgradeError> {
778        let mut prior_cleanup: Option<(&str, &'static str)> = None;
779        for instr in self.instructions() {
780            // Route the per-instruction cleanup-family arm-discriminator
781            // through the lifted [`UpgradeInstruction::is_cleanup`] typed
782            // predicate rather than the raw
783            // `UpgradeInstruction::SoftPurge { module } |
784            // UpgradeInstruction::Purge { module }` open-coded per-arm
785            // union pattern-match — the second of three within-entry
786            // cross-instruction cleanup-facing gates the peer
787            // [`Self::validate_purge_ordering`] routing already lifted;
788            // both now key off exactly one typed dispatch on the substrate
789            // primitive so the "which arms belong to the cleanup family"
790            // question resolves at exactly one caixa-core edit. The
791            // sticky-once latch's `:module` scalar is routed through the
792            // sibling [`UpgradeInstruction::declared_module`] accessor
793            // rather than the raw pattern-bound `module.as_str()`
794            // projection, with the `is_cleanup`-implies-`declared_module`-
795            // is-`Some` composition pin at
796            // [`tests::upgrade_instruction_is_cleanup_implies_declared_module_is_some`]
797            // making the `.expect(…)` structurally infallible at build
798            // time.
799            if instr.is_cleanup() && prior_cleanup.is_none() {
800                prior_cleanup = Some((
801                    instr
802                        .declared_module()
803                        .expect("is_cleanup() implies declared_module() is Some"),
804                    instr.lisp_form(),
805                ));
806            } else if let Some(script) = instr.declared_path()
807                && let Some((prior_module, prior_kind)) = prior_cleanup
808            {
809                // Route the per-instruction `StateChange`-arm script-path
810                // projection through the sibling lifted
811                // [`UpgradeInstruction::declared_path`] `Option<&PathBuf>`
812                // accessor rather than the raw
813                // `if let UpgradeInstruction::StateChange { script } = instr`
814                // open-coded pattern-match — the last unlifted per-
815                // `UpgradeInstruction` `PathBuf`-carrying-axis consumer
816                // inside `impl UpgradeFromEntry`, sibling to the four peer
817                // per-`UpgradeInstruction` consumers already routed through
818                // the accessor: [`UpgradeInstruction::validate`]'s per-
819                // `StateChange` sandbox-path fan-out, the layout-side per-
820                // `StateChange` script-existence fan-out at
821                // [`crate::layout::StandardLayout::verify`]
822                // (caixa-core/src/layout.rs:1058), the within-entry
823                // [`UpgradeFromEntry::validate_state_change_singularity`]
824                // per-`StateChange` script-projection fan-out, and the
825                // cross-slot
826                // [`validate_upgrade_from_against_behavior`]
827                // per-`StateChange` detection loop. Byte-equal today
828                // (`declared_path` returns `Some(script)` iff the
829                // instruction is [`UpgradeInstruction::StateChange`], per
830                // the sibling `declared_path_only_for_state_change` pin),
831                // so a state-change-after-cleanup surfaces
832                // `StateChangeAfterCleanup` byte-identical to the pattern-
833                // match shape. Any future accessor extension that promotes
834                // an additional variant onto the `PathBuf`-carrying axis
835                // reaches this gate through one caixa-core edit rather
836                // than a coordinated rewrite of five call sites — the
837                // migrate→cleanup ordering discipline extends to the
838                // promoted variant by construction. Same "one typed
839                // dispatch on the substrate primitive, thin projections at
840                // each consumer" trajectory the sibling
841                // [`UpgradeInstruction::declared_module`] `String`-axis
842                // per-variant unifier already established.
843                return Err(UpgradeError::StateChangeAfterCleanup {
844                    from: self.prior_versao().to_string(),
845                    script: script.clone(),
846                    prior_cleanup_kind: prior_kind,
847                    prior_cleanup_module: prior_module.to_string(),
848                });
849            }
850        }
851        Ok(())
852    }
853
854    /// Reject an entry whose `:instructions` list names the same module
855    /// as the target of more than one cleanup instruction (`:soft-purge`
856    /// or `:purge`) in total — set-not-multiset on the (cleanup-class,
857    /// module) axis, narrowed to the cleanup class.
858    ///
859    /// `SoftPurge` and `Purge` are the `code:soft_purge/1` /
860    /// `code:purge/1` analogs (INSPIRATIONS §II.4 verbatim: "1.
861    /// `code:load_module/1` — load v2 alongside v1 … 2.
862    /// `code:soft_purge/1` — wait until no process is running v1, then
863    /// discard. (`code:purge/1` kills v1 immediately if you don't
864    /// care.)"). The author picks *one* cleanup semantic per old
865    /// module — `:soft-purge` (preferred: waits for in-flight callers
866    /// to drain) or `:purge` (when the drain isn't possible) — and the
867    /// operator runs that one in declared order alongside any other
868    /// distinct-module cleanups. systools-generated `.relup` files
869    /// always emit at most one purge per module for this reason; any
870    /// retry / fallback decision is the operator's job on
871    /// instruction failure, not authored into the entry. Three
872    /// authoring footguns close here:
873    ///
874    ///   - `((:load-module "x") (:soft-purge "x-old") (:soft-purge "x-old"))`
875    ///     — the "I copy-pasted the cleanup line twice" footgun. The
876    ///     second `:soft-purge` is a no-op (the module is already gone
877    ///     after the first drain-and-discard) or undefined depending
878    ///     on the operator's handling of a non-resident-module purge
879    ///     request; either way the second instruction carries no
880    ///     observable semantic, far from the source caixa.lisp.
881    ///   - `((:load-module "x") (:soft-purge "x-old") (:purge "x-old"))`
882    ///     — the "soft-then-hard fallback" footgun. The author wrote
883    ///     "drain, and if drain didn't clean it up, force-discard",
884    ///     but the operator runs instructions unconditionally in
885    ///     declared order — the `:purge` fires whether the
886    ///     `:soft-purge` already discarded the module or not, so the
887    ///     fallback semantic the author imagined is missing; the
888    ///     pair is incoherent (drain *and* force-discard semantics
889    ///     on one module is two contradictory dispositions). The
890    ///     operator's failure-handling surface is its own
891    ///     responsibility: if `:soft-purge` doesn't drain within its
892    ///     cooldown the operator escalates, not the author's entry.
893    ///   - `((:load-module "x") (:purge "x-old") (:soft-purge "x-old"))`
894    ///     — same shape on the reversed ordering. The `:purge`
895    ///     discards immediately; the trailing `:soft-purge` has no
896    ///     module to drain.
897    ///
898    /// Same within-entry exclusivity discipline as
899    /// [`Self::validate_restart_exclusive`] (the `(:restart)` terminal-
900    /// exclusivity gate it joins on the per-module cleanup axis): both
901    /// reject an `:instructions` list whose instructions are
902    /// individually well-shaped but jointly incoherent on a chosen
903    /// semantic axis (restart-fallback for the whole entry there;
904    /// cleanup-semantic for one module here), at the typed build
905    /// surface rather than as a runtime surprise. Runs *after*
906    /// [`Self::validate_purge_ordering`] (the load-before-cleanup
907    /// ordering gate) so an entry like `((:soft-purge "x-old")
908    /// (:soft-purge "x-old"))` surfaces the more-fundamental
909    /// `PurgeWithoutPriorLoad` first (both cleanups are load-less, and
910    /// the missing-load defect is the load-bearing one — the duplicate
911    /// is meaningless either way without the preceding load).
912    ///
913    /// Same set-not-multiset discipline applied to every peer
914    /// duplicate-target axis: `:children :caixa` (dbf50a9 —
915    /// `SupervisorError::DuplicateChildCaixa`), `:membros :caixa`
916    /// (4bb3f3d — `AplicacaoError::MembroDuplicate`), `:contratos`
917    /// (5dbcfaf — `AplicacaoError::ContratoDuplicate`), `:placement
918    /// :clusters` (c7c7799 — `AplicacaoError::PlacementClusterDuplicate`),
919    /// `:entrada :paths` (eb3456d — `AplicacaoError::EntradaPathDuplicate`),
920    /// and `:upgrade-from :from` ([`UpgradeError::DuplicateFrom`]).
921    /// Each closes the same authoring footgun: a Vec authoring surface
922    /// that silently accepts duplicate entries and renders the "second
923    /// wins" (or "operator processes both, second is a no-op or
924    /// errors") shape downstream, far from the source caixa.lisp.
925    /// This gate extends the discipline onto the within-entry
926    /// instruction-target axis — duplicate cleanup targets *within*
927    /// one `:upgrade-from` entry — the peer of the cross-entry
928    /// duplicate-`:from` axis at one level of nesting deeper.
929    ///
930    /// Detection: linear scan of the instructions list collecting
931    /// the (module, kind) pair from every `SoftPurge` / `Purge`
932    /// encountered; on the second occurrence of any module the gate
933    /// fires with the prior kind and the colliding kind in declaration
934    /// order. Diagnostic-order pin: the first colliding pair surfaces,
935    /// not the last — mirrors
936    /// [`validate_upgrade_from`]'s
937    /// `validate_upgrade_from_duplicate_diagnostic_names_second_collision`
938    /// posture (the first detected collision wins) and every peer
939    /// duplicate gate's first-collision discipline.
940    fn validate_cleanup_singularity(&self) -> Result<(), UpgradeError> {
941        let mut seen: Vec<(&str, &'static str)> = Vec::new();
942        for instr in self.instructions() {
943            // Route the per-instruction cleanup-family arm-discriminator
944            // through the lifted [`UpgradeInstruction::is_cleanup`] typed
945            // predicate rather than the raw two-arm
946            // `UpgradeInstruction::SoftPurge { module } => (module.as_str(),
947            // M2_UPGRADE_INSTRUCTION_KIND_SOFT_PURGE)` /
948            // `UpgradeInstruction::Purge { module } => (module.as_str(),
949            // M2_UPGRADE_INSTRUCTION_KIND_PURGE)` / `_ => continue`
950            // per-arm dispatch — the third of three within-entry cross-
951            // instruction cleanup-facing gates the peer
952            // [`Self::validate_purge_ordering`] +
953            // [`Self::validate_state_change_before_cleanup`] routing
954            // already lifted; all three now key off exactly one typed
955            // dispatch on the substrate primitive, structurally. The
956            // cleanup-target `(module, kind)` pair is projected through
957            // the peer [`UpgradeInstruction::declared_module`] /
958            // [`UpgradeInstruction::lisp_form`] accessors rather than
959            // the per-arm-hand-rolled scalar-value + kind-const pair,
960            // with the `is_cleanup`-implies-`declared_module`-is-`Some`
961            // composition pin at
962            // [`tests::upgrade_instruction_is_cleanup_implies_declared_module_is_some`]
963            // making the `.expect(…)` structurally infallible at build
964            // time. Any future fifth cleanup-shaped variant added under
965            // the `is_cleanup` predicate + registered through the peer
966            // `lisp_form` per-arm kebab-case-const dispatch reaches this
967            // dedup gate through the accessor's one body rather than a
968            // fourth per-arm-hand-rolled scalar/kind projection here.
969            if !instr.is_cleanup() {
970                continue;
971            }
972            let module = instr
973                .declared_module()
974                .expect("is_cleanup() implies declared_module() is Some");
975            let kind = instr.lisp_form();
976            if let Some(prior_idx) = seen.iter().position(|(m, _)| *m == module) {
977                let prior_kind = seen[prior_idx].1;
978                return Err(UpgradeError::DuplicateCleanup {
979                    from: self.prior_versao().to_string(),
980                    module: module.to_string(),
981                    kinds: vec![prior_kind, kind],
982                });
983            }
984            seen.push((module, kind));
985        }
986        Ok(())
987    }
988
989    /// Reject an entry whose `:instructions` list names the same module
990    /// as the target of more than one `(:load-module …)` instruction —
991    /// set-not-multiset on the `LoadModule` axis.
992    ///
993    /// `LoadModule` is the `code:load_module/1` analog (INSPIRATIONS
994    /// §II.4 verbatim: "1. `code:load_module/1` — load v2 alongside v1;
995    /// new code is 'current', old code is 'old'."). The instruction
996    /// brings the new wasm component up resident alongside the old
997    /// one so the operator can route new traffic to the new code
998    /// while in-flight callers drain on the old — and the operator's
999    /// dispatch table reads the module *name* (a caixa name) to bind
1000    /// the component, so two `(:load-module "x")` instructions in one
1001    /// entry ask the operator to re-bind the same component twice.
1002    /// `systools`-generated `.relup` files emit at most one
1003    /// `load_module` per module per upgrade step for this reason; the
1004    /// second load has no observable semantic relative to the first
1005    /// (the component is already resident). Three authoring footguns
1006    /// close here:
1007    ///
1008    ///   - `((:load-module "x") (:load-module "x"))` — the "I
1009    ///     copy-pasted the load line twice" footgun. The second
1010    ///     `:load-module` re-reads the same module name and re-binds
1011    ///     the same wasm component — a no-op in both directions
1012    ///     (no new code becomes resident; no old code is purged) —
1013    ///     and any cleanup / migration the author intended for a
1014    ///     *distinct* module is silently absent from the entry.
1015    ///   - `((:load-module "x") (:load-module "x") (:state-change …))`
1016    ///     — the "I meant to load two distinct modules" typo. The
1017    ///     author intended `((:load-module "x") (:load-module "y"))`
1018    ///     but renamed both to "x" (or copied the first line and
1019    ///     forgot to change the module). The migration runs against
1020    ///     code that's resident only on one module name, and the
1021    ///     second module the author imagined was being loaded never
1022    ///     comes up at all — far from the source caixa.lisp.
1023    ///   - `((:load-module "x") (:load-module "x") (:soft-purge "x-old"))`
1024    ///     — same shape with a trailing cleanup. The duplicate load
1025    ///     is dead code; the cleanup still fires correctly, masking
1026    ///     the load-side duplication as a silently-passing entry.
1027    ///
1028    /// Same within-entry exclusivity discipline as
1029    /// [`Self::validate_cleanup_singularity`] (the per-module cleanup-
1030    /// singularity gate this runs beside) on the sibling
1031    /// `LoadModule` axis: both reject an `:instructions` list whose
1032    /// instructions are individually well-shaped but jointly
1033    /// incoherent on a per-module-per-class basis (load-once for the
1034    /// load axis here; cleanup-once for the cleanup axis there), at
1035    /// the typed build surface rather than as a runtime surprise.
1036    /// Runs *after* [`Self::validate_purge_ordering`] (the load-
1037    /// before-cleanup ordering gate) so an entry like
1038    /// `((:state-change "m.lisp") (:load-module "x") (:load-module "x"))`
1039    /// surfaces the more-fundamental `StateChangeWithoutPriorLoad`
1040    /// first (the missing-load defect is load-bearing — the migration
1041    /// runs against unloaded code; the duplicate is meaningless either
1042    /// way without the preceding load). Runs *before*
1043    /// [`Self::validate_cleanup_singularity`] so an entry like
1044    /// `((:load-module "x") (:load-module "x") (:soft-purge "y-old")
1045    /// (:soft-purge "y-old"))` surfaces `DuplicateLoadModule` first —
1046    /// the load axis precedes the cleanup axis in the canonical OTP
1047    /// sequence (`code:load_module/1` then `code:soft_purge/1`) and
1048    /// in [`UpgradeInstruction`] declaration order (`LoadModule`
1049    /// before `SoftPurge`/`Purge`), so the load-side singularity is
1050    /// the load-bearing diagnostic when both fire.
1051    ///
1052    /// Same set-not-multiset discipline applied to every peer
1053    /// duplicate-target axis: `:children :caixa` (dbf50a9 —
1054    /// `SupervisorError::DuplicateChildCaixa`), `:membros :caixa`
1055    /// (4bb3f3d — `AplicacaoError::MembroDuplicate`), `:contratos`
1056    /// (5dbcfaf — `AplicacaoError::ContratoDuplicate`), `:placement
1057    /// :clusters` (c7c7799 — `AplicacaoError::PlacementClusterDuplicate`),
1058    /// `:entrada :paths` (eb3456d — `AplicacaoError::EntradaPathDuplicate`),
1059    /// `:upgrade-from :from` ([`UpgradeError::DuplicateFrom`]), and
1060    /// the per-module cleanup-target axis (9cedd8b —
1061    /// [`UpgradeError::DuplicateCleanup`]). This gate extends the
1062    /// discipline onto the within-entry `LoadModule` instruction-target
1063    /// axis — the third within-entry per-module singularity completing
1064    /// the load+cleanup pair across the OTP two-phase code-load
1065    /// contract.
1066    ///
1067    /// Detection: linear scan of the instructions list collecting the
1068    /// module name from every `LoadModule` encountered; on the second
1069    /// occurrence of any module the gate fires. Diagnostic-order pin:
1070    /// the first colliding occurrence surfaces, not the last — mirrors
1071    /// [`Self::validate_cleanup_singularity`]'s first-collision posture
1072    /// and every peer duplicate gate's first-collision discipline.
1073    fn validate_load_singularity(&self) -> Result<(), UpgradeError> {
1074        let mut seen: Vec<&str> = Vec::new();
1075        for instr in self.instructions() {
1076            // Route the per-instruction load-family arm-discriminator
1077            // through the `gen_platform::IsVariant`-derive-generated
1078            // [`UpgradeInstruction::is_load_module`] predicate rather
1079            // than the raw single-arm `match instr {
1080            // UpgradeInstruction::LoadModule { module } =>
1081            // module.as_str(), _ => continue }` open-coded pattern-
1082            // match — closes the last unlifted `matches!`-shaped
1083            // per-arm-hand-rolled scalar-value + arm-discriminator
1084            // pair inside `impl UpgradeFromEntry`, sibling of the
1085            // peer [`Self::validate_cleanup_singularity`] (0bc469f)
1086            // routing already lifted onto the two-arm cleanup-family
1087            // axis's per-arm arm-discriminator + `:module` projection
1088            // dispatch. The load-target `:module` scalar is projected
1089            // through the sibling [`UpgradeInstruction::declared_module`]
1090            // accessor rather than the per-arm-hand-rolled scalar-
1091            // value binding, with the
1092            // `is_load_module`-implies-`declared_module`-is-`Some`
1093            // composition pin at
1094            // [`tests::upgrade_instruction_is_load_module_implies_declared_module_is_some`]
1095            // making the `.expect(…)` structurally infallible at
1096            // build time. Every arm-family partition the three
1097            // within-entry per-instruction-class singularity gates
1098            // key off — load-family
1099            // ([`UpgradeInstruction::LoadModule`]), cleanup-family
1100            // ([`UpgradeInstruction::SoftPurge`] |
1101            // [`UpgradeInstruction::Purge`]), migration-family
1102            // ([`UpgradeInstruction::StateChange`]) — now consults
1103            // exactly one typed dispatch on the substrate primitive
1104            // (`is_load_module()` here, `is_cleanup()` at
1105            // [`Self::validate_cleanup_singularity`],
1106            // `declared_path()` at
1107            // [`Self::validate_state_change_singularity`]), so a
1108            // future sixth arm added to [`UpgradeInstruction`] (an
1109            // `AwaitReadiness` gate, a `Downgrade` reverse-axis
1110            // variant OTP's `relup` acknowledges, a `CanaryTraffic`
1111            // split-traffic variant the M4 CR materializer could
1112            // resolve per-CR — INSPIRATIONS §II.4) migrates as a
1113            // single enum-declaration edit through the derive rather
1114            // than a scattered per-consumer rewrite. Byte-identity of
1115            // this dispatch against the pre-lift match-pattern is
1116            // pinned by
1117            // [`tests::validate_load_singularity_projects_modules_through_is_load_module_and_declared_module_accessors`].
1118            if !instr.is_load_module() {
1119                continue;
1120            }
1121            let module = instr
1122                .declared_module()
1123                .expect("is_load_module() implies declared_module() is Some");
1124            if seen.contains(&module) {
1125                return Err(UpgradeError::DuplicateLoadModule {
1126                    from: self.prior_versao().to_string(),
1127                    module: module.to_string(),
1128                });
1129            }
1130            seen.push(module);
1131        }
1132        Ok(())
1133    }
1134
1135    /// Reject an entry whose `:instructions` list names the same script
1136    /// as the target of more than one `(:state-change …)` instruction —
1137    /// set-not-multiset on the `StateChange` axis.
1138    ///
1139    /// `StateChange` is the `gen_server:code_change/3` analog
1140    /// (INSPIRATIONS §II.4: "State migration uses
1141    /// `gen_server:code_change/3`"). The instruction folds the *old*
1142    /// state into the shape the *new* code expects — a one-shot
1143    /// transition from one declared state representation to another.
1144    /// OTP's `release_handler:install_release/1` invokes `code_change/3`
1145    /// exactly once per upgrade per `gen_server`; `systools`-generated
1146    /// `.relup` files emit at most one `code_change` per `gen_server` per
1147    /// upgrade step for this reason. A second `(:state-change "m.lisp")`
1148    /// instruction targeting the same script in one entry re-runs the
1149    /// migration fold — at best a no-op (idempotent script masking a
1150    /// typo where the author intended two distinct scripts) and at
1151    /// worst silent state corruption (non-idempotent fold double-
1152    /// applied: an `add column` migration that runs twice, an
1153    /// `increment counter` that double-bumps, a `rename field` that
1154    /// renames-then-fails the second time). Three authoring footguns
1155    /// close here:
1156    ///
1157    ///   - `((:load-module "x") (:state-change "lib/m.lisp")
1158    ///     (:state-change "lib/m.lisp"))` — the "I copy-pasted the
1159    ///     migration line twice" footgun. The second `:state-change`
1160    ///     re-runs the same fold on the already-migrated state — a
1161    ///     no-op if the script is idempotent (dead code masking the
1162    ///     duplication) or state corruption if not (the migration's
1163    ///     pre-condition no longer holds because the post-condition is
1164    ///     already in place).
1165    ///   - `((:load-module "x") (:state-change "lib/m.lisp")
1166    ///     (:state-change "lib/m.lisp") (:soft-purge "x-old"))` — the
1167    ///     "duplicate migrate masked by trailing cleanup" footgun. The
1168    ///     cleanup still fires correctly, masking the migration-side
1169    ///     duplication as a silently-passing entry.
1170    ///   - `((:load-module "x") (:state-change "lib/m1.lisp")
1171    ///     (:state-change "lib/m1.lisp"))` — the "I meant to migrate
1172    ///     two distinct modules" typo. The author intended
1173    ///     `(:state-change "lib/m1.lisp") (:state-change "lib/m2.lisp")`
1174    ///     but renamed both to `m1.lisp` (or copy-pasted the first line
1175    ///     and forgot to change the script). The migration that should
1176    ///     have folded the second module's state never runs, far from
1177    ///     the source caixa.lisp.
1178    ///
1179    /// Same within-entry exclusivity discipline as
1180    /// [`Self::validate_load_singularity`] (the per-module load-
1181    /// singularity gate it runs after) and
1182    /// [`Self::validate_cleanup_singularity`] (the per-module cleanup-
1183    /// singularity gate it runs before) on the sibling `StateChange`
1184    /// axis: each rejects an `:instructions` list whose instructions
1185    /// are individually well-shaped but jointly incoherent on a per-
1186    /// instruction-class basis (load-once per module for the load
1187    /// axis; migrate-once per script for the migration axis here;
1188    /// cleanup-once per module for the cleanup axis), at the typed
1189    /// build surface rather than as a runtime surprise. Runs *after*
1190    /// [`Self::validate_load_singularity`] so an entry like
1191    /// `((:load-module "x") (:load-module "x") (:state-change
1192    /// "lib/m.lisp") (:state-change "lib/m.lisp"))` surfaces
1193    /// `DuplicateLoadModule` first — the load axis precedes the
1194    /// migration axis in the canonical OTP sequence
1195    /// (`code:load_module/1` then `gen_server:code_change/3`) and in
1196    /// [`UpgradeInstruction`] declaration order (`LoadModule` before
1197    /// `StateChange`), so the load-side singularity is the load-
1198    /// bearing diagnostic when both fire. Runs *before*
1199    /// [`Self::validate_cleanup_singularity`] so an entry like
1200    /// `((:load-module "x") (:state-change "lib/m.lisp") (:state-change
1201    /// "lib/m.lisp") (:soft-purge "y-old") (:soft-purge "y-old"))`
1202    /// surfaces `DuplicateStateChange` first — the migration axis
1203    /// precedes the cleanup axis in the canonical OTP sequence
1204    /// (`code:code_change/3` then `code:soft_purge/1`) and in
1205    /// [`UpgradeInstruction`] declaration order (`StateChange` before
1206    /// `SoftPurge`/`Purge`).
1207    ///
1208    /// Same set-not-multiset discipline applied to every peer
1209    /// duplicate-target axis: `:children :caixa` (dbf50a9 —
1210    /// `SupervisorError::DuplicateChildCaixa`), `:membros :caixa`
1211    /// (4bb3f3d — `AplicacaoError::MembroDuplicate`), `:contratos`
1212    /// (5dbcfaf — `AplicacaoError::ContratoDuplicate`), `:placement
1213    /// :clusters` (c7c7799 — `AplicacaoError::PlacementClusterDuplicate`),
1214    /// `:entrada :paths` (eb3456d — `AplicacaoError::EntradaPathDuplicate`),
1215    /// `:upgrade-from :from` ([`UpgradeError::DuplicateFrom`]), the
1216    /// per-module cleanup-target axis (9cedd8b —
1217    /// [`UpgradeError::DuplicateCleanup`]), and the per-module load-
1218    /// target axis (a503978 — [`UpgradeError::DuplicateLoadModule`]).
1219    /// This gate extends the discipline onto the within-entry
1220    /// `StateChange` instruction-target axis — the third within-entry
1221    /// per-instruction-class singularity, completing the OTP two-phase
1222    /// code-load + state-migration coverage triad
1223    /// (`code:load_module/1` → `gen_server:code_change/3` →
1224    /// `code:soft_purge/1`).
1225    ///
1226    /// Detection: linear scan of the instructions list collecting the
1227    /// script path from every `StateChange` encountered; on the second
1228    /// occurrence of any script the gate fires. Diagnostic-order pin:
1229    /// the first colliding occurrence surfaces, not the last — mirrors
1230    /// [`Self::validate_load_singularity`]'s and
1231    /// [`Self::validate_cleanup_singularity`]'s first-collision posture
1232    /// and every peer duplicate gate's first-collision discipline.
1233    fn validate_state_change_singularity(&self) -> Result<(), UpgradeError> {
1234        // Route the per-instruction `StateChange`-arm script-path
1235        // projection through the sibling lifted
1236        // [`UpgradeInstruction::declared_path`] `Option<&PathBuf>`
1237        // accessor rather than the raw
1238        // `match instr { UpgradeInstruction::StateChange { script } =>
1239        // script.as_path(), _ => continue }` open-coded pattern-match —
1240        // the third within-entry singularity gate's per-instruction
1241        // script-projection site now keys off exactly one typed
1242        // dispatch on the substrate primitive's `PathBuf`-carrying
1243        // axis, sibling to the four peer per-`UpgradeInstruction`
1244        // consumers ([`Self::validate`]'s per-`StateChange`
1245        // sandbox-path fan-out, the layout-side per-`StateChange`
1246        // script-existence fan-out at
1247        // `caixa-core/src/layout.rs:1017`, the cross-slot
1248        // [`validate_upgrade_from_against_behavior`] gate's
1249        // per-`StateChange` detection loop, the future wasm-operator's
1250        // per-`StateChange` runtime hook-dispatch) that already route
1251        // through `declared_path` / `declared_module`. Byte-equal
1252        // today (`declared_path` returns `Some(script)` iff the
1253        // instruction is [`UpgradeInstruction::StateChange`], per the
1254        // sibling `declared_path_only_for_state_change` pin), so a
1255        // duplicate `:state-change` script surfaces
1256        // `DuplicateStateChange` byte-identical to the pattern-match
1257        // shape. Same "one typed dispatch on the substrate primitive,
1258        // thin projections at each consumer" discipline the sibling
1259        // [`UpgradeInstruction::declared_module`] accessor established
1260        // (b13c4f9) on the peer `String`-carrying axis's per-variant
1261        // consumers, extended here onto the last unlifted
1262        // pattern-match on the `PathBuf`-carrying axis inside
1263        // `impl UpgradeFromEntry`.
1264        let mut seen: Vec<&std::path::Path> = Vec::new();
1265        for instr in self.instructions() {
1266            let Some(script) = instr.declared_path() else {
1267                continue;
1268            };
1269            let script = script.as_path();
1270            if seen.contains(&script) {
1271                return Err(UpgradeError::DuplicateStateChange {
1272                    from: self.prior_versao().to_string(),
1273                    script: script.to_path_buf(),
1274                });
1275            }
1276            seen.push(script);
1277        }
1278        Ok(())
1279    }
1280}
1281
1282/// Validate a whole `:upgrade-from` list: per-entry typed shape via
1283/// [`UpgradeFromEntry::validate`] *and* the cross-entry graph-edge-set
1284/// invariant — at most one `(:from <prior>)` block per parsed semver.
1285///
1286/// OTP's appup picks at most one matching block to apply to the running
1287/// release (`release_handler:install_release/1` matches the loaded
1288/// `:from` against the currently-running version and executes the
1289/// associated instruction sequence; the wasm-operator picks the matching
1290/// block at upgrade time, per `upgrade.rs` module doc). Two blocks with
1291/// the same parsed-semver `:from` are an ambiguous edge in the typed
1292/// upgrade graph — the operator can pick either set deterministically,
1293/// but each set may carry different `LoadModule | StateChange |
1294/// SoftPurge | Purge | Restart` instructions, so the *chosen* path is
1295/// non-deterministic relative to the source caixa.lisp. The author's
1296/// intent is one path per prior version; the typed graph must enforce
1297/// that shape.
1298///
1299/// Same set-not-multiset discipline already applied to every peer
1300/// typed-graph axis: `:children :caixa` (dbf50a9 —
1301/// `SupervisorError::DuplicateChildCaixa`, `child_spec.id` is required-
1302/// unique per supervisor in OTP), `:membros :caixa` (4bb3f3d —
1303/// `AplicacaoError::MembroDuplicate`), `:contratos`
1304/// (5dbcfaf — `AplicacaoError::ContratoDuplicate`), `:placement
1305/// :clusters` (c7c7799 — `AplicacaoError::PlacementClusterDuplicate`),
1306/// and `:entrada :paths` (eb3456d — `AplicacaoError::EntradaPathDuplicate`).
1307/// Each closes the same authoring footgun: a Vec authoring surface that
1308/// silently accepts duplicate entries and renders the "second wins"
1309/// (or "operator picks arbitrarily") shape downstream, far from the
1310/// source caixa.lisp.
1311///
1312/// Duplicates are detected by [`semver::Version`] equality (the
1313/// crate's `PartialEq` compares the full identity — major.minor.patch +
1314/// pre-release + build metadata — so `1.0.0` and `1.0.0-rc.1` and
1315/// `1.0.0+build1` and `1.0.0+build2` are all distinct upgrade paths).
1316/// The conservative choice mirrors what the wasm-operator's
1317/// `:from`-match dispatch can see; collapsing build metadata to catch
1318/// a wider net of duplicates is a future tightening that requires
1319/// coordinating with the operator's match step.
1320///
1321/// Per-entry shape errors fire before the duplicate gate so the
1322/// diagnostic names the malformed slot (`FromInvalid`, `EmptyScript`,
1323/// `ModuleInvalid`, …) rather than collapsing two unrelated authoring
1324/// errors into a single duplicate diagnostic. Mirrors the
1325/// `*_invalid_fires_before_duplicate_check` order pins on every peer
1326/// axis ([`crate::SupervisorSpec::validate`],
1327/// [`crate::AplicacaoSpec::validate_membros`],
1328/// [`crate::AplicacaoSpec::validate_placement`]).
1329pub fn validate_upgrade_from(entries: &[UpgradeFromEntry]) -> Result<(), UpgradeError> {
1330    use semver::Version;
1331    let mut seen: Vec<Version> = Vec::with_capacity(entries.len());
1332    for entry in entries {
1333        entry.validate()?;
1334        // `entry.validate()` accepted this `:from`, so parse cannot
1335        // fail here — the FromInvalid arm above is the only gate
1336        // and both call `Version::parse(entry.prior_versao())`.
1337        let parsed = Version::parse(entry.prior_versao()).expect(
1338            "UpgradeFromEntry::validate must accept `:from` iff Version::parse does — keep the \
1339             two gates aligned",
1340        );
1341        if seen.contains(&parsed) {
1342            return Err(UpgradeError::DuplicateFrom {
1343                from: entry.prior_versao().to_string(),
1344            });
1345        }
1346        seen.push(parsed);
1347    }
1348    Ok(())
1349}
1350
1351/// Reject `:upgrade-from` entries whose `:from` is not strictly less
1352/// than the caixa's current `:versao` (under SemVer-2 precedence — the
1353/// same ordering [`semver::Version::cmp`] implements, with build
1354/// metadata ignored per [SemVer §11][semver-11]).
1355///
1356/// The whole point of an `:upgrade-from :from "<prior>"` block is the
1357/// declarative answer to "given the wasm-operator is loading a node
1358/// running `<prior>`, how do I upgrade it to the *current* `:versao`?"
1359/// (`upgrade.rs` module doc, OTP appup `release_handler:install_release/1`
1360/// semantic). The operator's `:from`-match dispatch loads the
1361/// current `:versao` and matches the *running* version against each
1362/// entry's `:from`; an entry whose `:from >= :versao` is structurally
1363/// unreachable — the operator never runs a version greater than or
1364/// equal to the current `:versao` that it could then "upgrade *to*"
1365/// the current `:versao`. Two authoring footguns close here:
1366///
1367///   - `:from > :versao` (downgrade-shaped) — the canonical
1368///     "I copy-pasted from the next minor version and forgot to bump
1369///     `:versao`" / "I bumped `:versao` then reverted but left the
1370///     `:upgrade-from` entry behind" footgun. Until this gate landed
1371///     `(defcaixa :versao "0.1.5" :upgrade-from ((:from "0.2.0" …)))`
1372///     silently passed `feira build` and the wasm-operator's
1373///     `:from`-match dispatch would never fire on the entry — the
1374///     instructions sat dormant in the caixa.lisp forever, the
1375///     author's intent ("upgrade users coming from 0.2.0") permanently
1376///     unreached because they actually meant to bump `:versao`.
1377///
1378///   - `:from == :versao` (precedence-equal self-upgrade) — the
1379///     "I declared an upgrade from myself to myself" no-op the
1380///     operator's dispatch would either skip silently (no semantic
1381///     transition) or attempt and trivially "succeed" with no
1382///     observable state change. Includes the build-metadata-only
1383///     difference case (`:versao "0.2.0"`, `:from "0.2.0+build.1"`):
1384///     SemVer-2 precedence ignores build metadata so they compare
1385///     equal under [`semver::Version::cmp`] — the gate rejects this
1386///     even though [`UpgradeError::DuplicateFrom`] doesn't (the peer
1387///     gate uses derived `PartialEq` which keeps them distinct;
1388///     they're distinct dispatch keys but the same "from" version
1389///     for our purposes here).
1390///
1391/// Same cross-slot value-shape discipline as
1392/// [`crate::AplicacaoSpec::validate_placement`]'s strategy ↔ shard-key
1393/// partition (934bc58 — the typed partition between two declared
1394/// slots): one slot's value constrains the valid set of another's,
1395/// and the constraint is a structural property visible at validate
1396/// time. The validated set after this gate satisfies
1397/// `entry.from.parse::<Version>().unwrap() < versao.parse::<Version>().unwrap()`
1398/// for every entry, so the future operator-side hot-upgrade dispatch
1399/// step can reach for `entry.from` knowing the precedence relation
1400/// holds without re-deriving it from inline checks.
1401///
1402/// Silent-pass semantics on malformed inputs:
1403///
1404///   - When `versao` itself doesn't parse as semver, this gate
1405///     returns `Ok(())` silently — the narrower
1406///     [`crate::ManifestError::VersaoInvalid`] / [`UpgradeError::FromInvalid`]
1407///     diagnostics are the load-bearing surfaces for those failure
1408///     modes, and surfacing a `FromNotBeforeVersao` over an
1409///     unparseable `:versao` would mask the more actionable root
1410///     cause.
1411///   - Likewise, an entry whose `:from` itself doesn't parse falls
1412///     through to its narrower diagnostic surface
1413///     ([`UpgradeError::FromInvalid`]), which is expected to fire
1414///     via [`validate_upgrade_from`] *before* this gate runs at the
1415///     [`crate::LayoutInvariants`] call site.
1416///
1417/// [semver-11]: https://semver.org/#spec-item-11
1418pub fn validate_upgrade_from_against_versao(
1419    entries: &[UpgradeFromEntry],
1420    versao: &str,
1421) -> Result<(), UpgradeError> {
1422    use semver::Version;
1423    let Ok(current) = Version::parse(versao) else {
1424        // Malformed `:versao` is a separate gate (ManifestError::VersaoInvalid);
1425        // surfacing a precedence-relation diagnostic over an unparseable
1426        // top-level version would mask the more actionable root cause.
1427        return Ok(());
1428    };
1429    for entry in entries {
1430        // Per-entry shape — including a malformed `:from` — is gated
1431        // by [`validate_upgrade_from`] / [`UpgradeFromEntry::validate`]
1432        // upstream at the LayoutInvariants call site; an unparseable
1433        // `:from` here falls through silently to keep the
1434        // FromInvalid diagnostic load-bearing. Same fall-through
1435        // posture as the `versao` arm above.
1436        let Ok(prior) = Version::parse(entry.prior_versao()) else {
1437            continue;
1438        };
1439        if prior >= current {
1440            return Err(UpgradeError::FromNotBeforeVersao {
1441                from: entry.prior_versao().to_string(),
1442                versao: versao.to_string(),
1443            });
1444        }
1445    }
1446    Ok(())
1447}
1448
1449/// Reject `:upgrade-from` entries whose `:instructions` list carries any
1450/// `(:state-change <script>)` instruction unless the caixa also declares
1451/// `:behavior :on-state-change` — the runtime callback the per-version
1452/// migration script is delivered through during hot upgrade.
1453///
1454/// The module doc on [`crate::upgrade`] pins the composition verbatim:
1455/// the `:upgrade-from` slot "Composes with the `:behavior :on-state-change`
1456/// callback to deliver state migration during hot upgrades." The peer
1457/// module doc on [`crate::BehaviorSpec::on_state_change`] mirrors the
1458/// promise from the callback side: the slot is the
1459/// `gen_server:code_change/3` analog — "receives old state + version,
1460/// returns new state. Composes with the `:upgrade-from` slot declared at
1461/// the Caixa root." OTP's `release_handler:install_release/1` realizes
1462/// the composition by invoking the running `gen_server`'s
1463/// `code_change/3` callback during the appup's `code_change` /
1464/// `update, m, soft` step — the appup's instruction triggers the
1465/// callback, the callback folds the prior-version state shape into the
1466/// current-version shape, and the operator advances to the next
1467/// instruction only after the callback returns successfully. caixa
1468/// decomposes the same composition into two typed slots: the per-version
1469/// migration logic lives in the `(:state-change "lib/migrations/v01-to-v02.lisp")`
1470/// instruction's `:script` (the `:upgrade-from` author surface), and the
1471/// runtime hook the operator dispatches the migration through lives in
1472/// the `:behavior :on-state-change` callback (the `:behavior` author
1473/// surface). A `:state-change` instruction declared without the callback
1474/// is half the composition: the per-version script the author wrote has
1475/// no runtime delivery path, and the operator's hot-upgrade dispatch
1476/// reaches for `caixa.behavior.on_state_change` at the migration step,
1477/// finds `None`, and either fails the upgrade mid-flight (the
1478/// transactional rollback the module doc names — "On any failure, the
1479/// current version stays load-bearing — a typed atomic upgrade") or
1480/// silently skips the migration depending on the operator's handling of
1481/// a missing callback, both far from the source caixa.lisp.
1482///
1483/// Two authoring footguns close here:
1484///
1485///   - `(:behavior ((:on-init …)))` + `(:upgrade-from ((:from "0.1.0"
1486///     :instructions ((:load-module "x") (:state-change "lib/m.lisp")
1487///     (:soft-purge "x-old")))))` — the "I declared the migration script
1488///     but forgot the callback" footgun. The author wrote the per-version
1489///     fold against the prior state shape, the typed `:upgrade-from`
1490///     slot validated every per-instruction shape + ordering + singularity
1491///     gate, and the missing callback only surfaces at upgrade time as
1492///     either a transactional rollback to the prior version (no progress
1493///     across the upgrade) or as a silently-skipped migration that leaves
1494///     v0.2.0 code running against unmigrated v0.1.0 state (corrupted
1495///     state shape).
1496///   - `:behavior` absent entirely + `:upgrade-from` carrying any
1497///     `:state-change` — the "I added the upgrade path but never declared
1498///     `:behavior`" footgun. `:behavior` is optional at the typed root
1499///     ([`crate::Caixa::behavior: Option<BehaviorSpec>`]) so the typed
1500///     `:upgrade-from` slot validates on its own merits, but a `Caixa`
1501///     with `behavior: None` and a `:state-change` instruction is the
1502///     same missing-callback shape — the operator's dispatch can't reach
1503///     a callback that doesn't exist.
1504///
1505/// Same cross-slot composition discipline as
1506/// [`validate_upgrade_from_against_versao`] (the `:from` ↔ `:versao`
1507/// precedence gate at the peer wire-up site): one slot's value
1508/// (`:from` < `:versao` there; `:state-change` declared here) constrains
1509/// the valid set of another's (the entry must be dispatchable there; the
1510/// callback must be declared here), and the constraint is a structural
1511/// property visible at validate time. The validated set after this gate
1512/// satisfies the documented composition: every `:state-change`
1513/// instruction the operator iterates at hot-upgrade time has a
1514/// corresponding `:on-state-change` callback declared on the same caixa,
1515/// so the future wasm-operator's hot-upgrade dispatch (the OTP
1516/// `release_handler` canonical-sequence loop) can reach for
1517/// `behavior.on_state_change` at the migration step knowing the
1518/// `Option<PathBuf>` is `Some(_)` without re-deriving the precondition
1519/// from inline checks.
1520///
1521/// Diagnostic-precedence:
1522///
1523///   - Runs *after* [`UpgradeFromEntry::validate`] (per-instruction
1524///     shape + the within-entry ordering / singularity gates) and
1525///     [`validate_upgrade_from`] (the cross-entry duplicate-`:from`
1526///     gate), so a malformed `:state-change` (`EmptyScript`,
1527///     `AbsoluteScript`, `ParentEscapeScript`) or an ill-ordered entry
1528///     (`StateChangeWithoutPriorLoad`, `StateChangeAfterCleanup`) or a
1529///     duplicate `:from` (`DuplicateFrom`) surfaces its narrower
1530///     self-locating diagnostic first — the canonical "per-instr-shape +
1531///     within-entry ordering + cross-entry uniqueness before
1532///     cross-slot composition" precedence the peer
1533///     `validate_upgrade_from_against_versao` gate establishes at the
1534///     same wire-up site. Without this precedence pin a malformed
1535///     `:state-change` instruction would surface this gate's
1536///     missing-callback diagnostic over the narrower
1537///     `EmptyScript` / `StateChangeWithoutPriorLoad`, masking the
1538///     load-bearing per-instruction defect with a cross-slot composition
1539///     diagnostic.
1540///   - Within the entries, walks the list in declaration order and
1541///     surfaces the *first* `:state-change` instruction encountered —
1542///     mirrors every peer first-collision diagnostic posture on this
1543///     module (`validate_state_change_ordering` returns on the first
1544///     `StateChange` without prior load,
1545///     `validate_load_singularity` returns on the second matching
1546///     module, etc.). A future entry's later `:state-change` doesn't
1547///     surface a different diagnostic — the missing callback is the same
1548///     defect regardless of which entry's `:state-change` exposes it.
1549///
1550/// Silent-pass semantics:
1551///
1552///   - Entries carrying no `:state-change` instruction (load-only,
1553///     cleanup-only, restart-only, or empty `:instructions`) leave the
1554///     gate vacuous — no per-version migration means no callback to
1555///     dispatch through, so the absence of `:on-state-change` is
1556///     coherent. Pins the gate's identity element on the empty-set side
1557///     of the composition.
1558///   - `behavior: None` is *not* a free pass when a `:state-change`
1559///     instruction is present — the same missing-callback shape as
1560///     `behavior: Some(_)` with `on_state_change: None`. The gate reads
1561///     `behavior.and_then(BehaviorSpec::on_state_change)` so both shapes
1562///     surface the same diagnostic.
1563pub fn validate_upgrade_from_against_behavior(
1564    entries: &[UpgradeFromEntry],
1565    behavior: Option<&crate::BehaviorSpec>,
1566) -> Result<(), UpgradeError> {
1567    if behavior
1568        .and_then(crate::BehaviorSpec::on_state_change)
1569        .is_some()
1570    {
1571        return Ok(());
1572    }
1573    for entry in entries {
1574        // Route the per-instruction `StateChange`-arm script-path
1575        // projection through the sibling lifted
1576        // [`UpgradeInstruction::declared_path`] `Option<&PathBuf>`
1577        // accessor rather than the raw
1578        // `if let UpgradeInstruction::StateChange { script } = instr`
1579        // open-coded pattern-match — the cross-slot
1580        // `:upgrade-from ↔ :behavior` composition gate's per-instruction
1581        // script-projection site now keys off exactly one typed dispatch
1582        // on the substrate primitive's `PathBuf`-carrying axis, sibling
1583        // to the four peer per-`UpgradeInstruction` consumers
1584        // ([`UpgradeInstruction::validate`]'s per-`StateChange`
1585        // sandbox-path fan-out, the layout-side per-`StateChange`
1586        // script-existence fan-out at
1587        // [`crate::layout::StandardLayout::verify`] (caixa-core/src/layout.rs:1058),
1588        // the within-entry [`UpgradeFromEntry::validate_state_change_singularity`]
1589        // (2bf3ce5) per-`StateChange` script-projection fan-out, the
1590        // peer [`UpgradeInstruction::declared_module`] `String`-axis
1591        // per-variant unifier) that already route through
1592        // `declared_path` / `declared_module`. Byte-equal today
1593        // (`declared_path` returns `Some(script)` iff the instruction is
1594        // [`UpgradeInstruction::StateChange`], per the sibling
1595        // `declared_path_only_for_state_change` pin), so a
1596        // `:state-change`-without-`:on-state-change`-callback
1597        // composition surfaces `StateChangeWithoutOnStateChangeCallback`
1598        // byte-identical to the pattern-match shape. Fourth (and last)
1599        // per-`UpgradeInstruction`-consumer of the `PathBuf`-carrying
1600        // axis now routed through the accessor — closes the last
1601        // unlifted `if let UpgradeInstruction::StateChange { script } = instr`
1602        // site outside `impl UpgradeFromEntry`, so the peer four
1603        // consumer set named in the sibling
1604        // `validate_state_change_singularity_projects_scripts_through_declared_path_accessor`
1605        // pin (caixa-core/src/upgrade.rs:4598) is now structurally
1606        // closed.
1607        for instr in entry.instructions() {
1608            if let Some(script) = instr.declared_path() {
1609                return Err(UpgradeError::StateChangeWithoutOnStateChangeCallback {
1610                    from: entry.prior_versao().to_string(),
1611                    script: script.clone(),
1612                });
1613            }
1614        }
1615    }
1616    Ok(())
1617}
1618
1619impl UpgradeInstruction {
1620    /// Kebab-case lisp form name for this instruction, used as the
1621    /// `:kind` tag in [`UpgradeError::ModuleEmpty`] /
1622    /// [`UpgradeError::ModuleInvalid`] diagnostics so the author can
1623    /// grep their caixa.lisp for `(:load-module …)` / `(:soft-purge …)`
1624    /// / `(:purge …)` and fix it in one edit. Mirrors the kebab-case
1625    /// slot tags `BehaviorError::EmptyPath` (b0c8389) and
1626    /// `UpgradeFromEntry`'s `:from` field already carry.
1627    #[must_use]
1628    const fn lisp_form(&self) -> &'static str {
1629        match self {
1630            Self::LoadModule { .. } => crate::render::M2_UPGRADE_INSTRUCTION_KIND_LOAD_MODULE,
1631            Self::StateChange { .. } => crate::render::M2_UPGRADE_INSTRUCTION_KIND_STATE_CHANGE,
1632            Self::SoftPurge { .. } => crate::render::M2_UPGRADE_INSTRUCTION_KIND_SOFT_PURGE,
1633            Self::Purge { .. } => crate::render::M2_UPGRADE_INSTRUCTION_KIND_PURGE,
1634            Self::Restart => crate::render::M2_UPGRADE_INSTRUCTION_KIND_RESTART,
1635        }
1636    }
1637
1638    /// Validate the instruction's typed shape. Path existence is
1639    /// checked separately by [`crate::layout::StandardLayout`].
1640    ///
1641    /// The per-variant scalar the value-shape gates fire against is
1642    /// read through this method's two sibling accessors — the
1643    /// `String`-carrying axis via [`Self::declared_module`] (the
1644    /// `LoadModule` / `SoftPurge` / `Purge` variants unifying on their
1645    /// K8s DNS-1123-label `:module` reference) and the `PathBuf`-
1646    /// carrying axis via [`Self::declared_path`] (the `StateChange`
1647    /// variant's tatara-lisp `:script`) — rather than the per-arm
1648    /// `Self::LoadModule { module } | Self::SoftPurge { module } |
1649    /// Self::Purge { module }` pattern the module-axis previously
1650    /// open-coded and the per-arm `Self::StateChange { script }` the
1651    /// script-axis previously open-coded. Every scalar this enum
1652    /// carries now flows through one of the two `Option<&…>`
1653    /// accessors, so a future extension of either axis (a fifth
1654    /// module-bearing variant, an operator-side pre-parsed scalar
1655    /// cache the accessors materialize behind the same return
1656    /// contract, an M4 typed sub-slot the accessors could route
1657    /// alongside the existing scalar) migrates as a single edit on
1658    /// the accessor rather than a coordinated rewrite of every
1659    /// downstream value-shape gate. `Restart` (the only variant that
1660    /// carries neither scalar) falls through both `Option` checks and
1661    /// returns `Ok(())` — the terminal-fallback shape the
1662    /// [`Self::Restart`] variant doc pins.
1663    pub fn validate(&self) -> Result<(), UpgradeError> {
1664        if let Some(module) = self.declared_module() {
1665            return validate_module(self.lisp_form(), module);
1666        }
1667        if let Some(script) = self.declared_path() {
1668            // Delegate the four-arm cascade (empty / absolute /
1669            // parent-escape / non-`.lisp`-extension) to the lifted
1670            // [`crate::render::require_sandboxed_lisp_path`] helper —
1671            // same `Empty → Absolute → ParentEscape → NonLispExtension`
1672            // arm-ordering this method previously inlined verbatim,
1673            // now shared with [`crate::BehaviorSpec::validate`]'s
1674            // per-`:on-*`-callback gate so every author-supplied
1675            // tatara-lisp source path on every M2 typed slot consults
1676            // one gate, not two-and-counting verbatim copies of the
1677            // same four-arm cascade. Each closure wraps the tag in
1678            // the same `*Script` variant the original inline code
1679            // raised, so the diagnostic shape every caller depends
1680            // on (the `:state-change :script` self-locating error)
1681            // is preserved by construction. See
1682            // [`crate::render::require_sandboxed_lisp_path`] for the
1683            // smallest-scope-arm-fires-last ordering rationale.
1684            crate::render::require_sandboxed_lisp_path(
1685                script,
1686                || UpgradeError::EmptyScript,
1687                || UpgradeError::AbsoluteScript {
1688                    script: script.clone(),
1689                },
1690                || UpgradeError::ParentEscapeScript {
1691                    script: script.clone(),
1692                },
1693                || UpgradeError::NonLispExtensionScript {
1694                    script: script.clone(),
1695                },
1696            )?;
1697        }
1698        // `Restart` (the only variant with no `Option<&…>`-carrying
1699        // scalar) falls through both accessor gates and returns
1700        // `Ok(())` — the terminal-fallback shape.
1701        Ok(())
1702    }
1703
1704    /// The `:module` scalar carried by this instruction — the
1705    /// K8s DNS-1123-label OTP-appup caixa-name reference every
1706    /// [`Self::LoadModule`] / [`Self::SoftPurge`] / [`Self::Purge`]
1707    /// variant declares against, and every author expects `feira lint`
1708    /// to name verbatim in per-instruction diagnostics. Returns `None`
1709    /// on [`Self::StateChange`] (which carries a `:script` — closed by
1710    /// the sibling [`Self::declared_path`]) and on [`Self::Restart`]
1711    /// (which carries no data at all, the OTP terminal-fallback
1712    /// shape).
1713    ///
1714    /// Sibling in shape to [`Self::declared_path`] on the second and
1715    /// final scalar-carrying axis of [`UpgradeInstruction`]:
1716    /// `declared_path` closes the `PathBuf`-carrying arm
1717    /// (`StateChange`); `declared_module` closes the `String`-carrying
1718    /// arms (`LoadModule` / `SoftPurge` / `Purge`). Every scalar the
1719    /// enum carries now routes through one of the two `Option<&…>`
1720    /// accessors — a caller that doesn't care which variant declared
1721    /// the scalar reads through one `if let Some(…)` rather than a
1722    /// per-variant pattern match. The pair is the enum-variant-
1723    /// unifying peer of the per-mesh-slot-atom scalar-accessor family
1724    /// on the M3 side ([`crate::WitContract::source`] /
1725    /// [`crate::WitContract::destination`] /
1726    /// [`crate::WitContract::world_ref`] closing `:contratos`;
1727    /// [`crate::Entrada::hostname`] / [`crate::Entrada::destination`]
1728    /// closing `:entrada`; [`crate::Membro::nome`] /
1729    /// [`crate::Membro::versao_requirement`] closing `:membros`) and
1730    /// on the M2 side ([`crate::UpgradeFromEntry::prior_versao`]
1731    /// closing per-entry `:from`; the [`crate::LimitsSpec`] /
1732    /// [`crate::BehaviorSpec`] closed families; the [`crate::ChildSpec`]
1733    /// closed OTP-shape supervisor family) — those peer accessors
1734    /// return a struct field verbatim; this pair unifies enum-
1735    /// variant-carried scalars into one accessor per typed axis.
1736    ///
1737    /// Byte-for-byte from the typed variant's own `String` storage;
1738    /// no cloning, no re-parsing. A future extension of the axis (an
1739    /// M4 typed sub-slot the module string is derived from, an
1740    /// operator-side pre-parsed caixa-name cache the accessor could
1741    /// materialize behind the same `&str` return contract, a fifth
1742    /// module-bearing OTP-appup variant the enum grows) migrates as
1743    /// a single caixa-core edit rather than a coordinated rewrite
1744    /// of every downstream module-axis consumer (currently
1745    /// [`Self::validate`]'s DNS-1123-label gate through
1746    /// [`validate_module`]; extensible to future consumers on the
1747    /// same axis without further per-variant match sites).
1748    #[must_use]
1749    pub fn declared_module(&self) -> Option<&str> {
1750        match self {
1751            Self::LoadModule { module } | Self::SoftPurge { module } | Self::Purge { module } => {
1752                Some(module.as_str())
1753            }
1754            Self::StateChange { .. } | Self::Restart => None,
1755        }
1756    }
1757
1758    /// If the instruction references an on-disk path, return it —
1759    /// used by the layout checker to verify the path resolves.
1760    ///
1761    /// Sibling on the `PathBuf`-carrying axis to [`Self::declared_module`]
1762    /// on the `String`-carrying axis: `declared_path` closes the
1763    /// `StateChange` arm's `:script`; `declared_module` closes the
1764    /// `LoadModule` / `SoftPurge` / `Purge` arms' `:module`. Together
1765    /// they route every scalar this enum carries through one of two
1766    /// `Option<&…>` accessors, so [`Self::validate`]'s value-shape
1767    /// gates dispatch on the accessor return rather than a per-variant
1768    /// pattern match on the enum shape itself.
1769    ///
1770    /// Four per-`UpgradeInstruction` consumers now key off this
1771    /// accessor's `PathBuf`-carrying axis:
1772    /// [`Self::validate`]'s per-`StateChange` sandbox-path fan-out,
1773    /// [`crate::layout::StandardLayout::verify`]'s per-`StateChange`
1774    /// script-existence fan-out at `caixa-core/src/layout.rs:1058`, the
1775    /// within-entry
1776    /// [`UpgradeFromEntry::validate_state_change_singularity`] (2bf3ce5)
1777    /// per-`StateChange` script-projection fan-out, and the cross-slot
1778    /// [`validate_upgrade_from_against_behavior`] `:upgrade-from ↔
1779    /// :behavior` composition gate's per-`StateChange` detection loop
1780    /// — every downstream consumer of the `PathBuf`-carrying axis
1781    /// reaches through this one dispatch, so a future accessor
1782    /// extension (an M4 typed sub-slot the script path is derived from,
1783    /// an operator-side pre-resolved-path cache the accessor
1784    /// materializes behind the same `Option<&PathBuf>` return contract,
1785    /// a fifth `PathBuf`-bearing OTP-appup variant the enum grows)
1786    /// migrates as a single caixa-core edit rather than a coordinated
1787    /// rewrite of four call sites.
1788    #[must_use]
1789    pub fn declared_path(&self) -> Option<&PathBuf> {
1790        match self {
1791            Self::StateChange { script } => Some(script),
1792            _ => None,
1793        }
1794    }
1795
1796    /// Substrate-canonical per-`UpgradeInstruction` OTP-appup cleanup-
1797    /// family arm-discriminator predicate every within-entry cross-
1798    /// instruction cleanup-facing gate keys off — true iff `self` is
1799    /// [`Self::SoftPurge`] (`code:soft_purge/1` analog: drain the
1800    /// named module until no process is running it, then GC) or
1801    /// [`Self::Purge`] (`code:purge/1` analog: discard the named
1802    /// module immediately, without waiting for drain), the two OTP
1803    /// two-phase-code-load cleanup arms the closed-set enum's
1804    /// non-terminal / non-migration / non-load variants exhaust.
1805    /// Every non-cleanup arm ([`Self::LoadModule`] on the paired
1806    /// two-phase-load half, [`Self::StateChange`] on the
1807    /// `gen_server:code_change/3`-analog migration axis,
1808    /// [`Self::Restart`] on the OTP terminal-fallback shape)
1809    /// returns `false`.
1810    ///
1811    /// Prior to this lift the `Self::SoftPurge { module } |
1812    /// Self::Purge { module }` two-arm cleanup-family pattern-
1813    /// match sat inline at three within-entry cross-instruction
1814    /// gate sites, each hand-rolling its own copy of the union
1815    /// with no compile-time link back to the substrate primitive's
1816    /// closed-set arm-family: [`UpgradeFromEntry::validate_purge_ordering`]
1817    /// at caixa-core/src/upgrade.rs:570 (guarded arm firing
1818    /// [`UpgradeError::PurgeWithoutPriorLoad`] on any cleanup
1819    /// arriving before a preceding [`Self::LoadModule`]),
1820    /// [`UpgradeFromEntry::validate_state_change_before_cleanup`]
1821    /// at caixa-core/src/upgrade.rs:689 (sticky-once latch
1822    /// recording the first-encountered cleanup so a subsequent
1823    /// [`Self::StateChange`] fires [`UpgradeError::StateChangeAfterCleanup`]),
1824    /// and [`UpgradeFromEntry::validate_cleanup_singularity`] at
1825    /// caixa-core/src/upgrade.rs:800 (per-module cleanup-target
1826    /// dedup ejecting [`UpgradeError::DuplicateCleanup`] on the
1827    /// second cleanup targeting the same `:module`). Three open-
1828    /// coded per-arm-union pattern-matches that expressed no
1829    /// compile-time link back to the substrate primitive. A future
1830    /// fifth cleanup-shaped variant (a `Discard` variant the
1831    /// `code:delete/1` peer inspires that folds under the same
1832    /// two-phase-load cleanup partition, an M4 `SoftPurge` split
1833    /// into `SoftPurgeCoop` / `SoftPurgeForce` peers as the drain-
1834    /// cool-down policy grows a two-arm shape, an operator-side
1835    /// pre-resolved cleanup-decision cache the predicate could
1836    /// route through the same `bool` return contract) would have
1837    /// had to be threaded through every open-coded per-arm-union
1838    /// pattern-match in lockstep or one gate would silently
1839    /// classify the new arm outside the cleanup family while the
1840    /// peer gates classified it in (or vice versa) — a
1841    /// classification split across the three within-entry cross-
1842    /// instruction gates at build time that lands far from the
1843    /// source [`UpgradeInstruction`] declaration with no field
1844    /// naming which gate carries the drifted arm-set. Lifting the
1845    /// resolution to a typed predicate on the substrate primitive
1846    /// means every downstream cleanup-facing consumer of the
1847    /// [`UpgradeInstruction`] closed-set enum reaches for exactly
1848    /// one typed dispatch — the resolver's arm-set migrates as a
1849    /// unit on any future arm addition composing under this
1850    /// predicate's `||` chain.
1851    ///
1852    /// Sibling in shape to the peer [`gen_platform::IsVariant`]-
1853    /// derive-generated [`Self::is_restart`] terminal-fallback
1854    /// arm-discriminator predicate on the same closed-set
1855    /// [`UpgradeInstruction`] enum (each names an OTP-appup arm-
1856    /// family partition as one typed dispatch on the substrate
1857    /// primitive; `is_restart` on the single-arm terminal-
1858    /// fallback family, `is_cleanup` on the two-arm cleanup
1859    /// family), extended here from the single-arm case onto the
1860    /// two-arm arm-family union case. Composes through the
1861    /// [`gen_platform::IsVariant`]-derive-generated
1862    /// [`Self::is_soft_purge`] / [`Self::is_purge`] per-variant
1863    /// predicates rather than an open-coded raw `matches!`
1864    /// pattern-match, so a future rebrand on either underlying
1865    /// per-arm classifier flows through this predicate's one
1866    /// body without a coordinated per-consumer rewrite across
1867    /// the three within-entry cross-instruction gates that route
1868    /// through it. Peer of the sibling per-`:contratos`
1869    /// shape-family union predicates [`crate::WitContract::is_http`] /
1870    /// [`crate::WitContract::is_pubsub`] / [`crate::WitContract::is_store`]
1871    /// on the M3 mesh-slot per-`:wit` world-ref axis (each unions a
1872    /// per-shape WIT-prefix rule the substrate primitive's arm-
1873    /// family partition names as one typed dispatch) — the same
1874    /// "one typed dispatch on the substrate primitive, thin
1875    /// projections at each consumer" discipline extended onto the
1876    /// M2 `:upgrade-from :instructions` per-`UpgradeInstruction`
1877    /// cleanup-family axis.
1878    ///
1879    /// The name `is_cleanup` maps directly onto the canonical
1880    /// OTP-appup vocabulary (INSPIRATIONS §II.4 verbatim: "2.
1881    /// `code:soft_purge/1` — wait until no process is running v1,
1882    /// then discard. (`code:purge/1` kills v1 immediately if you
1883    /// don't care.)" — the two `code:*_purge/1` operations are
1884    /// the two-phase-load contract's cleanup half, paired under
1885    /// one concept), and the peer [`Self::validate_cleanup_singularity`]
1886    /// / [`UpgradeError::DuplicateCleanup`] / [`UpgradeError::PurgeWithoutPriorLoad`]
1887    /// / [`UpgradeError::StateChangeAfterCleanup`] surface already
1888    /// reaches for the same "cleanup" vocabulary in identifier +
1889    /// diagnostic form.
1890    #[must_use]
1891    pub const fn is_cleanup(&self) -> bool {
1892        self.is_soft_purge() || self.is_purge()
1893    }
1894}
1895
1896/// Reject upgrade instruction `:module` values that aren't K8s
1897/// DNS-1123 labels. Thin wrapper around
1898/// [`crate::render::is_dns_1123_label`] that maps the shared
1899/// parser-shaped reason into the kind-tagged
1900/// [`UpgradeError::ModuleEmpty`] / [`UpgradeError::ModuleInvalid`]
1901/// diagnostics, so the author can grep their caixa.lisp for the
1902/// offending `(:<kind> <module>)` form and fix it in one edit.
1903///
1904/// The contract — the same DNS-1123 label rule the K8s apiserver
1905/// enforces on every `metadata.name` / Service name / label value the
1906/// module name lands in. Each upgrade instruction's `:module` is a
1907/// reference to a caixa name (the wasm-engine resolves it through the
1908/// same `ComputeUnit` registry the operator manages), so the value must
1909/// match every downstream apiserver-side schema: the per-Servico
1910/// `wasm.pleme.io/v1alpha1/ComputeUnit.metadata.name` the operator
1911/// creates, the `LABEL_PROGRAM` label value the wasm-engine matches
1912/// against the loaded-module table at hot-upgrade dispatch, and the
1913/// future `:upgrade-from`-driven `app-operator` rolling-load CR's
1914/// per-module reference axis. Same trajectory as `:children :caixa`
1915/// (31bfa43), `:membros :caixa` (3f9d7a0), and `:placement :clusters`
1916/// (6cbb900) onto the fourth DNS-1123-label-shaped identifier axis —
1917/// appup's `LoadModule | SoftPurge | Purge` `:module` references.
1918///
1919/// Empty input is rejected via the narrower [`UpgradeError::ModuleEmpty`]
1920/// variant before this predicate is consulted, mirroring
1921/// `validate_membro_caixa`'s empty-first cascade.
1922fn validate_module(kind: &'static str, module: &str) -> Result<(), UpgradeError> {
1923    // Routes through the shared
1924    // [`crate::render::require_valid_dns_1123_label`] gate the peer
1925    // name axes each land on. The `kind: &'static str` field flows
1926    // through both error variants so the diagnostic names which
1927    // per-instruction slot (`LoadModule` / `SoftPurge` / `Purge`) the
1928    // offending value came from.
1929    crate::render::require_valid_dns_1123_label(
1930        module,
1931        || UpgradeError::ModuleEmpty { kind },
1932        |reason| UpgradeError::ModuleInvalid {
1933            kind,
1934            module: module.to_string(),
1935            reason,
1936        },
1937    )
1938}
1939
1940#[derive(Debug, Error, PartialEq, Eq)]
1941pub enum UpgradeError {
1942    #[error(
1943        ":upgrade-from :from {from:?} is not a valid SemVer-2 version: {reason} (the substrate \
1944         consumes this string as `semver::Version` — three-part `MAJOR.MINOR.PATCH` with optional \
1945         `-prerelease` and `+build`, the same shape every top-level `:versao` carries — across \
1946         every artifact derived from `:from`: the wasm-operator's `:from`-match dispatch loads \
1947         the running version through `semver::Version::parse` and matches it against each entry's \
1948         `:from`, so a malformed `:from` is structurally unreachable at dispatch time; use a \
1949         SemVer-2 literal like `\"0.1.0\"`, `\"0.2.0-rc.1\"`, or `\"1.0.0+build.42\"` — not a \
1950         git-tag-shape like `\"v0.1.0\"`, a docker-tag-shape like `\"latest\"`, a \
1951         requirement-shape like `\"^0.1\"`, or a four-part `\"0.1.0.0\"`)"
1952    )]
1953    FromInvalid { from: String, reason: String },
1954    #[error(
1955        "upgrade instruction `{kind}` :module is empty (every appup module reference \
1956         must name a caixa; use a non-empty caixa name like `\"hello-rio\"` or omit \
1957         the instruction entirely)"
1958    )]
1959    ModuleEmpty { kind: &'static str },
1960    #[error(
1961        "upgrade instruction `{kind}` :module {module:?} is not a valid DNS-1123 label: \
1962         {reason} (every appup module reference resolves to a caixa name, which lands \
1963         verbatim as a K8s `metadata.name` on the per-Servico ComputeUnit the operator \
1964         creates, the `LABEL_PROGRAM` label value the wasm-engine matches at hot-upgrade \
1965         dispatch, and every future `app-operator` rolling-load CR's per-module reference \
1966         axis; use a lowercase alphanumeric + hyphen identifier like `\"hello-rio\"` or \
1967         `\"cache-v2\"`)"
1968    )]
1969    ModuleInvalid {
1970        kind: &'static str,
1971        module: String,
1972        reason: String,
1973    },
1974    #[error("instruction's :script is empty")]
1975    EmptyScript,
1976    #[error(
1977        "instruction's :script {} is absolute — upgrade scripts must be relative to the caixa \
1978         root (Path::join would otherwise escape the project sandbox)",
1979        script.display()
1980    )]
1981    AbsoluteScript { script: PathBuf },
1982    #[error(
1983        "instruction's :script {} contains a `..` component — upgrade scripts must not traverse \
1984         above the caixa root",
1985        script.display()
1986    )]
1987    ParentEscapeScript { script: PathBuf },
1988    #[error(
1989        ":upgrade-from (:state-change {}) does not terminate in the `.lisp` extension — the M2.5 \
1990         wasm-engine instantiator reads every migration script as tatara-lisp source through \
1991         `tatara_lisp::read` at hot-upgrade migration time (the same downstream consumer the \
1992         peer `:behavior :on-*` axis routes through at instance-start time, c97815a), so any \
1993         other extension (`.txt`, `.rs`, `.lisp.bak`) or no-extension shape is structurally a \
1994         parser error far from the source caixa.lisp, with no field naming the offending \
1995         `(:state-change …)` instruction. Pin a relative path under the caixa root whose \
1996         terminating extension is lowercase-`.lisp` (e.g. `\"lib/migrations.lisp\"`, \
1997         `\"lib/migrations/v01-to-v02.lisp\"`).",
1998        script.display()
1999    )]
2000    NonLispExtensionScript { script: PathBuf },
2001    #[error(
2002        ":upgrade-from carries more than one `(:from {from:?})` entry — OTP appup picks at most \
2003         one matching block per running version (`release_handler:install_release/1` dispatches \
2004         on the loaded `:from` against the currently-running release), so two entries with the \
2005         same parsed semver are an ambiguous edge in the typed upgrade graph (the operator would \
2006         pick either set non-deterministically). Author one path per prior version; if two \
2007         distinct instruction sequences are needed, fold them into one ordered list under the \
2008         single matching `(:from {from:?} :instructions (…))` block."
2009    )]
2010    DuplicateFrom { from: String },
2011    #[error(
2012        ":upgrade-from `(:from {from:?})` is not strictly less than the caixa's current \
2013         `:versao {versao:?}` under SemVer-2 precedence — an upgrade block whose `:from` is \
2014         greater than or equal to the caixa's own version is structurally unreachable \
2015         (the wasm-operator's `:from`-match dispatch loads the current `:versao` and matches \
2016         the running version against each entry's `:from`; an entry whose `:from >= :versao` \
2017         is never reached because the operator never runs a version greater than or equal to \
2018         the current one that it could then upgrade *to* the current one). Bump the caixa's \
2019         `:versao` past {from:?} (the typical fix — you added the entry intending to upgrade \
2020         *to* a new version but forgot to bump `:versao`), drop the entry (if it's a stale \
2021         reference left over from a reverted `:versao` bump), or correct `:from` to a prior \
2022         version (if it's a typo). Pre-release values like `\"0.2.0-rc.1\"` are strictly less \
2023         than the corresponding release `\"0.2.0\"` under SemVer §11 precedence; build-metadata \
2024         values like `\"0.2.0+build.1\"` are equal to `\"0.2.0\"` under precedence and rejected \
2025         here as a self-upgrade no-op."
2026    )]
2027    FromNotBeforeVersao { from: String, versao: String },
2028    #[error(
2029        ":upgrade-from `(:from {from:?})` :instructions list violates the `(:restart)` \
2030         exclusivity invariant — an entry containing `(:restart)` must contain exactly one \
2031         `(:restart)` and nothing else (found {restart_count} `(:restart)` plus other \
2032         instruction(s): {other_kinds:?}). Per the UpgradeInstruction::Restart doc comment, \
2033         `(:restart)` is the fallback for an entry whose typed upgrade is impossible (wasm \
2034         component-model world incompatibility, irreversible state shape change), and the \
2035         fallback is terminal by construction (the operator restarts the pod and the new \
2036         version comes up fresh). Mixing the fallback with the typed sequence is dead code \
2037         in both directions: if the typed instructions would succeed, `(:restart)` is \
2038         unreached; if they wouldn't, the typed instructions are dead because the operator \
2039         restarts anyway. Author *either* a typed sequence (`(:load-module …) \
2040         (:state-change …) (:soft-purge …)`) *or* a single `((:restart))` — never both, \
2041         never repeated. If two distinct upgrade strategies are needed for the same prior \
2042         version, that is itself a typed-graph ambiguity (the operator's `:from`-match \
2043         dispatch picks exactly one block per running version) — keep the typed sequence; \
2044         the fallback restart is what the operator does on any typed-sequence failure \
2045         already."
2046    )]
2047    RestartNotExclusive {
2048        from: String,
2049        restart_count: usize,
2050        other_kinds: Vec<&'static str>,
2051    },
2052    #[error(
2053        ":upgrade-from `(:from {from:?})` runs `(:state-change {})` before any \
2054         `(:load-module …)` in its :instructions list — a state migration is the \
2055         gen_server:code_change/3 analog and must run in the context of the newly-loaded \
2056         code, but the operator executes instructions in declared order, so this migration \
2057         runs while the only resident version is still the prior one (which expects the \
2058         pre-migration state shape). Load the new module first: author the canonical \
2059         `(:load-module …) (:state-change {}) (:soft-purge …)` order so the new code is \
2060         resident before its state migration runs.",
2061        script.display(),
2062        script.display()
2063    )]
2064    StateChangeWithoutPriorLoad { from: String, script: PathBuf },
2065    #[error(
2066        ":upgrade-from `(:from {from:?})` runs `({kind} {module:?})` before any \
2067         `(:load-module …)` in its :instructions list — `:soft-purge` and `:purge` are the \
2068         code:soft_purge/1 / code:purge/1 analogs and must run after the new code is \
2069         resident alongside the old (OTP's two-phase code load: `code:load_module/1` \
2070         then `code:soft_purge/1`), but the operator executes instructions in declared \
2071         order, so this cleanup runs while the only resident version is still the same \
2072         old code (`:soft-purge` drains it to nothing; `:purge` discards it outright \
2073         mid-request), leaving no replacement to route in-flight or future requests \
2074         to. Load the new module first: author the canonical `(:load-module …) \
2075         (:state-change …) ({kind} {module:?})` order so the new code is resident \
2076         before the old code is drained or discarded."
2077    )]
2078    PurgeWithoutPriorLoad {
2079        from: String,
2080        kind: &'static str,
2081        module: String,
2082    },
2083    #[error(
2084        ":upgrade-from `(:from {from:?})` :instructions list targets module {module:?} with \
2085         more than one cleanup instruction ({kinds:?}) — `:soft-purge` and `:purge` are the \
2086         code:soft_purge/1 / code:purge/1 analogs (INSPIRATIONS §II.4: \"`code:soft_purge/1` — \
2087         wait until no process is running v1, then discard. (`code:purge/1` kills v1 immediately \
2088         if you don't care.)\"), and each module's old version is cleaned up by exactly one of \
2089         them: either drain-then-discard (`:soft-purge`) or immediate-discard (`:purge`), never \
2090         both, never repeated. systools-generated `.relup` files emit at most one purge per \
2091         module for this reason. A second cleanup on the same module is at best redundant (the \
2092         module is already gone after the first cleanup, so the second is a no-op or undefined \
2093         depending on the operator's handling of a non-resident-module purge request) and at \
2094         worst incoherent (mixing drain and discard semantics on one module suggests the author \
2095         wanted a fallback, but the operator runs declared instructions unconditionally — \
2096         fallback on cleanup failure is the operator's job, not authored into the entry). \
2097         Author one cleanup per module: prefer `(:soft-purge {module:?})` (waits for in-flight \
2098         callers to drain before GC); fall back to `(:purge {module:?})` only when the drain \
2099         can't complete (cron / oneShot / stuck callers). If two distinct old versions need \
2100         cleanup, name them distinctly (e.g. `(:soft-purge {module:?}) (:soft-purge \"…-older\")`)."
2101    )]
2102    DuplicateCleanup {
2103        from: String,
2104        module: String,
2105        kinds: Vec<&'static str>,
2106    },
2107    #[error(
2108        ":upgrade-from `(:from {from:?})` :instructions list loads module {module:?} more than \
2109         once — `:load-module` is the code:load_module/1 analog (INSPIRATIONS §II.4: \"1. \
2110         `code:load_module/1` — load v2 alongside v1; new code is 'current', old code is \
2111         'old'.\"), and the instruction binds the named wasm component once: the operator's \
2112         dispatch table reads the module name and brings up the corresponding component \
2113         alongside the running version. systools-generated `.relup` files emit at most one \
2114         `load_module` per module per upgrade step for this reason. A second `(:load-module \
2115         {module:?})` instruction has no observable semantic relative to the first (the \
2116         component is already resident) — either dead code (copy-pasted load line) or a typo \
2117         masking a distinct module the author intended to load alongside (renamed both to \
2118         {module:?} by mistake), leaving the second module silently absent from the entry. \
2119         Author one `(:load-module {module:?})` per old module per entry; if two distinct old \
2120         versions need loading alongside the running one, name them distinctly (e.g. \
2121         `(:load-module {module:?}) (:load-module \"…-v2\")`)."
2122    )]
2123    DuplicateLoadModule { from: String, module: String },
2124    #[error(
2125        ":upgrade-from `(:from {from:?})` :instructions list runs state migration {} more than \
2126         once — `:state-change` is the gen_server:code_change/3 analog (INSPIRATIONS §II.4: \
2127         \"State migration uses gen_server:code_change/3\"), and the script folds the prior-version \
2128         state shape into the current-version shape: a one-shot transition, not a step that \
2129         composes with itself. systools-generated `.relup` files emit at most one `code_change` \
2130         per gen_server per upgrade step for this reason; OTP's release_handler invokes the \
2131         callback exactly once. A second `(:state-change {})` instruction re-runs the same fold on \
2132         the already-migrated state — at best a no-op (idempotent script masking a typo where the \
2133         author intended two distinct migration scripts) and at worst silent state corruption \
2134         (non-idempotent fold double-applied: an `add column` that runs twice, an `increment \
2135         counter` that double-bumps, a `rename field` that renames-then-fails the second time). \
2136         Author one `(:state-change {})` per migration script per entry; if two distinct state \
2137         transitions are needed (e.g. one module's schema *and* another module's projection), \
2138         name them distinctly (e.g. `(:state-change {}) (:state-change \"lib/migrations/v01-to-v02-projection.lisp\")`).",
2139        script.display(),
2140        script.display(),
2141        script.display(),
2142        script.display()
2143    )]
2144    DuplicateStateChange { from: String, script: PathBuf },
2145    #[error(
2146        ":upgrade-from `(:from {from:?})` runs `(:state-change {})` after `({prior_cleanup_kind} \
2147         {prior_cleanup_module:?})` in its :instructions list — `:state-change` is the \
2148         gen_server:code_change/3 analog and folds the prior-version state shape into the \
2149         current shape, but the prior version's state only exists while the prior code is \
2150         still resident; `:soft-purge` and `:purge` are the code:soft_purge/1 / code:purge/1 \
2151         analogs and drain or discard that prior code. The operator executes instructions in \
2152         declared order, so a cleanup ahead of a state-change has already drained the prior \
2153         module to nothing (`:soft-purge`) or discarded it mid-request (`:purge`) by the time \
2154         the migration script runs, leaving the script either no-op (no prior-version state \
2155         left to fold) or crashing (`code_change/3` invoked on an unloaded version). The OTP \
2156         canonical sequence is `code:load_module/1` → `gen_server:code_change/3` → \
2157         `code:soft_purge/1`; the appup cookbook's recommended pattern is `[{{load_module, m}}, \
2158         {{update, m, soft}}, {{soft_purge, m}}]` with the migration-triggering `update` \
2159         strictly between load and cleanup. Author the canonical `(:load-module …) \
2160         (:state-change {}) ({prior_cleanup_kind} {prior_cleanup_module:?})` order so the \
2161         migration runs against the prior-version state before the cleanup drains it.",
2162        script.display(),
2163        script.display()
2164    )]
2165    StateChangeAfterCleanup {
2166        from: String,
2167        script: PathBuf,
2168        prior_cleanup_kind: &'static str,
2169        prior_cleanup_module: String,
2170    },
2171    #[error(
2172        ":upgrade-from `(:from {from:?})` declares `(:state-change {})` but the caixa does not \
2173         declare `:behavior :on-state-change` — the per-version migration script is the \
2174         gen_server:code_change/3 analog and the runtime hook it is delivered through during \
2175         hot upgrade is the `:on-state-change` callback. OTP's release_handler:install_release/1 \
2176         realizes the composition by invoking the running gen_server's code_change/3 callback \
2177         during the appup's `code_change` / `update, m, soft` step; caixa decomposes the same \
2178         composition into two typed slots, the per-version migration logic in this \
2179         `(:state-change …)` instruction's `:script` and the runtime dispatch hook in the \
2180         `:behavior :on-state-change` callback (the upgrade.rs module doc pins the composition \
2181         verbatim: \"Composes with the `:behavior :on-state-change` callback to deliver state \
2182         migration during hot upgrades\"). The missing callback leaves the per-version script \
2183         with no runtime delivery path: the operator's hot-upgrade dispatch reaches for the \
2184         callback at the migration step, finds it absent, and either fails the upgrade \
2185         mid-flight (the transactional rollback the module doc names — \"On any failure, the \
2186         current version stays load-bearing\") or silently skips the migration leaving the \
2187         new code running against unmigrated prior-version state. Add the callback: \
2188         `(:behavior ((:on-state-change \"lib/migrations.lisp\") …))` (the runtime delivery \
2189         path) alongside the existing `(:state-change {})` instruction (the per-version \
2190         script). If the upgrade truly carries no state migration, drop the `(:state-change \
2191         …)` instruction from the entry (a metadata-only upgrade — load + cleanup, no \
2192         migration — is the canonical shape).",
2193        script.display(),
2194        script.display()
2195    )]
2196    StateChangeWithoutOnStateChangeCallback { from: String, script: PathBuf },
2197}
2198
2199#[cfg(test)]
2200mod tests {
2201    use std::path::Path;
2202
2203    use super::*;
2204
2205    fn entry(from: &str, instrs: Vec<UpgradeInstruction>) -> UpgradeFromEntry {
2206        UpgradeFromEntry {
2207            from: from.into(),
2208            instructions: instrs,
2209        }
2210    }
2211
2212    #[test]
2213    fn round_trip_load_module() {
2214        let i = UpgradeInstruction::LoadModule {
2215            module: "hello-rio".into(),
2216        };
2217        let json = serde_json::to_string(&i).unwrap();
2218        assert!(json.contains("\"kind\":\"load-module\""));
2219        let back: UpgradeInstruction = serde_json::from_str(&json).unwrap();
2220        assert_eq!(i, back);
2221    }
2222
2223    #[test]
2224    fn round_trip_all_variants() {
2225        let cases = vec![
2226            UpgradeInstruction::LoadModule { module: "x".into() },
2227            UpgradeInstruction::StateChange {
2228                script: PathBuf::from("lib/migrations.lisp"),
2229            },
2230            UpgradeInstruction::SoftPurge {
2231                module: "x-old".into(),
2232            },
2233            UpgradeInstruction::Purge {
2234                module: "x-old".into(),
2235            },
2236            UpgradeInstruction::Restart,
2237        ];
2238        for c in cases {
2239            let json = serde_json::to_string(&c).unwrap();
2240            let back: UpgradeInstruction = serde_json::from_str(&json).unwrap();
2241            assert_eq!(c, back);
2242        }
2243    }
2244
2245    #[test]
2246    fn validate_accepts_well_formed() {
2247        let e = entry(
2248            "0.1.0",
2249            vec![
2250                UpgradeInstruction::LoadModule {
2251                    module: "hello-rio".into(),
2252                },
2253                UpgradeInstruction::StateChange {
2254                    script: PathBuf::from("lib/migrations/v01-to-v02.lisp"),
2255                },
2256                UpgradeInstruction::SoftPurge {
2257                    module: "hello-rio-old".into(),
2258                },
2259            ],
2260        );
2261        e.validate().unwrap();
2262    }
2263
2264    #[test]
2265    fn validate_rejects_non_semver_from() {
2266        let e = entry("not-a-semver", vec![]);
2267        let err = e.validate().unwrap_err();
2268        assert!(
2269            matches!(err, UpgradeError::FromInvalid { ref from, .. } if from == "not-a-semver")
2270        );
2271    }
2272
2273    #[test]
2274    fn from_invalid_diagnostic_carries_offending_from_and_reason() {
2275        // Diagnostic-shape pin: the error names the offending
2276        // `:upgrade-from :from` verbatim with a non-empty parser-shaped
2277        // reason, so a `feira lint` run can render the diagnostic
2278        // without re-parsing — the author can grep their caixa.lisp for
2279        // `:from "<value>"` and fix it in one edit. Mirrors the peer
2280        // `versao_invalid_diagnostic_carries_offending_versao` pin on
2281        // the sibling SemVer-2 axis (the top-level `:versao`), the
2282        // peer `membro_versao_invalid_diagnostic_carries_offending_value`
2283        // pin on `:membros :versao`, and the peer
2284        // `deps_invalid_diagnostic_carries_offending_value` pin on
2285        // `:deps :versao` — every SemVer-2-parsing slot's invalid
2286        // diagnostic is now structurally equivalent.
2287        let e = entry("v0.1.0", vec![]);
2288        let err = e.validate().unwrap_err();
2289        let UpgradeError::FromInvalid { from, reason } = err else {
2290            panic!("expected FromInvalid variant, got {err:?}");
2291        };
2292        assert_eq!(from, "v0.1.0");
2293        assert!(
2294            !reason.is_empty(),
2295            "FromInvalid `reason` must carry the parser's wording verbatim"
2296        );
2297    }
2298
2299    #[test]
2300    fn prior_versao_returns_from_byte_equal_across_permutations() {
2301        // Byte-identity pin on the lifted `UpgradeFromEntry::prior_versao`
2302        // accessor across the SemVer-2 shape lattice every consumer
2303        // reaches through it — the numeric-triad canonical shape, a
2304        // pre-release build with a dotted identifier chain, a full-
2305        // metadata build, a large-magnitude triad, and the empty
2306        // string (which reaches this accessor unchanged before any
2307        // validate gate rejects it). Sibling to the peer
2308        // `membro_versao_requirement_returns_versao_byte_equal_across_permutations`
2309        // (a40b0e3) / `membro_nome_returns_caixa_byte_equal_across_permutations`
2310        // (4a32abf) pins on the sibling M3 mesh-slot scalar-accessor
2311        // family — extended here onto the first M2 slot scalar-value
2312        // axis. Any silent detour on the accessor (a `.to_string()`
2313        // + retained ownership shape, a canonicalization pass, a
2314        // trim-whitespace on the return path) surfaces as a byte-
2315        // inequality failure here rather than as a downstream error-
2316        // diagnostic drift.
2317        let cases = ["0.1.0", "0.2.0-rc.1", "1.0.0+build.42", "10.20.30", ""];
2318        for from in cases {
2319            let e = entry(from, vec![]);
2320            assert_eq!(
2321                e.prior_versao(),
2322                from,
2323                "prior_versao() must return the `:from` field byte-for-byte for {from:?}",
2324            );
2325            assert_eq!(
2326                e.prior_versao().len(),
2327                from.len(),
2328                "prior_versao() byte-length must equal the `:from` field's for {from:?}",
2329            );
2330        }
2331    }
2332
2333    #[test]
2334    fn prior_versao_borrows_from_from_storage() {
2335        // Same-address pin: `UpgradeFromEntry::prior_versao` returns
2336        // a borrow into `self.from`'s heap allocation, never a fresh
2337        // owned copy. Guards against a future silent detour where
2338        // the accessor materializes a `Cow<'_, str>` / `String` /
2339        // `Rc<str>` intermediate — the return path stays zero-cost
2340        // even under a refactor that reshapes the storage. Sibling
2341        // to the peer `membro_versao_requirement_borrows_from_versao_storage`
2342        // (a40b0e3) / `membro_nome_borrows_from_caixa_storage`
2343        // (4a32abf) pins — extended onto the M2 slot's first
2344        // scalar-value axis.
2345        let e = entry("0.1.0", vec![]);
2346        assert!(
2347            std::ptr::eq(e.prior_versao().as_ptr(), e.from.as_ptr()),
2348            "prior_versao() must borrow from `self.from`'s storage, not allocate a fresh copy",
2349        );
2350    }
2351
2352    #[test]
2353    fn validate_parses_prior_versao_through_lifted_accessor() {
2354        // Coherence pin between the accessor and the SemVer-2 parse
2355        // gate: every `:upgrade-from :from` value the validator
2356        // accepts (resp. rejects) must be identical to what
2357        // `Version::parse(entry.prior_versao())` accepts (resp.
2358        // rejects) — the two must remain in lockstep across the
2359        // shape lattice so `validate_upgrade_from`'s
2360        // `Version::parse(entry.prior_versao()).expect(...)` re-parse
2361        // assertion holds by construction. If a future extension of
2362        // `prior_versao` reshapes the return (a canonicalization
2363        // pass, a leading/trailing whitespace trim, an empty-to-
2364        // "0.0.0" fallback) it would either loosen the validator
2365        // (silently accepting shapes the parser rejects) or
2366        // tighten the parser's re-parse (silently panicking on
2367        // shapes the validator accepts) — this pin catches either
2368        // shift at caixa-core build time.
2369        let accepted = ["0.1.0", "0.2.0-rc.1", "1.0.0+build.42", "10.20.30"];
2370        for from in accepted {
2371            let e = entry(from, vec![]);
2372            e.validate().unwrap_or_else(|err| {
2373                panic!("validate() must accept {from:?} that Version::parse accepts, got {err:?}");
2374            });
2375            semver::Version::parse(e.prior_versao()).unwrap_or_else(|err| {
2376                panic!(
2377                    "Version::parse(prior_versao()) must accept {from:?} that validate() accepts, \
2378                     got {err:?}",
2379                );
2380            });
2381        }
2382        let rejected = ["", "v0.1.0", "0.1", "not-a-semver", "0.1.0.0"];
2383        for from in rejected {
2384            let e = entry(from, vec![]);
2385            assert!(
2386                matches!(e.validate(), Err(UpgradeError::FromInvalid { .. })),
2387                "validate() must reject {from:?} that Version::parse rejects",
2388            );
2389            assert!(
2390                semver::Version::parse(e.prior_versao()).is_err(),
2391                "Version::parse(prior_versao()) must reject {from:?} that validate() rejects",
2392            );
2393        }
2394    }
2395
2396    #[test]
2397    fn validate_rejects_empty_module() {
2398        // Per-arm coverage: every Module-bearing variant surfaces the
2399        // kind-tagged `ModuleEmpty` diagnostic naming its lisp-form,
2400        // so the author can grep their caixa.lisp for `(:load-module
2401        // …)` / `(:soft-purge …)` / `(:purge …)` and fix it in one
2402        // edit — same self-locating shape `BehaviorError::EmptyPath`
2403        // (b0c8389) carries on the peer M2 typed slot.
2404        let cases: &[(UpgradeInstruction, &'static str)] = &[
2405            (
2406                UpgradeInstruction::LoadModule {
2407                    module: String::new(),
2408                },
2409                crate::render::M2_UPGRADE_INSTRUCTION_KIND_LOAD_MODULE,
2410            ),
2411            (
2412                UpgradeInstruction::SoftPurge {
2413                    module: String::new(),
2414                },
2415                crate::render::M2_UPGRADE_INSTRUCTION_KIND_SOFT_PURGE,
2416            ),
2417            (
2418                UpgradeInstruction::Purge {
2419                    module: String::new(),
2420                },
2421                crate::render::M2_UPGRADE_INSTRUCTION_KIND_PURGE,
2422            ),
2423        ];
2424        for (instr, expected_kind) in cases {
2425            assert_eq!(
2426                instr.validate().unwrap_err(),
2427                UpgradeError::ModuleEmpty {
2428                    kind: expected_kind
2429                },
2430                "empty :module on {instr:?} must surface as ModuleEmpty {{ kind: {expected_kind:?} }}"
2431            );
2432        }
2433    }
2434
2435    #[test]
2436    fn validate_rejects_non_dns_1123_module() {
2437        // Every appup `:module` reference is a caixa name (the
2438        // wasm-engine resolves it through the same ComputeUnit
2439        // registry the operator manages), so the value-shape gate
2440        // matches the K8s apiserver-side DNS-1123 label rule. Sweep
2441        // the canonical authoring footguns — uppercase letters, `_`
2442        // separator, embedded `.`, leading/trailing `-`, an embedded
2443        // whitespace byte, the >63-byte UUID-shaped slug — across
2444        // every Module-bearing variant; each must surface as
2445        // `ModuleInvalid { kind, module, reason }` carrying the
2446        // offending value verbatim and the parser-shaped reason.
2447        type Build = fn(String) -> UpgradeInstruction;
2448        let footguns: &[&str] = &[
2449            "Hello-Rio",
2450            "hello_rio",
2451            "hello.rio",
2452            "-hello",
2453            "hello-",
2454            "hello rio",
2455            &"x".repeat(crate::render::DNS_1123_LABEL_MAX_LEN + 1),
2456        ];
2457        let variants: &[(Build, &'static str)] = &[
2458            (
2459                |m| UpgradeInstruction::LoadModule { module: m },
2460                crate::render::M2_UPGRADE_INSTRUCTION_KIND_LOAD_MODULE,
2461            ),
2462            (
2463                |m| UpgradeInstruction::SoftPurge { module: m },
2464                crate::render::M2_UPGRADE_INSTRUCTION_KIND_SOFT_PURGE,
2465            ),
2466            (
2467                |m| UpgradeInstruction::Purge { module: m },
2468                crate::render::M2_UPGRADE_INSTRUCTION_KIND_PURGE,
2469            ),
2470        ];
2471        for (build, expected_kind) in variants {
2472            for module in footguns {
2473                let instr = build((*module).to_string());
2474                let err = instr.validate().unwrap_err();
2475                match err {
2476                    UpgradeError::ModuleInvalid {
2477                        kind,
2478                        module: m,
2479                        reason,
2480                    } => {
2481                        assert_eq!(
2482                            kind, *expected_kind,
2483                            ":module footgun on {instr:?} must tag the lisp-form"
2484                        );
2485                        assert_eq!(
2486                            m, *module,
2487                            "ModuleInvalid must carry the offending value verbatim"
2488                        );
2489                        assert!(
2490                            !reason.is_empty(),
2491                            "ModuleInvalid reason must name the specific violation \
2492                             (the predicate's parser-shaped wording from \
2493                             `is_dns_1123_label`), got empty"
2494                        );
2495                    }
2496                    other => panic!("expected ModuleInvalid on {instr:?}, got {other:?}"),
2497                }
2498            }
2499        }
2500    }
2501
2502    #[test]
2503    fn validate_accepts_canonical_module_names() {
2504        // Positive control: every documented authoring shape — bare
2505        // identifier, with hyphens, with digits, the
2506        // suffix-versioned alias `<nome>-old` `SoftPurge` typically
2507        // references — passes the gate. Drift here = a future
2508        // tighten that rejects any of these surfaces as a
2509        // test-failure at the predicate boundary, not piecemeal
2510        // across per-instruction call sites.
2511        let canonical: &[&str] = &[
2512            "hello-rio",
2513            "hello-rio-old",
2514            "cache",
2515            "cache-v2",
2516            "x",
2517            "a1",
2518            "0a",
2519            "abc-123-def",
2520        ];
2521        for module in canonical {
2522            UpgradeInstruction::LoadModule {
2523                module: (*module).to_string(),
2524            }
2525            .validate()
2526            .unwrap_or_else(|e| panic!("LoadModule {module:?} must pass, got {e:?}"));
2527            UpgradeInstruction::SoftPurge {
2528                module: (*module).to_string(),
2529            }
2530            .validate()
2531            .unwrap_or_else(|e| panic!("SoftPurge {module:?} must pass, got {e:?}"));
2532            UpgradeInstruction::Purge {
2533                module: (*module).to_string(),
2534            }
2535            .validate()
2536            .unwrap_or_else(|e| panic!("Purge {module:?} must pass, got {e:?}"));
2537        }
2538    }
2539
2540    #[test]
2541    fn validate_empty_takes_precedence_over_invalid() {
2542        // Empty input is rejected via the narrower `ModuleEmpty`
2543        // diagnostic before the DNS-1123 predicate is consulted, so
2544        // a future tighten that adds another stage between the two
2545        // doesn't accidentally reorder the diagnostic precedence.
2546        // Mirrors the empty-first cascade on every peer DNS-1123
2547        // gate (`validate_membro_caixa`, `validate_placement_cluster`,
2548        // `SupervisorSpec::validate`'s child-name arm).
2549        let err = UpgradeInstruction::LoadModule {
2550            module: String::new(),
2551        }
2552        .validate()
2553        .unwrap_err();
2554        assert_eq!(
2555            err,
2556            UpgradeError::ModuleEmpty {
2557                kind: crate::render::M2_UPGRADE_INSTRUCTION_KIND_LOAD_MODULE
2558            }
2559        );
2560    }
2561
2562    #[test]
2563    fn validate_rejects_empty_script() {
2564        let i = UpgradeInstruction::StateChange {
2565            script: PathBuf::new(),
2566        };
2567        assert_eq!(i.validate().unwrap_err(), UpgradeError::EmptyScript);
2568    }
2569
2570    #[test]
2571    fn validate_rejects_absolute_script() {
2572        let i = UpgradeInstruction::StateChange {
2573            script: PathBuf::from("/etc/migrations.lisp"),
2574        };
2575        assert!(matches!(
2576            i.validate().unwrap_err(),
2577            UpgradeError::AbsoluteScript { .. }
2578        ));
2579    }
2580
2581    #[test]
2582    fn validate_rejects_parent_escape_script() {
2583        let i = UpgradeInstruction::StateChange {
2584            script: PathBuf::from("../sibling/migrations.lisp"),
2585        };
2586        assert!(matches!(
2587            i.validate().unwrap_err(),
2588            UpgradeError::ParentEscapeScript { .. }
2589        ));
2590        // mid-path `..` is also caught
2591        let i2 = UpgradeInstruction::StateChange {
2592            script: PathBuf::from("lib/../../escaped.lisp"),
2593        };
2594        assert!(matches!(
2595            i2.validate().unwrap_err(),
2596            UpgradeError::ParentEscapeScript { .. }
2597        ));
2598    }
2599
2600    // ── :upgrade-from :state-change :script `.lisp` extension gate ─
2601    // Mirrors the c97815a `BehaviorError::NonLispExtension` arm on
2602    // the peer `:behavior :on-*` tatara-lisp-source-path axis. Both
2603    // axes route through the same M2.5 wasm-engine `tatara_lisp::read`
2604    // consumer; the file-type contract is identical, so the per-axis
2605    // test grid is mirrored leg-for-leg.
2606
2607    #[test]
2608    fn validate_rejects_no_extension_script() {
2609        // Fail-before-pass-after: the canonical "I declared the
2610        // migration script but forgot the `.lisp` extension"
2611        // authoring footgun (e.g. `(:state-change "lib/migrations")`).
2612        // The wasm-engine's `tatara_lisp::read` consumer needs a
2613        // file-type contract beyond the structural-shape gate; a
2614        // no-extension path past `is_sandboxed_relative_path` would
2615        // surface a parser-shaped diagnostic at hot-upgrade migration
2616        // time far from the source caixa.lisp.
2617        for relpath in ["lib/migrations", "migrations", "lib/handlers/migrate"] {
2618            let i = UpgradeInstruction::StateChange {
2619                script: PathBuf::from(relpath),
2620            };
2621            let err = i.validate().unwrap_err();
2622            assert!(
2623                matches!(&err, UpgradeError::NonLispExtensionScript { script: s }
2624                         if s == Path::new(relpath)),
2625                "no-extension script {relpath:?} must surface as NonLispExtensionScript \
2626                 carrying the offending path verbatim, got {err:?}"
2627            );
2628        }
2629    }
2630
2631    #[test]
2632    fn validate_rejects_non_lisp_extension_script() {
2633        // Wrong-extension sweep across common authoring footguns: the
2634        // `.txt` / `.md` / `.json` / `.yaml` shapes an author might
2635        // drag in from the workspace tree, the `.rs` shape that an
2636        // IDE auto-complete might propose, the `.lisp.bak` shape an
2637        // editor might leave behind, and the `.lispx` near-miss that
2638        // a typo would produce. Each must surface as
2639        // `NonLispExtensionScript` carrying the offending path
2640        // verbatim — the wasm-engine's `tatara_lisp::read` consumer
2641        // rejects all of these at hot-upgrade migration time, and
2642        // the gate lifts that contract to validate time. Mirrors the
2643        // peer `BehaviorError::NonLispExtension` sweep (c97815a) on
2644        // the `:behavior :on-*` axis leg-for-leg — same downstream
2645        // consumer, same accepted set, same per-axis test grid.
2646        let footguns: &[&str] = &[
2647            "lib/migrations.rs",
2648            "lib/migrations.txt",
2649            "lib/migrations.md",
2650            "lib/migrations.json",
2651            "lib/migrations.yaml",
2652            "lib/migrations.toml",
2653            "lib/migrations.lisp.bak",
2654            "lib/migrations.lispx",
2655            "lib/migrations.lis",
2656        ];
2657        for relpath in footguns {
2658            let i = UpgradeInstruction::StateChange {
2659                script: PathBuf::from(relpath),
2660            };
2661            let err = i.validate().unwrap_err();
2662            assert!(
2663                matches!(&err, UpgradeError::NonLispExtensionScript { script: s }
2664                         if s == Path::new(relpath)),
2665                "wrong-extension script {relpath:?} must surface as NonLispExtensionScript \
2666                 carrying the offending path verbatim, got {err:?}"
2667            );
2668        }
2669    }
2670
2671    #[test]
2672    fn validate_rejects_uppercase_lisp_extension_script() {
2673        // Strict lowercase: `.LISP` / `.Lisp` / `.LiSp` are
2674        // case-folded shapes a case-insensitive volume's existence
2675        // check would match the on-disk file — but the
2676        // canonical-form codec emits lowercase `.lisp` verbatim, so
2677        // a case-folded shape mismatches the round-trip-stable
2678        // canonical form (THEORY.md §V.2.7 render-determinism).
2679        // Same case-sensitive discipline the byte-size / duration
2680        // codecs use on unit suffixes (`MiB`, `ms`, `s`, `m`, `h`)
2681        // and every other shape-gate predicate in `render.rs` (label
2682        // / scheme / unit boundaries). Mirrors the peer
2683        // `BehaviorError::NonLispExtension` case-fold sweep (c97815a).
2684        for relpath in [
2685            "lib/migrations.LISP",
2686            "lib/migrations.Lisp",
2687            "lib/migrations.LiSp",
2688            "lib/migrations.lISP",
2689        ] {
2690            let i = UpgradeInstruction::StateChange {
2691                script: PathBuf::from(relpath),
2692            };
2693            let err = i.validate().unwrap_err();
2694            assert!(
2695                matches!(&err, UpgradeError::NonLispExtensionScript { script: s }
2696                         if s == Path::new(relpath)),
2697                "case-folded `.lisp` extension {relpath:?} must surface as \
2698                 NonLispExtensionScript (strict lowercase, canonical-form \
2699                 round-trip pin), got {err:?}"
2700            );
2701        }
2702    }
2703
2704    #[test]
2705    fn validate_accepts_canonical_lisp_extension_scripts() {
2706        // Positive-control sweep across every canonical in-tree
2707        // authoring shape: bare filename, standard `lib/`
2708        // subdirectory, deeply-nested migrations subdirectory,
2709        // explicit current-dir-relative prefix, mid-path `./`
2710        // segment, multi-dot stem (the version-suffix shape
2711        // `lib/migrations/v.0.1.lisp` an author might use to encode
2712        // the migration's `:from` version into the filename). Drift
2713        // here = a future tightening that rejects any of these
2714        // surfaces as a test-failure at the per-axis validator
2715        // boundary, not piecemeal across renderer / layout-checker
2716        // call sites. Mirrors the peer `BehaviorSpec` positive-set
2717        // sweep (c97815a).
2718        let canonical: &[&str] = &[
2719            "lib/migrations.lisp",
2720            "lib/migrations/v01-to-v02.lisp",
2721            "migrations.lisp",
2722            "a.lisp",
2723            "./lib/migrations.lisp",
2724            "lib/./migrations.lisp",
2725            "lib/migrations/v.0.1.lisp",
2726        ];
2727        for relpath in canonical {
2728            UpgradeInstruction::StateChange {
2729                script: PathBuf::from(relpath),
2730            }
2731            .validate()
2732            .unwrap_or_else(|e| {
2733                panic!("canonical `.lisp` script {relpath:?} must pass, got {e:?}")
2734            });
2735        }
2736    }
2737
2738    #[test]
2739    fn validate_sandbox_shape_takes_precedence_over_lisp_extension() {
2740        // Cross-arm precedence pin: a script that is *both*
2741        // sandbox-escaping (Empty / Absolute / ParentEscape) and
2742        // non-`.lisp` must surface the more-fundamental
2743        // sandbox-shape diagnostic first — the canonical fix
2744        // collapses both into "pin a relative `.lisp` path under the
2745        // caixa root", and the `.lisp` remediation would be
2746        // misleading when the offending path can never resolve under
2747        // the caixa root anyway. Mirrors the peer
2748        // `BehaviorError` cross-arm precedence (c97815a) and the
2749        // sibling `LimitsError`
2750        // (`MemoryZero` → `MemoryBelowWasm32Page` →
2751        // `MemoryExceedsWasm32Cap` → `MemoryNotPageMultiple`)
2752        // smallest-scope-arm-fires-last posture.
2753        let i_empty = UpgradeInstruction::StateChange {
2754            script: PathBuf::new(),
2755        };
2756        assert_eq!(i_empty.validate().unwrap_err(), UpgradeError::EmptyScript);
2757        let i_abs = UpgradeInstruction::StateChange {
2758            script: PathBuf::from("/etc/migrations.txt"),
2759        };
2760        assert!(
2761            matches!(
2762                i_abs.validate().unwrap_err(),
2763                UpgradeError::AbsoluteScript { .. }
2764            ),
2765            "absolute + non-`.lisp` must surface AbsoluteScript first"
2766        );
2767        let i_esc = UpgradeInstruction::StateChange {
2768            script: PathBuf::from("../sibling/migrations.rs"),
2769        };
2770        assert!(
2771            matches!(
2772                i_esc.validate().unwrap_err(),
2773                UpgradeError::ParentEscapeScript { .. }
2774            ),
2775            "parent-escape + non-`.lisp` must surface ParentEscapeScript first"
2776        );
2777    }
2778
2779    #[test]
2780    fn non_lisp_extension_script_diagnostic_carries_offending_path() {
2781        // Diagnostic-shape pin: the surfaced error message names the
2782        // offending path verbatim (so the author can grep their
2783        // caixa.lisp for the literal value), the `.lisp` extension
2784        // is named in the remediation, and the downstream consumer
2785        // (`tatara_lisp::read` at hot-upgrade migration time) is
2786        // named so the author can trace the contract back to its
2787        // source. Same self-locating shape every per-axis variant
2788        // carries (`BehaviorError::NonLispExtension`, c97815a;
2789        // `LimitsError::MemoryNotPageMultiple`, ec266d8).
2790        let bad = PathBuf::from("lib/migrations.txt");
2791        let err = UpgradeInstruction::StateChange {
2792            script: bad.clone(),
2793        }
2794        .validate()
2795        .unwrap_err();
2796        let msg = err.to_string();
2797        assert!(
2798            msg.contains("lib/migrations.txt"),
2799            "diagnostic must name the offending path verbatim, got {msg:?}"
2800        );
2801        assert!(
2802            msg.contains(".lisp"),
2803            "diagnostic must name the expected `.lisp` extension, got {msg:?}"
2804        );
2805        assert!(
2806            msg.contains(crate::render::M2_UPGRADE_INSTRUCTION_KIND_STATE_CHANGE),
2807            "diagnostic must name the offending `:state-change` instruction, got {msg:?}"
2808        );
2809        match err {
2810            UpgradeError::NonLispExtensionScript { script } => {
2811                assert_eq!(
2812                    script, bad,
2813                    "variant must carry the offending path verbatim"
2814                );
2815            }
2816            other => panic!("expected NonLispExtensionScript, got {other:?}"),
2817        }
2818    }
2819
2820    #[test]
2821    fn declared_path_only_for_state_change() {
2822        let load = UpgradeInstruction::LoadModule { module: "x".into() };
2823        assert!(load.declared_path().is_none());
2824        let mig = UpgradeInstruction::StateChange {
2825            script: PathBuf::from("lib/m.lisp"),
2826        };
2827        assert_eq!(mig.declared_path(), Some(&PathBuf::from("lib/m.lisp")));
2828    }
2829
2830    #[test]
2831    fn upgrade_instruction_is_restart_predicate_partitions_the_arm_set() {
2832        // The fail-before-pass-after pin on the `gen_platform::IsVariant`
2833        // derive's [`UpgradeInstruction::is_restart`] arm-discriminator
2834        // predicate: [`UpgradeInstruction::Restart`] is the only variant
2835        // that satisfies `.is_restart()`; every module-bearing arm
2836        // (`LoadModule` / `SoftPurge` / `Purge`) and the script-carrying
2837        // `StateChange` arm all return `false`. This pin makes the
2838        // partition invariant load-bearing at caixa-core test time so a
2839        // future derive regression (a hole that returns `false` for
2840        // `Restart` too, or a byte-collision that flips a second variant
2841        // to `true`) trips here rather than laundering the arm at
2842        // [`Self::validate_restart_exclusive`]'s paired positive /
2843        // negated filter sites (a hole flips restart-count to 0 →
2844        // vacuous OK; a collision flips restart-count > 1 → false
2845        // `RestartNotExclusive` on an entry the author declared without
2846        // any `(:restart)`). Peer of the sibling
2847        // [`crate::kind::tests::caixa_kind_is_variant_predicates_partition_the_arm_set`]
2848        // pin on the M0 `CaixaKind` axis.
2849        let cases: &[(UpgradeInstruction, bool)] = &[
2850            (UpgradeInstruction::LoadModule { module: "a".into() }, false),
2851            (UpgradeInstruction::SoftPurge { module: "b".into() }, false),
2852            (UpgradeInstruction::Purge { module: "c".into() }, false),
2853            (
2854                UpgradeInstruction::StateChange {
2855                    script: PathBuf::from("lib/m.lisp"),
2856                },
2857                false,
2858            ),
2859            (UpgradeInstruction::Restart, true),
2860        ];
2861        for (variant, expected) in cases {
2862            assert_eq!(
2863                variant.is_restart(),
2864                *expected,
2865                "UpgradeInstruction::{variant:?}.is_restart() must \
2866                 return {expected} (partition invariant on the \
2867                 IsVariant-derived arm-discriminator predicate)"
2868            );
2869        }
2870    }
2871
2872    #[test]
2873    fn validate_restart_exclusive_routes_through_is_restart_predicate() {
2874        // Byte-identity pin on the paired positive / negated
2875        // `.is_restart()` filters at
2876        // [`Self::validate_restart_exclusive`] against the pre-lift
2877        // `matches!(i, UpgradeInstruction::Restart)` /
2878        // `!matches!(i, UpgradeInstruction::Restart)` predicates every
2879        // consumer of the gate previously coupled to inline. Asserts
2880        // the two projections agree byte-for-byte on every arm of the
2881        // enum, so a future derive regression that flipped either
2882        // predicate's arm-set would surface here at caixa-core test
2883        // time rather than at
2884        // [`Self::validate_restart_exclusive`]'s per-entry restart-
2885        // count / other-kinds tabulation far from the derive site.
2886        // Same peer-shape pin every sibling
2887        // `IsVariant`-derive-routed gate carries on the substrate's
2888        // closed-set typed-enum surface.
2889        let cases: Vec<UpgradeInstruction> = vec![
2890            UpgradeInstruction::LoadModule { module: "a".into() },
2891            UpgradeInstruction::SoftPurge { module: "b".into() },
2892            UpgradeInstruction::Purge { module: "c".into() },
2893            UpgradeInstruction::StateChange {
2894                script: PathBuf::from("lib/m.lisp"),
2895            },
2896            UpgradeInstruction::Restart,
2897        ];
2898        for instr in &cases {
2899            let via_predicate = instr.is_restart();
2900            let via_matches = matches!(instr, UpgradeInstruction::Restart);
2901            assert_eq!(
2902                via_predicate, via_matches,
2903                "UpgradeInstruction::{instr:?}: is_restart() must \
2904                 byte-equal matches!(_, UpgradeInstruction::Restart) — \
2905                 the pre-lift open-coded pattern and the \
2906                 IsVariant-derived predicate are the same axis, \
2907                 one typed dispatch"
2908            );
2909        }
2910    }
2911
2912    #[test]
2913    fn upgrade_instruction_is_cleanup_predicate_partitions_the_arm_set() {
2914        // The fail-before-pass-after pin on the lifted
2915        // [`UpgradeInstruction::is_cleanup`] two-arm cleanup-family
2916        // arm-discriminator predicate:
2917        // [`UpgradeInstruction::SoftPurge`] and
2918        // [`UpgradeInstruction::Purge`] are the two OTP-appup two-
2919        // phase-code-load cleanup arms that satisfy `.is_cleanup()`;
2920        // every non-cleanup arm ([`UpgradeInstruction::LoadModule`]
2921        // on the paired two-phase-load half,
2922        // [`UpgradeInstruction::StateChange`] on the
2923        // `gen_server:code_change/3`-analog migration axis,
2924        // [`UpgradeInstruction::Restart`] on the OTP terminal-
2925        // fallback shape) returns `false`. This pin makes the
2926        // partition invariant load-bearing at caixa-core test time
2927        // so a future accessor regression (a hole that returns
2928        // `false` for `SoftPurge` or `Purge`, or a byte-collision
2929        // that flips `LoadModule` / `StateChange` / `Restart` to
2930        // `true`) trips here rather than laundering the arm at the
2931        // three within-entry cross-instruction cleanup-facing gates
2932        // ([`UpgradeFromEntry::validate_purge_ordering`],
2933        // [`UpgradeFromEntry::validate_state_change_before_cleanup`],
2934        // [`UpgradeFromEntry::validate_cleanup_singularity`]) — a
2935        // hole would silently accept a cleanup-shaped entry the
2936        // three gates should refuse; a collision would fire a
2937        // `PurgeWithoutPriorLoad` / `StateChangeAfterCleanup` /
2938        // `DuplicateCleanup` refusal on a well-shaped
2939        // [`UpgradeInstruction::LoadModule`] / `StateChange` /
2940        // `Restart` arm the three gates should pass through. Peer
2941        // of the sibling
2942        // [`upgrade_instruction_is_restart_predicate_partitions_the_arm_set`]
2943        // pin on the single-arm terminal-fallback partition —
2944        // extended here from the single-arm case onto the two-arm
2945        // cleanup-family union case.
2946        let cases: &[(UpgradeInstruction, bool)] = &[
2947            (UpgradeInstruction::LoadModule { module: "a".into() }, false),
2948            (UpgradeInstruction::SoftPurge { module: "b".into() }, true),
2949            (UpgradeInstruction::Purge { module: "c".into() }, true),
2950            (
2951                UpgradeInstruction::StateChange {
2952                    script: PathBuf::from("lib/m.lisp"),
2953                },
2954                false,
2955            ),
2956            (UpgradeInstruction::Restart, false),
2957        ];
2958        for (variant, expected) in cases {
2959            assert_eq!(
2960                variant.is_cleanup(),
2961                *expected,
2962                "UpgradeInstruction::{variant:?}.is_cleanup() must \
2963                 return {expected} (partition invariant on the \
2964                 lifted OTP-appup two-arm cleanup-family arm-\
2965                 discriminator predicate)"
2966            );
2967        }
2968    }
2969
2970    #[test]
2971    fn upgrade_instruction_is_cleanup_composes_through_is_soft_purge_or_is_purge() {
2972        // Byte-identity pin on the [`UpgradeInstruction::is_cleanup`]
2973        // composition against the two [`gen_platform::IsVariant`]-
2974        // derive-generated per-variant classifiers it routes through
2975        // — the accessor's one body must byte-equal
2976        // `self.is_soft_purge() || self.is_purge()` across every arm
2977        // of the closed-set enum, so a future silent detour that
2978        // reintroduced a raw `matches!` pattern or that stopped
2979        // composing through the derive-generated per-variant
2980        // predicates (an accidental `self.is_soft_purge()` on its
2981        // own — silently dropping the `Purge` arm; an accidental
2982        // `self.is_purge() || self.is_state_change()` — silently
2983        // folding the migration arm into the cleanup family; a
2984        // typo `&&` for the union `||` — silently classifying no
2985        // arm as cleanup) trips here at caixa-core test time
2986        // rather than laundering the arm at the three within-entry
2987        // cross-instruction cleanup-facing gates. Same peer-shape
2988        // pin the sibling
2989        // [`validate_restart_exclusive_routes_through_is_restart_predicate`]
2990        // carries on the paired terminal-fallback axis.
2991        let cases: Vec<UpgradeInstruction> = vec![
2992            UpgradeInstruction::LoadModule { module: "a".into() },
2993            UpgradeInstruction::SoftPurge { module: "b".into() },
2994            UpgradeInstruction::Purge { module: "c".into() },
2995            UpgradeInstruction::StateChange {
2996                script: PathBuf::from("lib/m.lisp"),
2997            },
2998            UpgradeInstruction::Restart,
2999        ];
3000        for instr in &cases {
3001            let via_predicate = instr.is_cleanup();
3002            let via_composition = instr.is_soft_purge() || instr.is_purge();
3003            assert_eq!(
3004                via_predicate, via_composition,
3005                "UpgradeInstruction::{instr:?}: is_cleanup() must \
3006                 byte-equal is_soft_purge() || is_purge() — the \
3007                 lifted union predicate and its per-variant \
3008                 composition are the same axis, one typed dispatch"
3009            );
3010        }
3011    }
3012
3013    #[test]
3014    fn upgrade_instruction_is_cleanup_implies_declared_module_is_some() {
3015        // Composition-pin the load-bearing invariant every consumer
3016        // that routes through `is_cleanup()` + `declared_module()`
3017        // relies on: any [`UpgradeInstruction`] value whose
3018        // `.is_cleanup()` returns `true` must have a `Some(_)`
3019        // `.declared_module()`. This makes the three within-entry
3020        // cross-instruction cleanup-facing gates' `.expect("is_cleanup()
3021        // implies declared_module() is Some")` structurally
3022        // infallible at build time — a future refactor that added
3023        // a cleanup-shaped variant carrying no `:module` would trip
3024        // here rather than panic at
3025        // [`UpgradeFromEntry::validate_purge_ordering`] /
3026        // [`UpgradeFromEntry::validate_state_change_before_cleanup`] /
3027        // [`UpgradeFromEntry::validate_cleanup_singularity`] at
3028        // runtime on the offending author's caixa.lisp.
3029        let cases: Vec<UpgradeInstruction> = vec![
3030            UpgradeInstruction::LoadModule { module: "a".into() },
3031            UpgradeInstruction::SoftPurge { module: "b".into() },
3032            UpgradeInstruction::Purge { module: "c".into() },
3033            UpgradeInstruction::StateChange {
3034                script: PathBuf::from("lib/m.lisp"),
3035            },
3036            UpgradeInstruction::Restart,
3037        ];
3038        for instr in &cases {
3039            if instr.is_cleanup() {
3040                assert!(
3041                    instr.declared_module().is_some(),
3042                    "UpgradeInstruction::{instr:?}: is_cleanup() \
3043                     must imply declared_module().is_some() — the \
3044                     three within-entry cross-instruction cleanup-\
3045                     facing gates rely on this invariant to route \
3046                     the cleanup-target :module scalar through the \
3047                     sibling declared_module accessor without a \
3048                     pattern-bound `module` binding"
3049                );
3050            }
3051        }
3052    }
3053
3054    #[test]
3055    fn upgrade_instruction_is_load_module_implies_declared_module_is_some() {
3056        // Composition-pin the load-bearing invariant
3057        // [`UpgradeFromEntry::validate_load_singularity`] relies on
3058        // when routing the per-instruction load-family arm-discriminator
3059        // through the sibling
3060        // [`UpgradeInstruction::is_load_module`] +
3061        // [`UpgradeInstruction::declared_module`] accessor pair: any
3062        // [`UpgradeInstruction`] value whose `.is_load_module()`
3063        // returns `true` must have a `Some(_)` `.declared_module()`.
3064        // This makes the gate's `.expect("is_load_module() implies
3065        // declared_module() is Some")` structurally infallible at
3066        // build time — a future refactor that added a load-shaped
3067        // variant carrying no `:module` would trip here rather than
3068        // panic at [`UpgradeFromEntry::validate_load_singularity`]
3069        // at runtime on the offending author's caixa.lisp. Sibling
3070        // of the peer
3071        // [`upgrade_instruction_is_cleanup_implies_declared_module_is_some`]
3072        // composition pin on the two-arm cleanup-family axis — same
3073        // "predicate implies accessor" discipline extended onto the
3074        // single-arm load-family axis, closes the load-vs-cleanup
3075        // pair on the substrate primitive's typed dispatch discipline.
3076        let cases: Vec<UpgradeInstruction> = vec![
3077            UpgradeInstruction::LoadModule { module: "a".into() },
3078            UpgradeInstruction::SoftPurge { module: "b".into() },
3079            UpgradeInstruction::Purge { module: "c".into() },
3080            UpgradeInstruction::StateChange {
3081                script: PathBuf::from("lib/m.lisp"),
3082            },
3083            UpgradeInstruction::Restart,
3084        ];
3085        for instr in &cases {
3086            if instr.is_load_module() {
3087                assert!(
3088                    instr.declared_module().is_some(),
3089                    "UpgradeInstruction::{instr:?}: is_load_module() \
3090                     must imply declared_module().is_some() — the \
3091                     within-entry load-singularity gate relies on this \
3092                     invariant to route the load-target :module scalar \
3093                     through the sibling declared_module accessor \
3094                     without a pattern-bound `module` binding"
3095                );
3096            }
3097        }
3098    }
3099
3100    #[test]
3101    fn validate_load_singularity_projects_modules_through_is_load_module_and_declared_module_accessors()
3102     {
3103        // Byte-identity pin on the
3104        // [`UpgradeFromEntry::validate_load_singularity`] load-family
3105        // dispatch against the pre-lift
3106        // `match instr { UpgradeInstruction::LoadModule { module } =>
3107        // module.as_str(), _ => continue }` open-coded pattern-match
3108        // the site previously carried. Asserts the two projections
3109        // agree byte-for-byte on every arm of the enum — the
3110        // arm-discriminator via `is_load_module()` and the `:module`
3111        // scalar via `declared_module()` — so a future derive
3112        // regression that flipped the predicate's arm-set (a hole
3113        // returning `false` for [`UpgradeInstruction::LoadModule`], a
3114        // byte-collision flipping a second variant to `true`) or an
3115        // accessor extension that promoted an additional variant onto
3116        // the `String`-carrying axis would trip here at caixa-core
3117        // test time rather than laundering the arm at the gate's
3118        // per-entry load-singularity scan far from the derive site.
3119        // Peer of the sibling
3120        // [`validate_purge_ordering_routes_through_is_load_module_predicate`]
3121        // byte-identity pin on the paired ordering-side load-family
3122        // sticky-latch dispatch (both consumers now agree on one
3123        // typed dispatch for the load-family axis) and the peer
3124        // [`validate_state_change_singularity_projects_scripts_through_declared_path_accessor`]
3125        // pin on the migration-family script-projection axis — the
3126        // three within-entry per-instruction-class singularity gates
3127        // now share one byte-identity pin apiece against their
3128        // respective substrate-primitive typed dispatches.
3129        //
3130        // Three-arm projective coverage:
3131        //   (a) `LoadModule` modules project through
3132        //       `declared_module()` byte-equal to the raw
3133        //       `module.as_str()` field access;
3134        //   (b) a duplicate-`LoadModule` input trips the gate on the
3135        //       second occurrence with `DuplicateLoadModule` carrying
3136        //       the offending module verbatim;
3137        //   (c) a non-`LoadModule`-only input (`SoftPurge` / `Purge` /
3138        //       `StateChange` / `Restart`) leaves the gate vacuous
3139        //       with `Ok(())` — the `!instr.is_load_module()`
3140        //       `continue` fall-through pins.
3141        //
3142        // Fail-before-pass-after verified locally: swapping the
3143        // production `if !instr.is_load_module() { continue; } let
3144        // module = instr.declared_module().expect(…);` back to `let
3145        // module = match instr { UpgradeInstruction::LoadModule
3146        // { module } => module.as_str(), _ => continue, };` keeps
3147        // arms (a)-(c) passing but silently detaches the gate from
3148        // the accessor's typed dispatch — any future
3149        // `is_load_module` / `declared_module` extension (a hole in
3150        // either predicate, a promotion of an additional variant
3151        // onto the `String`-carrying axis, an operator-side
3152        // pre-parsed caixa-name cache the accessor materializes)
3153        // would then silently disagree between this gate's raw
3154        // pattern-match and the peer per-`UpgradeInstruction`
3155        // consumers that route through the accessor pair.
3156
3157        // (a) LoadModule projection byte-equal via
3158        //     is_load_module() + declared_module().
3159        let lm = UpgradeInstruction::LoadModule {
3160            module: "hello-rio".into(),
3161        };
3162        assert!(
3163            lm.is_load_module(),
3164            "LoadModule must satisfy is_load_module() — the gate's \
3165             load-family arm-discriminator relies on this partition"
3166        );
3167        assert_eq!(
3168            lm.declared_module(),
3169            Some("hello-rio"),
3170            "declared_module() must project the LoadModule :module \
3171             byte-equal to the raw field access — accessor divergence \
3172             would silently detach the gate from the projection every \
3173             peer per-`UpgradeInstruction` consumer routes through"
3174        );
3175
3176        // (b) Duplicate-LoadModule input trips the gate.
3177        let dup = entry(
3178            "0.1.0",
3179            vec![
3180                UpgradeInstruction::LoadModule { module: "x".into() },
3181                UpgradeInstruction::LoadModule { module: "x".into() },
3182            ],
3183        );
3184        assert_eq!(
3185            dup.validate_load_singularity(),
3186            Err(UpgradeError::DuplicateLoadModule {
3187                from: "0.1.0".into(),
3188                module: "x".into(),
3189            }),
3190            "duplicate LoadModule modules within one entry must fire \
3191             DuplicateLoadModule byte-identical to the pre-lift \
3192             pattern-match shape"
3193        );
3194
3195        // (c) Non-LoadModule-only input leaves the gate vacuous.
3196        let no_load = entry(
3197            "0.1.0",
3198            vec![
3199                UpgradeInstruction::StateChange {
3200                    script: PathBuf::from("lib/m.lisp"),
3201                },
3202                UpgradeInstruction::Restart,
3203            ],
3204        );
3205        assert_eq!(
3206            no_load.validate_load_singularity(),
3207            Ok(()),
3208            "non-LoadModule-only entries must leave the load-\
3209             singularity gate vacuous — the `!is_load_module()` \
3210             continue fall-through pins"
3211        );
3212    }
3213
3214    #[test]
3215    fn upgrade_instruction_is_load_module_predicate_partitions_the_arm_set() {
3216        // The fail-before-pass-after pin on the `gen_platform::IsVariant`
3217        // derive's [`UpgradeInstruction::is_load_module`] arm-discriminator
3218        // predicate: [`UpgradeInstruction::LoadModule`] is the only
3219        // variant that satisfies `.is_load_module()`; every cleanup arm
3220        // (`SoftPurge` / `Purge`), the migration arm (`StateChange`),
3221        // and the terminal-fallback arm (`Restart`) all return `false`.
3222        // This pin makes the partition invariant load-bearing at
3223        // caixa-core test time so a future derive regression (a hole
3224        // that returns `false` for `LoadModule` too, or a byte-collision
3225        // that flips a second variant to `true`) trips here rather than
3226        // laundering the arm at
3227        // [`Self::validate_purge_ordering`]'s load-family sticky-latch
3228        // dispatch — a hole would silently keep `loaded = false` through
3229        // a well-shaped [`UpgradeInstruction::LoadModule`] prefix and
3230        // false-fire `PurgeWithoutPriorLoad` on the trailing cleanup;
3231        // a collision would flip `loaded = true` on a well-shaped
3232        // cleanup-only entry and silently swallow the load-less
3233        // `PurgeWithoutPriorLoad` refusal. Peer of the sibling
3234        // [`upgrade_instruction_is_restart_predicate_partitions_the_arm_set`]
3235        // and
3236        // [`upgrade_instruction_is_cleanup_predicate_partitions_the_arm_set`]
3237        // pins on the paired terminal-fallback and cleanup-family
3238        // arm-discriminator axes — closes the last unlifted `matches!`-
3239        // based arm-discriminator axis on the OTP-appup closed-set
3240        // typed enum.
3241        let cases: &[(UpgradeInstruction, bool)] = &[
3242            (UpgradeInstruction::LoadModule { module: "a".into() }, true),
3243            (UpgradeInstruction::SoftPurge { module: "b".into() }, false),
3244            (UpgradeInstruction::Purge { module: "c".into() }, false),
3245            (
3246                UpgradeInstruction::StateChange {
3247                    script: PathBuf::from("lib/m.lisp"),
3248                },
3249                false,
3250            ),
3251            (UpgradeInstruction::Restart, false),
3252        ];
3253        for (variant, expected) in cases {
3254            assert_eq!(
3255                variant.is_load_module(),
3256                *expected,
3257                "UpgradeInstruction::{variant:?}.is_load_module() must \
3258                 return {expected} (partition invariant on the \
3259                 IsVariant-derived arm-discriminator predicate)"
3260            );
3261        }
3262    }
3263
3264    #[test]
3265    fn validate_purge_ordering_routes_through_is_load_module_predicate() {
3266        // Byte-identity pin on the [`Self::validate_purge_ordering`]
3267        // load-family sticky-latch dispatch against the pre-lift
3268        // `matches!(instr, UpgradeInstruction::LoadModule { .. })`
3269        // predicate the site previously open-coded. Asserts the two
3270        // projections agree byte-for-byte on every arm of the enum, so
3271        // a future derive regression that flipped the predicate's
3272        // arm-set would surface here at caixa-core test time rather
3273        // than at [`Self::validate_purge_ordering`]'s per-entry
3274        // load-before-cleanup ordering scan far from the derive site.
3275        // Same peer-shape pin the sibling
3276        // [`validate_restart_exclusive_routes_through_is_restart_predicate`]
3277        // carries on the paired terminal-fallback axis and the
3278        // [`upgrade_instruction_is_cleanup_composes_through_is_soft_purge_or_is_purge`]
3279        // carries on the two-arm cleanup-family axis — the third and
3280        // final byte-identity pin closes the substrate primitive's
3281        // arm-discriminator dispatch discipline on the OTP-appup
3282        // closed-set typed enum.
3283        let cases: Vec<UpgradeInstruction> = vec![
3284            UpgradeInstruction::LoadModule { module: "a".into() },
3285            UpgradeInstruction::SoftPurge { module: "b".into() },
3286            UpgradeInstruction::Purge { module: "c".into() },
3287            UpgradeInstruction::StateChange {
3288                script: PathBuf::from("lib/m.lisp"),
3289            },
3290            UpgradeInstruction::Restart,
3291        ];
3292        for instr in &cases {
3293            let via_predicate = instr.is_load_module();
3294            let via_matches = matches!(instr, UpgradeInstruction::LoadModule { .. });
3295            assert_eq!(
3296                via_predicate, via_matches,
3297                "UpgradeInstruction::{instr:?}: is_load_module() must \
3298                 byte-equal matches!(_, UpgradeInstruction::LoadModule \
3299                 {{ .. }}) — the pre-lift open-coded pattern and the \
3300                 IsVariant-derived predicate are the same axis, one \
3301                 typed dispatch"
3302            );
3303        }
3304    }
3305
3306    #[test]
3307    fn declared_module_only_for_module_bearing_variants() {
3308        // Pinned partition of the `UpgradeInstruction` closed-set
3309        // variant space against the sibling of the peer
3310        // `declared_path` accessor: every OTP-appup module-bearing
3311        // variant (`LoadModule` / `SoftPurge` / `Purge`) surfaces its
3312        // `:module` string byte-for-byte through the lifted
3313        // `declared_module` accessor; every non-module-bearing variant
3314        // (`StateChange` on the peer `:script`-carrying axis;
3315        // `Restart` on the OTP terminal-fallback data-less axis)
3316        // returns `None`. Mirrors the peer
3317        // `declared_path_only_for_state_change` pin — the pair now
3318        // closes both scalar-carrying axes on the enum on one lifted
3319        // `Option<&…>` accessor apiece.
3320        let load = UpgradeInstruction::LoadModule {
3321            module: "hello-rio".into(),
3322        };
3323        assert_eq!(load.declared_module(), Some("hello-rio"));
3324        let soft = UpgradeInstruction::SoftPurge {
3325            module: "hello-rio-old".into(),
3326        };
3327        assert_eq!(soft.declared_module(), Some("hello-rio-old"));
3328        let hard = UpgradeInstruction::Purge {
3329            module: "hello-rio-ancient".into(),
3330        };
3331        assert_eq!(hard.declared_module(), Some("hello-rio-ancient"));
3332        let mig = UpgradeInstruction::StateChange {
3333            script: PathBuf::from("lib/m.lisp"),
3334        };
3335        assert!(mig.declared_module().is_none());
3336        assert!(UpgradeInstruction::Restart.declared_module().is_none());
3337    }
3338
3339    #[test]
3340    fn declared_module_and_declared_path_partition_the_enum_variant_space() {
3341        // Byte-identity pin on the two-accessor partition: every
3342        // `UpgradeInstruction` variant returns `Some` from *exactly
3343        // one* of {`declared_module`, `declared_path`} (the two
3344        // module-bearing / script-carrying axes) or from *neither*
3345        // (the OTP terminal-fallback `Restart` shape). No variant
3346        // returns `Some` from both — the two axes are disjoint by
3347        // construction, and this pin closes the disjointness at the
3348        // test surface so a future variant that leaks a scalar across
3349        // both axes fails at build time. Mirrors the peer
3350        // `declared_paths_iter_covers_each_declared_slot_exactly_once`
3351        // discipline on the `BehaviorSpec` per-slot family.
3352        let cases: Vec<UpgradeInstruction> = vec![
3353            UpgradeInstruction::LoadModule { module: "a".into() },
3354            UpgradeInstruction::SoftPurge { module: "b".into() },
3355            UpgradeInstruction::Purge { module: "c".into() },
3356            UpgradeInstruction::StateChange {
3357                script: PathBuf::from("lib/m.lisp"),
3358            },
3359            UpgradeInstruction::Restart,
3360        ];
3361        for instr in &cases {
3362            let has_module = instr.declared_module().is_some();
3363            let has_path = instr.declared_path().is_some();
3364            assert!(
3365                !(has_module && has_path),
3366                "no variant may declare both a module and a path — offending: {instr:?}"
3367            );
3368            match instr {
3369                UpgradeInstruction::LoadModule { .. }
3370                | UpgradeInstruction::SoftPurge { .. }
3371                | UpgradeInstruction::Purge { .. } => {
3372                    assert!(has_module && !has_path, "module axis: {instr:?}");
3373                }
3374                UpgradeInstruction::StateChange { .. } => {
3375                    assert!(!has_module && has_path, "script axis: {instr:?}");
3376                }
3377                UpgradeInstruction::Restart => {
3378                    assert!(!has_module && !has_path, "data-less axis: {instr:?}");
3379                }
3380            }
3381        }
3382    }
3383
3384    #[test]
3385    fn entry_with_chain_of_versions() {
3386        // Middle entry pairs a `:load-module` with the trailing
3387        // `:soft-purge` so it satisfies the within-entry purge-ordering
3388        // gate (`PurgeWithoutPriorLoad` rejects `:soft-purge` without a
3389        // preceding `:load-module`, mirroring the state-change-ordering
3390        // gate's `StateChangeWithoutPriorLoad`). The chain shape under
3391        // test is *cross-entry* `:from` values; the within-entry shape
3392        // is incidental — keeping it canonical (`:load-module` before
3393        // `:soft-purge`) leaves the chain assertion load-bearing.
3394        let entries = vec![
3395            entry(
3396                "0.1.0",
3397                vec![UpgradeInstruction::LoadModule { module: "x".into() }],
3398            ),
3399            entry(
3400                "0.1.5",
3401                vec![
3402                    UpgradeInstruction::LoadModule { module: "x".into() },
3403                    UpgradeInstruction::SoftPurge {
3404                        module: "x-old".into(),
3405                    },
3406                ],
3407            ),
3408            entry("0.2.0-rc.1", vec![UpgradeInstruction::Restart]),
3409        ];
3410        for e in &entries {
3411            e.validate().unwrap();
3412        }
3413        let json = serde_json::to_string(&entries).unwrap();
3414        let back: Vec<UpgradeFromEntry> = serde_json::from_str(&json).unwrap();
3415        assert_eq!(entries, back);
3416    }
3417
3418    #[test]
3419    fn empty_instructions_list_is_valid() {
3420        let e = entry("0.1.0", vec![]);
3421        e.validate().unwrap();
3422    }
3423
3424    #[test]
3425    fn json_uses_kebab_case_kind_tags() {
3426        let i = UpgradeInstruction::SoftPurge {
3427            module: "x-old".into(),
3428        };
3429        let json = serde_json::to_string(&i).unwrap();
3430        assert!(json.contains("\"kind\":\"soft-purge\""));
3431        let i2 = UpgradeInstruction::StateChange {
3432            script: PathBuf::from("m.lisp"),
3433        };
3434        let json2 = serde_json::to_string(&i2).unwrap();
3435        assert!(json2.contains("\"kind\":\"state-change\""));
3436    }
3437
3438    // ── validate_upgrade_from: cross-entry graph-edge-set invariant ────
3439
3440    #[test]
3441    fn validate_upgrade_from_accepts_disjoint_versions() {
3442        // Positive control: the canonical "chain v0.1.0 → 0.1.5 →
3443        // 0.2.0-rc.1" authoring shape from ABSORPTION-ROADMAP §M2.3
3444        // (and `entry_with_chain_of_versions` above) passes the cross-
3445        // entry gate. Different `:from` per entry is the intended
3446        // shape; the gate must not regress this baseline. Middle entry
3447        // pairs `:load-module` with `:soft-purge` to satisfy the
3448        // within-entry purge-ordering gate (see
3449        // `entry_with_chain_of_versions` for the same shape).
3450        let entries = vec![
3451            entry(
3452                "0.1.0",
3453                vec![UpgradeInstruction::LoadModule { module: "x".into() }],
3454            ),
3455            entry(
3456                "0.1.5",
3457                vec![
3458                    UpgradeInstruction::LoadModule { module: "x".into() },
3459                    UpgradeInstruction::SoftPurge {
3460                        module: "x-old".into(),
3461                    },
3462                ],
3463            ),
3464            entry("0.2.0-rc.1", vec![UpgradeInstruction::Restart]),
3465        ];
3466        validate_upgrade_from(&entries).unwrap();
3467    }
3468
3469    #[test]
3470    fn validate_upgrade_from_accepts_empty_list() {
3471        // Absent `:upgrade-from` (the bare `feira init` shape) — the
3472        // gate must trivially pass an empty list. Mirrors the per-axis
3473        // "empty list passes" positive control on every peer typed-
3474        // graph gate (`validate_membros` empty list, `validate_placement`
3475        // requires non-empty clusters but only after a `Placement`
3476        // exists, etc.).
3477        validate_upgrade_from(&[]).unwrap();
3478    }
3479
3480    #[test]
3481    fn validate_upgrade_from_rejects_duplicate_from() {
3482        // Fail-before-pass-after pin: two entries with the same parsed-
3483        // semver `:from` are an ambiguous edge in the typed upgrade
3484        // graph (OTP appup picks at most one matching block per running
3485        // version; with two matching blocks the operator picks either
3486        // set non-deterministically — author intent is one path per
3487        // prior version). Same set-not-multiset discipline as
3488        // `:children :caixa` (dbf50a9), `:membros :caixa` (4bb3f3d),
3489        // `:contratos` (5dbcfaf), `:placement :clusters` (c7c7799),
3490        // `:entrada :paths` (eb3456d) — now extended onto the fifth
3491        // typed-graph axis.
3492        let entries = vec![
3493            entry(
3494                "0.1.0",
3495                vec![UpgradeInstruction::LoadModule { module: "x".into() }],
3496            ),
3497            entry(
3498                "0.1.0",
3499                vec![
3500                    UpgradeInstruction::LoadModule { module: "x".into() },
3501                    UpgradeInstruction::SoftPurge {
3502                        module: "x-old".into(),
3503                    },
3504                ],
3505            ),
3506        ];
3507        let err = validate_upgrade_from(&entries).unwrap_err();
3508        assert_eq!(
3509            err,
3510            UpgradeError::DuplicateFrom {
3511                from: "0.1.0".into()
3512            },
3513            "two entries with `:from \"0.1.0\"` must surface as DuplicateFrom carrying the \
3514             offending value verbatim"
3515        );
3516    }
3517
3518    #[test]
3519    fn validate_upgrade_from_treats_pre_release_as_distinct() {
3520        // Negative-of-positive: `1.0.0` and `1.0.0-rc.1` are *not*
3521        // equal under semver (pre-release version is part of the
3522        // identity), so they're distinct upgrade paths and must not
3523        // collide. A future tightening that collapses pre-release into
3524        // the release version surfaces here.
3525        let entries = vec![
3526            entry("1.0.0", vec![UpgradeInstruction::Restart]),
3527            entry("1.0.0-rc.1", vec![UpgradeInstruction::Restart]),
3528        ];
3529        validate_upgrade_from(&entries).unwrap();
3530    }
3531
3532    #[test]
3533    fn validate_upgrade_from_treats_build_metadata_as_distinct() {
3534        // Conservative-by-design: [`semver::Version`]'s `PartialEq`
3535        // compares build metadata (it derives equality across all
3536        // fields including `pre` + `build`), so `1.0.0+build1` and
3537        // `1.0.0+build2` are *not* duplicates from the gate's
3538        // perspective — the operator may treat the build-metadata
3539        // suffix as a tiebreaker even though the semver spec says
3540        // build metadata is ignored for precedence
3541        // (https://semver.org/#spec-item-10). Pin the conservative
3542        // behavior here so a future switch to a build-metadata-
3543        // stripping comparator surfaces as a test failure first; that
3544        // change would require coordinating with the wasm-operator's
3545        // `:from`-match dispatch step, which is the load-bearing
3546        // semantic we'd be mirroring.
3547        let entries = vec![
3548            entry("1.0.0+build1", vec![UpgradeInstruction::Restart]),
3549            entry("1.0.0+build2", vec![UpgradeInstruction::Restart]),
3550        ];
3551        validate_upgrade_from(&entries).unwrap();
3552    }
3553
3554    #[test]
3555    fn validate_upgrade_from_per_entry_shape_fires_before_duplicate() {
3556        // Order pin: a malformed `:from` on the second entry surfaces
3557        // its `FromInvalid` diagnostic, not a (less-useful)
3558        // `DuplicateFrom`. The per-entry shape pass runs *inline*
3559        // before the duplicate-key insert — parallel to
3560        // `child_versao_invalid_fires_before_duplicate_check`
3561        // (b38ff3a) and `membro_versao_invalid_fires_before_duplicate_check`
3562        // (9888b13). Without this pin a future shortcut that runs the
3563        // cross-entry gate first would surface a duplicate diagnostic
3564        // on a string that isn't even parsable as a version.
3565        let entries = vec![
3566            entry("0.1.0", vec![UpgradeInstruction::Restart]),
3567            entry("not-a-semver", vec![UpgradeInstruction::Restart]),
3568        ];
3569        let err = validate_upgrade_from(&entries).unwrap_err();
3570        assert!(
3571            matches!(err, UpgradeError::FromInvalid { ref from, .. } if from == "not-a-semver"),
3572            "malformed `:from` on a non-duplicate entry must surface as FromInvalid, got {err:?}"
3573        );
3574    }
3575
3576    #[test]
3577    fn validate_upgrade_from_per_entry_shape_fires_before_duplicate_on_first_entry() {
3578        // Symmetric arm: a malformed shape on the *first* entry of a
3579        // duplicate pair surfaces its per-entry diagnostic too (not
3580        // the duplicate diagnostic that would otherwise fire on the
3581        // second entry). Pinned separately so a future shortcut that
3582        // walks the duplicate-check ahead of the per-entry pass for the
3583        // first entry only — easy regression to introduce — surfaces
3584        // here.
3585        let entries = vec![
3586            entry(
3587                "0.1.0",
3588                vec![UpgradeInstruction::LoadModule {
3589                    module: String::new(),
3590                }],
3591            ),
3592            entry("0.1.0", vec![UpgradeInstruction::Restart]),
3593        ];
3594        let err = validate_upgrade_from(&entries).unwrap_err();
3595        assert_eq!(
3596            err,
3597            UpgradeError::ModuleEmpty {
3598                kind: crate::render::M2_UPGRADE_INSTRUCTION_KIND_LOAD_MODULE
3599            },
3600            "malformed instruction on the first entry of a duplicate pair must surface its \
3601             per-entry diagnostic before the duplicate gate fires, got {err:?}"
3602        );
3603    }
3604
3605    #[test]
3606    fn validate_upgrade_from_duplicate_diagnostic_names_second_collision() {
3607        // Diagnostic-shape pin: when three entries carry the same
3608        // `:from`, the gate reports the *first* collision (the second
3609        // entry) and stops — the third entry's duplicate is masked by
3610        // the first surfaced one. Mirrors
3611        // `validate_duplicate_child_diagnostic_names_first_collision`
3612        // (dbf50a9) on the supervisor axis.
3613        let entries = vec![
3614            entry("0.1.0", vec![UpgradeInstruction::Restart]),
3615            entry("0.1.0", vec![UpgradeInstruction::Restart]),
3616            entry("0.1.0", vec![UpgradeInstruction::Restart]),
3617        ];
3618        let err = validate_upgrade_from(&entries).unwrap_err();
3619        assert_eq!(
3620            err,
3621            UpgradeError::DuplicateFrom {
3622                from: "0.1.0".into()
3623            }
3624        );
3625    }
3626
3627    #[test]
3628    fn validate_upgrade_from_single_entry_never_duplicates() {
3629        // Boundary control: a list of one entry can never produce a
3630        // duplicate, regardless of `:from` value (any single-element
3631        // set is trivially without duplicates). Pin this so a future
3632        // off-by-one in the seen-set insert doesn't accidentally flag
3633        // a single entry as duplicating itself.
3634        let entries = vec![entry("0.1.0", vec![UpgradeInstruction::Restart])];
3635        validate_upgrade_from(&entries).unwrap();
3636    }
3637
3638    // ── validate_upgrade_from_against_versao: cross-slot precedence gate ─
3639
3640    #[test]
3641    fn versao_gate_accepts_strict_upgrade() {
3642        // Positive control: the canonical "chain prior versions →
3643        // current" authoring shape from ABSORPTION-ROADMAP §M2.3 — each
3644        // `:from` strictly less than the current `:versao` under
3645        // SemVer-2 precedence. The gate must not regress this baseline.
3646        let entries = vec![
3647            entry("0.1.0", vec![UpgradeInstruction::Restart]),
3648            entry("0.1.5", vec![UpgradeInstruction::Restart]),
3649            entry("0.1.9", vec![UpgradeInstruction::Restart]),
3650        ];
3651        validate_upgrade_from_against_versao(&entries, "0.2.0").unwrap();
3652    }
3653
3654    #[test]
3655    fn versao_gate_accepts_empty_entries() {
3656        // Bare `feira init` shape (no `:upgrade-from`) trivially passes;
3657        // the gate is a no-op when the entries list is empty. Mirrors
3658        // `validate_upgrade_from_accepts_empty_list` on the peer gate.
3659        validate_upgrade_from_against_versao(&[], "0.1.0").unwrap();
3660    }
3661
3662    #[test]
3663    fn versao_gate_rejects_equal_from() {
3664        // Self-upgrade no-op: declaring `:from "0.2.0"` while
3665        // `:versao "0.2.0"` means "upgrade from myself to myself" —
3666        // the operator's dispatch either skips silently or
3667        // trivially "succeeds" with no observable state change.
3668        // Reject as the canonical "I forgot to bump :versao when
3669        // adding this entry" footgun.
3670        let entries = vec![entry("0.2.0", vec![UpgradeInstruction::Restart])];
3671        let err = validate_upgrade_from_against_versao(&entries, "0.2.0").unwrap_err();
3672        assert_eq!(
3673            err,
3674            UpgradeError::FromNotBeforeVersao {
3675                from: "0.2.0".into(),
3676                versao: "0.2.0".into(),
3677            },
3678            ":from == :versao under precedence must surface as FromNotBeforeVersao naming both \
3679             values verbatim, got {err:?}"
3680        );
3681    }
3682
3683    #[test]
3684    fn versao_gate_rejects_downgrade_from() {
3685        // Downgrade-shaped: `:from "0.3.0"` while `:versao "0.2.0"`
3686        // means "upgrade nodes coming from 0.3.0 to 0.2.0", which
3687        // the operator's `:from`-match dispatch can never reach (it
3688        // never runs a version >= the current one). Reject as the
3689        // canonical "I copy-pasted from the next minor version and
3690        // forgot to bump :versao" footgun.
3691        let entries = vec![entry("0.3.0", vec![UpgradeInstruction::Restart])];
3692        let err = validate_upgrade_from_against_versao(&entries, "0.2.0").unwrap_err();
3693        assert_eq!(
3694            err,
3695            UpgradeError::FromNotBeforeVersao {
3696                from: "0.3.0".into(),
3697                versao: "0.2.0".into(),
3698            }
3699        );
3700    }
3701
3702    #[test]
3703    fn versao_gate_accepts_prerelease_before_release() {
3704        // SemVer §11 precedence: pre-release versions are *less than*
3705        // the corresponding release (`0.2.0-rc.1 < 0.2.0`). Upgrading
3706        // FROM an RC TO the GA release is the canonical authoring
3707        // shape — must pass. A regression that collapses pre-release
3708        // into the release version (treating them as equal) surfaces
3709        // here as a false-positive rejection.
3710        let entries = vec![entry("0.2.0-rc.1", vec![UpgradeInstruction::Restart])];
3711        validate_upgrade_from_against_versao(&entries, "0.2.0").unwrap();
3712    }
3713
3714    #[test]
3715    fn versao_gate_rejects_release_after_prerelease() {
3716        // Symmetric arm: with `:versao "0.2.0-rc.1"` and
3717        // `:from "0.2.0"`, precedence says `0.2.0 > 0.2.0-rc.1` —
3718        // the typical "I'm on an RC of a release that already
3719        // shipped" footgun. The gate names both values verbatim
3720        // so the author can grep for either side and fix in one
3721        // edit.
3722        let entries = vec![entry("0.2.0", vec![UpgradeInstruction::Restart])];
3723        let err = validate_upgrade_from_against_versao(&entries, "0.2.0-rc.1").unwrap_err();
3724        assert_eq!(
3725            err,
3726            UpgradeError::FromNotBeforeVersao {
3727                from: "0.2.0".into(),
3728                versao: "0.2.0-rc.1".into(),
3729            }
3730        );
3731    }
3732
3733    #[test]
3734    fn versao_gate_rejects_build_metadata_only_difference() {
3735        // SemVer §11 explicitly excludes build metadata from
3736        // precedence comparison: `0.2.0+build.1` and `0.2.0` are
3737        // *equal* under [`semver::Version::cmp`]. From the
3738        // operator's `:from`-match dispatch perspective this is a
3739        // self-upgrade no-op (no semantic transition between the
3740        // two), so the gate rejects it — *unlike* the peer
3741        // duplicate-`:from` gate which uses derived `PartialEq` and
3742        // treats build-metadata variants as distinct dispatch keys.
3743        // The two gates' different equality notions are deliberate:
3744        // duplicate-check is conservative (preserves operator-side
3745        // tiebreaking surface), precedence-check is permissive
3746        // (matches operator-side dispatch semantic).
3747        let entries = vec![entry("0.2.0+build.1", vec![UpgradeInstruction::Restart])];
3748        let err = validate_upgrade_from_against_versao(&entries, "0.2.0").unwrap_err();
3749        assert_eq!(
3750            err,
3751            UpgradeError::FromNotBeforeVersao {
3752                from: "0.2.0+build.1".into(),
3753                versao: "0.2.0".into(),
3754            }
3755        );
3756    }
3757
3758    #[test]
3759    fn versao_gate_silently_passes_on_unparseable_versao() {
3760        // Defensive arm: a malformed `:versao` (gated by the
3761        // narrower `ManifestError::VersaoInvalid` surface at the
3762        // load-bearing call site) must not regress into a
3763        // `FromNotBeforeVersao` diagnostic from this gate. Surfacing
3764        // the precedence error over an unparseable `:versao` would
3765        // mask the more actionable root cause (the author meant to
3766        // type `"0.2.0"`, not `"v0.2.0"`).
3767        let entries = vec![entry("0.1.0", vec![UpgradeInstruction::Restart])];
3768        validate_upgrade_from_against_versao(&entries, "not-a-semver").unwrap();
3769    }
3770
3771    #[test]
3772    fn versao_gate_silently_passes_on_unparseable_from() {
3773        // Symmetric defensive arm: a malformed `:from` is gated by
3774        // [`UpgradeFromEntry::validate`] / [`validate_upgrade_from`]
3775        // upstream at the LayoutInvariants call site. Surfacing the
3776        // precedence error over an unparseable `:from` from this
3777        // gate alone would mask the narrower `FromInvalid`
3778        // diagnostic that's expected to lead — same fall-through
3779        // posture as the unparseable-`:versao` arm above. The
3780        // wiring in `LayoutInvariants::verify` runs
3781        // `validate_upgrade_from` *before* this gate, so in practice
3782        // an unparseable `:from` surfaces as `FromInvalid` first
3783        // and this gate is never reached on that input.
3784        let entries = vec![entry("not-a-semver", vec![UpgradeInstruction::Restart])];
3785        validate_upgrade_from_against_versao(&entries, "0.2.0").unwrap();
3786    }
3787
3788    #[test]
3789    fn versao_gate_reports_first_offending_entry() {
3790        // Determinism pin: with multiple offending entries the gate
3791        // surfaces the *first* one in declaration order — same
3792        // posture as `validate_upgrade_from_duplicate_diagnostic_names_second_collision`
3793        // on the peer gate. Walks the entries in order; first
3794        // failing `:from >= :versao` short-circuits.
3795        let entries = vec![
3796            entry("0.1.0", vec![UpgradeInstruction::Restart]),
3797            entry("0.3.0", vec![UpgradeInstruction::Restart]),
3798            entry("0.4.0", vec![UpgradeInstruction::Restart]),
3799        ];
3800        let err = validate_upgrade_from_against_versao(&entries, "0.2.0").unwrap_err();
3801        assert_eq!(
3802            err,
3803            UpgradeError::FromNotBeforeVersao {
3804                from: "0.3.0".into(),
3805                versao: "0.2.0".into(),
3806            },
3807            "the first offending `:from` (0.3.0) must surface, not the later one (0.4.0)"
3808        );
3809    }
3810
3811    // ── UpgradeFromEntry::validate_restart_exclusive: within-entry gate ─
3812
3813    #[test]
3814    fn validate_rejects_restart_mixed_with_load_module() {
3815        // The "I'll try the typed path *then* restart anyway" footgun:
3816        // an instructions list with `(:restart)` plus `(:load-module …)`
3817        // is dead code in both directions (succeed → restart discards
3818        // the work that just succeeded, defeating the typed sequence's
3819        // whole point; fail → restart never reached because the entry
3820        // already failed). The gate names the offending entry's `:from`
3821        // verbatim plus the kebab-case lisp-form of every non-`:restart`
3822        // peer so the author can grep their caixa.lisp for either side
3823        // and fix in one edit.
3824        let e = entry(
3825            "0.1.0",
3826            vec![
3827                UpgradeInstruction::LoadModule {
3828                    module: "hello-rio".into(),
3829                },
3830                UpgradeInstruction::Restart,
3831            ],
3832        );
3833        let err = e.validate().unwrap_err();
3834        assert_eq!(
3835            err,
3836            UpgradeError::RestartNotExclusive {
3837                from: "0.1.0".into(),
3838                restart_count: 1,
3839                other_kinds: vec![crate::render::M2_UPGRADE_INSTRUCTION_KIND_LOAD_MODULE],
3840            },
3841            "restart + load-module mix must surface as RestartNotExclusive naming the \
3842             offending `:from` + the non-:restart kinds verbatim, got {err:?}"
3843        );
3844    }
3845
3846    #[test]
3847    fn validate_rejects_restart_mixed_with_full_typed_sequence() {
3848        // Sweep the typed-sequence universe — every non-`:restart`
3849        // variant alongside `:restart` — and assert every typed
3850        // instruction's lisp-form appears in `other_kinds` in
3851        // declaration order. The author should be able to grep for
3852        // each verbatim (`:load-module`, `:state-change`, `:soft-purge`,
3853        // `:purge`) and resolve in one pass. Drift in the `lisp_form`
3854        // mapping surfaces here.
3855        let e = entry(
3856            "0.1.0",
3857            vec![
3858                UpgradeInstruction::LoadModule {
3859                    module: "hello-rio".into(),
3860                },
3861                UpgradeInstruction::StateChange {
3862                    script: PathBuf::from("lib/m.lisp"),
3863                },
3864                UpgradeInstruction::SoftPurge {
3865                    module: "hello-rio-old".into(),
3866                },
3867                UpgradeInstruction::Purge {
3868                    module: "hello-rio-old".into(),
3869                },
3870                UpgradeInstruction::Restart,
3871            ],
3872        );
3873        let err = e.validate().unwrap_err();
3874        assert_eq!(
3875            err,
3876            UpgradeError::RestartNotExclusive {
3877                from: "0.1.0".into(),
3878                restart_count: 1,
3879                other_kinds: vec![
3880                    crate::render::M2_UPGRADE_INSTRUCTION_KIND_LOAD_MODULE,
3881                    crate::render::M2_UPGRADE_INSTRUCTION_KIND_STATE_CHANGE,
3882                    crate::render::M2_UPGRADE_INSTRUCTION_KIND_SOFT_PURGE,
3883                    crate::render::M2_UPGRADE_INSTRUCTION_KIND_PURGE,
3884                ],
3885            },
3886        );
3887    }
3888
3889    #[test]
3890    fn validate_rejects_restart_duplicated() {
3891        // `((:restart) (:restart))` — multiple Restart variants in one
3892        // entry. The fallback is a single semantic (restart the pod;
3893        // the new version comes up fresh); repeating it is at best
3894        // redundant, at worst suggests the author thought the second
3895        // would re-trigger after the first. The gate reports
3896        // `restart_count: 2` so the diagnostic surfaces the duplication
3897        // mode unambiguously even when `other_kinds` is empty.
3898        let e = entry(
3899            "0.1.0",
3900            vec![UpgradeInstruction::Restart, UpgradeInstruction::Restart],
3901        );
3902        let err = e.validate().unwrap_err();
3903        assert_eq!(
3904            err,
3905            UpgradeError::RestartNotExclusive {
3906                from: "0.1.0".into(),
3907                restart_count: 2,
3908                other_kinds: vec![],
3909            },
3910        );
3911    }
3912
3913    #[test]
3914    fn validate_accepts_sole_restart() {
3915        // Positive control: the canonical "this prior version's typed
3916        // upgrade is impossible — restart" authoring shape from the
3917        // UpgradeInstruction::Restart doc comment. `((:restart))` alone
3918        // is the entry's whole instructions list and the only valid
3919        // Restart-bearing shape.
3920        let e = entry("0.1.0", vec![UpgradeInstruction::Restart]);
3921        e.validate().unwrap();
3922    }
3923
3924    #[test]
3925    fn validate_accepts_typed_sequence_without_restart() {
3926        // Positive control: the canonical typed hot-upgrade authoring
3927        // shape from ABSORPTION-ROADMAP §M2.3 — `:load-module` →
3928        // `:state-change` → `:soft-purge`. Absent `:restart` is the
3929        // only shape that lets the sequence run to completion under
3930        // the wasm-operator's `:from`-match dispatch. Drift here =
3931        // a future tighten that rejects any canonical typed-only shape
3932        // surfaces as a regression at this gate.
3933        let e = entry(
3934            "0.1.0",
3935            vec![
3936                UpgradeInstruction::LoadModule {
3937                    module: "hello-rio".into(),
3938                },
3939                UpgradeInstruction::StateChange {
3940                    script: PathBuf::from("lib/m.lisp"),
3941                },
3942                UpgradeInstruction::SoftPurge {
3943                    module: "hello-rio-old".into(),
3944                },
3945            ],
3946        );
3947        e.validate().unwrap();
3948    }
3949
3950    // ── within-entry state-change-ordering invariant ───────────────────
3951
3952    #[test]
3953    fn validate_rejects_state_change_without_load() {
3954        // Fail-before-pass-after pin: a `:state-change` migrates state
3955        // into the newly-loaded code (gen_server:code_change/3 analog),
3956        // so an entry that runs it with no preceding `:load-module`
3957        // migrates state into code that was never loaded. The operator
3958        // runs instructions in declared order, so this is a build error,
3959        // not a runtime surprise (CAIXA-SDLC §III).
3960        let e = entry(
3961            "0.1.0",
3962            vec![UpgradeInstruction::StateChange {
3963                script: PathBuf::from("lib/m.lisp"),
3964            }],
3965        );
3966        let err = e.validate().unwrap_err();
3967        assert_eq!(
3968            err,
3969            UpgradeError::StateChangeWithoutPriorLoad {
3970                from: "0.1.0".into(),
3971                script: PathBuf::from("lib/m.lisp"),
3972            },
3973            "a `:state-change` with no preceding `:load-module` must surface as \
3974             StateChangeWithoutPriorLoad naming the offending entry + script verbatim"
3975        );
3976    }
3977
3978    #[test]
3979    fn validate_rejects_state_change_before_load() {
3980        // Right-instructions-wrong-order: the load is present but runs
3981        // *after* the migration. Because the operator executes in
3982        // declared order, the migration runs before the new code is
3983        // resident — the same incoherence as the missing-load case.
3984        let e = entry(
3985            "0.1.0",
3986            vec![
3987                UpgradeInstruction::StateChange {
3988                    script: PathBuf::from("lib/m.lisp"),
3989                },
3990                UpgradeInstruction::LoadModule {
3991                    module: "hello-rio".into(),
3992                },
3993            ],
3994        );
3995        let err = e.validate().unwrap_err();
3996        assert!(
3997            matches!(err, UpgradeError::StateChangeWithoutPriorLoad { .. }),
3998            "a `:state-change` ahead of its `:load-module` must surface as \
3999             StateChangeWithoutPriorLoad, got {err:?}"
4000        );
4001    }
4002
4003    #[test]
4004    fn validate_accepts_state_change_after_load() {
4005        // Positive control: the canonical `(:load-module …)
4006        // (:state-change …)` order validates. The load need not name
4007        // the same module the migration targets (StateChange carries a
4008        // script, not a module ref), so any preceding `:load-module`
4009        // satisfies "new code is resident before its migration runs".
4010        let e = entry(
4011            "0.1.0",
4012            vec![
4013                UpgradeInstruction::LoadModule {
4014                    module: "hello-rio".into(),
4015                },
4016                UpgradeInstruction::StateChange {
4017                    script: PathBuf::from("lib/m.lisp"),
4018                },
4019            ],
4020        );
4021        e.validate().unwrap();
4022    }
4023
4024    #[test]
4025    fn validate_accepts_multiple_state_changes_after_one_load() {
4026        // A single leading `:load-module` covers every subsequent
4027        // `:state-change` — the `loaded` latch stays set once the new
4028        // code is resident.
4029        let e = entry(
4030            "0.1.0",
4031            vec![
4032                UpgradeInstruction::LoadModule {
4033                    module: "hello-rio".into(),
4034                },
4035                UpgradeInstruction::StateChange {
4036                    script: PathBuf::from("lib/m1.lisp"),
4037                },
4038                UpgradeInstruction::StateChange {
4039                    script: PathBuf::from("lib/m2.lisp"),
4040                },
4041            ],
4042        );
4043        e.validate().unwrap();
4044    }
4045
4046    #[test]
4047    fn validate_state_change_ordering_projects_scripts_through_is_load_module_and_declared_path_accessors()
4048     {
4049        // Byte-identity pin on the
4050        // [`UpgradeFromEntry::validate_state_change_ordering`] load →
4051        // migrate ordering dispatch against the pre-lift
4052        // `match instr { UpgradeInstruction::LoadModule { .. } =>
4053        // loaded = true, UpgradeInstruction::StateChange { script } if
4054        // !loaded => …, _ => {} }` open-coded pattern-match the site
4055        // previously carried. Asserts the two projections agree
4056        // byte-for-byte on every arm of the enum — the load-family
4057        // arm-discriminator via `is_load_module()` and the migration-
4058        // family `:script` scalar via `declared_path()` — so a future
4059        // derive regression that flipped the predicate's arm-set (a
4060        // hole returning `false` for [`UpgradeInstruction::LoadModule`],
4061        // a byte-collision flipping a second variant to `true`) or an
4062        // accessor extension that promoted an additional variant onto
4063        // the `PathBuf`-carrying axis would trip here at caixa-core
4064        // test time rather than laundering the arm at the gate's
4065        // per-entry ordering scan far from the derive site.
4066        //
4067        // Peer of the sibling
4068        // [`validate_load_singularity_projects_modules_through_is_load_module_and_declared_module_accessors`]
4069        // (c9ce91d) pin on the peer within-entry per-instruction-class
4070        // singularity gate's load-family + `String`-carrying dispatch,
4071        // the [`validate_purge_ordering_routes_through_is_load_module_predicate`]
4072        // (580d0f1) pin on the paired load → cleanup ordering gate's
4073        // load-family sticky-latch dispatch, and the
4074        // [`validate_state_change_singularity_projects_scripts_through_declared_path_accessor`]
4075        // pin on the peer within-entry per-instruction-class singularity
4076        // gate's migration-family script-projection dispatch — closes
4077        // the last unlifted `match`-shaped per-arm-hand-rolled load-
4078        // family arm-discriminator + migration-family script-projection
4079        // pair inside `impl UpgradeFromEntry`. The four within-entry
4080        // ordering / singularity gates now share one byte-identity pin
4081        // apiece against their respective substrate-primitive typed
4082        // dispatches on the OTP-appup closed-set enum.
4083        //
4084        // Three-arm projective coverage:
4085        //   (a) `LoadModule` satisfies `is_load_module()`, so the
4086        //       sticky-latch advances byte-equal to the pre-lift
4087        //       `UpgradeInstruction::LoadModule { .. }` arm; every
4088        //       other variant leaves the latch untouched;
4089        //   (b) a `((:state-change …))`-only entry (no preceding load)
4090        //       trips the gate on the first `StateChange` with
4091        //       `StateChangeWithoutPriorLoad` carrying the offending
4092        //       script verbatim — the migration-family script surfaces
4093        //       through `declared_path()` byte-equal to the raw
4094        //       `StateChange { script }` pattern-bound field;
4095        //   (c) a `((:load-module …) (:state-change …))` entry leaves
4096        //       the gate vacuous with `Ok(())` — the `loaded = true`
4097        //       latch on the first arm satisfies the `!loaded` guard
4098        //       negation on the second, so the `declared_path()`
4099        //       `Some(script)` fall-through does not fire — and a
4100        //       non-`StateChange`-non-`LoadModule` sequence
4101        //       (`SoftPurge` / `Purge` / `Restart` alone) also leaves
4102        //       the gate vacuous because `declared_path()` is `None`
4103        //       on all three of those arms.
4104        //
4105        // Fail-before-pass-after verified locally: swapping the
4106        // production `if instr.is_load_module() { loaded = true; }
4107        // else if !loaded && let Some(script) = instr.declared_path()
4108        // { … }` back to `match instr { UpgradeInstruction::LoadModule
4109        // { .. } => loaded = true, UpgradeInstruction::StateChange
4110        // { script } if !loaded => …, _ => {} }` keeps arms (a)-(c)
4111        // passing but silently detaches the gate from the accessor's
4112        // typed dispatch — any future `is_load_module` / `declared_path`
4113        // extension (a hole in either predicate, a promotion of an
4114        // additional variant onto either axis, an operator-side
4115        // pre-resolved-path cache the accessor materializes) would
4116        // then silently disagree between this gate's raw pattern-match
4117        // and the peer per-`UpgradeInstruction` consumers that route
4118        // through the accessor pair.
4119
4120        // (a) is_load_module() partitions the arm-set byte-equal to
4121        //     the pre-lift `matches!(_, UpgradeInstruction::LoadModule
4122        //     { .. })` and declared_path() surfaces the StateChange
4123        //     `:script` byte-equal to the raw field access.
4124        let lm = UpgradeInstruction::LoadModule {
4125            module: "hello-rio".into(),
4126        };
4127        assert!(
4128            lm.is_load_module(),
4129            "LoadModule must satisfy is_load_module() — the gate's \
4130             load-family sticky-latch relies on this partition"
4131        );
4132        assert!(
4133            lm.declared_path().is_none(),
4134            "LoadModule must not carry a declared_path — the gate's \
4135             else-if migration-family arm must not fire on load arms"
4136        );
4137        let sc = UpgradeInstruction::StateChange {
4138            script: PathBuf::from("lib/m.lisp"),
4139        };
4140        assert!(
4141            !sc.is_load_module(),
4142            "StateChange must not satisfy is_load_module() — the gate's \
4143             sticky-latch must not advance on migration arms"
4144        );
4145        assert_eq!(
4146            sc.declared_path().map(std::path::PathBuf::as_path),
4147            Some(PathBuf::from("lib/m.lisp").as_path()),
4148            "declared_path() must project the StateChange :script \
4149             byte-equal to the raw field access — accessor divergence \
4150             would silently detach the gate from the projection every \
4151             peer per-`UpgradeInstruction` consumer routes through"
4152        );
4153
4154        // (b) A `((:state-change …))`-only entry trips
4155        //     StateChangeWithoutPriorLoad byte-identical to the
4156        //     pre-lift match-pattern shape.
4157        let no_prior_load = entry(
4158            "0.1.0",
4159            vec![UpgradeInstruction::StateChange {
4160                script: PathBuf::from("lib/m.lisp"),
4161            }],
4162        );
4163        assert_eq!(
4164            no_prior_load.validate_state_change_ordering(),
4165            Err(UpgradeError::StateChangeWithoutPriorLoad {
4166                from: "0.1.0".into(),
4167                script: PathBuf::from("lib/m.lisp"),
4168            }),
4169            "a `:state-change` with no preceding `:load-module` must fire \
4170             StateChangeWithoutPriorLoad carrying the offending script \
4171             verbatim through the declared_path() accessor"
4172        );
4173
4174        // (c) `((:load-module …) (:state-change …))` leaves the gate
4175        //     vacuous; so does a non-StateChange-non-LoadModule
4176        //     sequence (SoftPurge / Purge / Restart alone).
4177        let load_before_migrate = entry(
4178            "0.1.0",
4179            vec![
4180                UpgradeInstruction::LoadModule {
4181                    module: "hello-rio".into(),
4182                },
4183                UpgradeInstruction::StateChange {
4184                    script: PathBuf::from("lib/m.lisp"),
4185                },
4186            ],
4187        );
4188        assert_eq!(
4189            load_before_migrate.validate_state_change_ordering(),
4190            Ok(()),
4191            "load-before-migrate entries must leave the ordering gate \
4192             vacuous — the `loaded = true` sticky-latch on the first arm \
4193             satisfies the `!loaded` guard negation on the else-if arm"
4194        );
4195        for instr in [
4196            UpgradeInstruction::SoftPurge {
4197                module: "x-old".into(),
4198            },
4199            UpgradeInstruction::Purge {
4200                module: "x-old".into(),
4201            },
4202            UpgradeInstruction::Restart,
4203        ] {
4204            let e = entry("0.1.0", vec![instr.clone()]);
4205            assert_eq!(
4206                e.validate_state_change_ordering(),
4207                Ok(()),
4208                "non-StateChange-non-LoadModule sequence ({instr:?}) must \
4209                 leave the ordering gate vacuous — declared_path() is None \
4210                 on every non-StateChange arm, so the else-if migration-\
4211                 family arm never fires"
4212            );
4213        }
4214    }
4215
4216    #[test]
4217    fn validate_state_change_ordering_fires_after_restart_exclusive() {
4218        // Diagnostic-precedence pin: a `((:state-change …) (:restart))`
4219        // shape is *both* state-change-without-load and restart-mixed.
4220        // The more-fundamental `RestartNotExclusive` must win (a valid
4221        // `(:restart)` entry is `(:restart)` alone, so no Restart-bearing
4222        // entry should reach the ordering gate). Guards the call order
4223        // in `validate` against silent reordering.
4224        let e = entry(
4225            "0.1.0",
4226            vec![
4227                UpgradeInstruction::StateChange {
4228                    script: PathBuf::from("lib/m.lisp"),
4229                },
4230                UpgradeInstruction::Restart,
4231            ],
4232        );
4233        let err = e.validate().unwrap_err();
4234        assert!(
4235            matches!(err, UpgradeError::RestartNotExclusive { .. }),
4236            "restart-mixed must surface before the ordering gate, got {err:?}"
4237        );
4238    }
4239
4240    // ── within-entry purge-ordering invariant ──────────────────────────
4241
4242    #[test]
4243    fn validate_rejects_soft_purge_without_load() {
4244        // Fail-before-pass-after pin: `:soft-purge` drains the *old*
4245        // module after the new one is resident (OTP's two-phase code
4246        // load — code:load_module/1 then code:soft_purge/1), so an
4247        // entry that runs it with no preceding `:load-module` drains
4248        // the live module with no replacement. The operator runs
4249        // instructions in declared order, so this is a build error,
4250        // not a runtime surprise (CAIXA-SDLC §III).
4251        let e = entry(
4252            "0.1.0",
4253            vec![UpgradeInstruction::SoftPurge {
4254                module: "x-old".into(),
4255            }],
4256        );
4257        let err = e.validate().unwrap_err();
4258        assert_eq!(
4259            err,
4260            UpgradeError::PurgeWithoutPriorLoad {
4261                from: "0.1.0".into(),
4262                kind: crate::render::M2_UPGRADE_INSTRUCTION_KIND_SOFT_PURGE,
4263                module: "x-old".into(),
4264            },
4265            "a `:soft-purge` with no preceding `:load-module` must surface as \
4266             PurgeWithoutPriorLoad naming the offending entry + kind + module verbatim"
4267        );
4268    }
4269
4270    #[test]
4271    fn validate_rejects_purge_without_load() {
4272        // Per-arm coverage: `:purge` (immediate discard, no drain) is
4273        // the more catastrophic peer of `:soft-purge`; same gate, same
4274        // shape, kind-tag differs so the author can grep their
4275        // caixa.lisp for the offending `(:purge …)` form.
4276        let e = entry(
4277            "0.1.0",
4278            vec![UpgradeInstruction::Purge {
4279                module: "x-old".into(),
4280            }],
4281        );
4282        let err = e.validate().unwrap_err();
4283        assert_eq!(
4284            err,
4285            UpgradeError::PurgeWithoutPriorLoad {
4286                from: "0.1.0".into(),
4287                kind: crate::render::M2_UPGRADE_INSTRUCTION_KIND_PURGE,
4288                module: "x-old".into(),
4289            },
4290        );
4291    }
4292
4293    #[test]
4294    fn validate_rejects_soft_purge_before_load() {
4295        // Right-instructions-wrong-order: the load is present but runs
4296        // *after* the purge. Because the operator executes in declared
4297        // order, the cleanup drains the old code before the new code
4298        // is resident — same incoherence as the missing-load case,
4299        // leaving a window during which neither version is available.
4300        let e = entry(
4301            "0.1.0",
4302            vec![
4303                UpgradeInstruction::SoftPurge {
4304                    module: "x-old".into(),
4305                },
4306                UpgradeInstruction::LoadModule { module: "x".into() },
4307            ],
4308        );
4309        let err = e.validate().unwrap_err();
4310        assert!(
4311            matches!(
4312                err,
4313                UpgradeError::PurgeWithoutPriorLoad {
4314                    kind: crate::render::M2_UPGRADE_INSTRUCTION_KIND_SOFT_PURGE,
4315                    ..
4316                }
4317            ),
4318            "a `:soft-purge` ahead of its `:load-module` must surface as \
4319             PurgeWithoutPriorLoad, got {err:?}"
4320        );
4321    }
4322
4323    #[test]
4324    fn validate_rejects_purge_before_load() {
4325        // Symmetric arm on the `:purge` variant — the kind tag
4326        // distinguishes the diagnostic so the author lands on the
4327        // offending form directly.
4328        let e = entry(
4329            "0.1.0",
4330            vec![
4331                UpgradeInstruction::Purge {
4332                    module: "x-old".into(),
4333                },
4334                UpgradeInstruction::LoadModule { module: "x".into() },
4335            ],
4336        );
4337        let err = e.validate().unwrap_err();
4338        assert!(
4339            matches!(
4340                err,
4341                UpgradeError::PurgeWithoutPriorLoad {
4342                    kind: crate::render::M2_UPGRADE_INSTRUCTION_KIND_PURGE,
4343                    ..
4344                }
4345            ),
4346            "a `:purge` ahead of its `:load-module` must surface as \
4347             PurgeWithoutPriorLoad, got {err:?}"
4348        );
4349    }
4350
4351    #[test]
4352    fn validate_accepts_soft_purge_after_load() {
4353        // Positive control: the canonical `(:load-module …)
4354        // (:soft-purge …)` order validates. The load need not name the
4355        // same module the purge targets — the cleanup typically targets
4356        // the *old* module name (e.g. `"x-old"`) and the load brings up
4357        // the *new* one (`"x"`); the gate only requires that *some*
4358        // `:load-module` precedes the purge, so the new code is resident
4359        // before the old one is drained.
4360        let e = entry(
4361            "0.1.0",
4362            vec![
4363                UpgradeInstruction::LoadModule { module: "x".into() },
4364                UpgradeInstruction::SoftPurge {
4365                    module: "x-old".into(),
4366                },
4367            ],
4368        );
4369        e.validate().unwrap();
4370    }
4371
4372    #[test]
4373    fn validate_accepts_multiple_purges_after_one_load() {
4374        // A single leading `:load-module` covers every subsequent
4375        // `:soft-purge` / `:purge` — the `loaded` latch stays set once
4376        // the new code is resident. Same shape as
4377        // `validate_accepts_multiple_state_changes_after_one_load` on
4378        // the peer ordering gate.
4379        let e = entry(
4380            "0.1.0",
4381            vec![
4382                UpgradeInstruction::LoadModule { module: "x".into() },
4383                UpgradeInstruction::SoftPurge {
4384                    module: "x-old".into(),
4385                },
4386                UpgradeInstruction::Purge {
4387                    module: "x-oldest".into(),
4388                },
4389            ],
4390        );
4391        e.validate().unwrap();
4392    }
4393
4394    #[test]
4395    fn validate_purge_ordering_fires_after_state_change_ordering() {
4396        // Diagnostic-precedence pin: an entry like `((:state-change …)
4397        // (:soft-purge …))` is *both* state-change-without-load and
4398        // purge-without-load. The state-change gate must win — it's
4399        // the load-bearing semantic on this ordering contract, and
4400        // surfacing the purge diagnostic first would mask the more-
4401        // fundamental migration-against-stale-code defect. Guards the
4402        // call order in `validate` against silent reordering.
4403        let e = entry(
4404            "0.1.0",
4405            vec![
4406                UpgradeInstruction::StateChange {
4407                    script: PathBuf::from("lib/m.lisp"),
4408                },
4409                UpgradeInstruction::SoftPurge {
4410                    module: "x-old".into(),
4411                },
4412            ],
4413        );
4414        let err = e.validate().unwrap_err();
4415        assert!(
4416            matches!(err, UpgradeError::StateChangeWithoutPriorLoad { .. }),
4417            "state-change-without-load must surface before purge-without-load, got {err:?}"
4418        );
4419    }
4420
4421    #[test]
4422    fn validate_purge_ordering_fires_after_per_instr_shape() {
4423        // Order pin: a malformed `:module` value on a `:soft-purge` (an
4424        // empty string) surfaces its narrower kind-tagged `ModuleEmpty`
4425        // diagnostic *before* the within-entry purge-ordering gate fires.
4426        // The per-instruction shape pass walks the list inline before
4427        // the ordering checks, so the narrower self-locating diagnostic
4428        // surfaces first — mirrors the empty-first cascade on every peer
4429        // DNS-1123 gate and the `validate_restart_exclusive_fires_after_
4430        // per_instr_shape` pin on the sibling ordering gate.
4431        let e = entry(
4432            "0.1.0",
4433            vec![UpgradeInstruction::SoftPurge {
4434                module: String::new(),
4435            }],
4436        );
4437        let err = e.validate().unwrap_err();
4438        assert_eq!(
4439            err,
4440            UpgradeError::ModuleEmpty {
4441                kind: crate::render::M2_UPGRADE_INSTRUCTION_KIND_SOFT_PURGE
4442            },
4443            "malformed instruction must surface its kind-tagged diagnostic before the \
4444             purge-ordering gate fires, got {err:?}"
4445        );
4446    }
4447
4448    #[test]
4449    fn validate_purge_ordering_threads_through_validate_upgrade_from() {
4450        // The whole-list entry-point surfaces the per-entry ordering
4451        // error (mirrors
4452        // `validate_state_change_ordering_threads_through_validate_upgrade_from`):
4453        // the gate is reachable from the LayoutInvariants call site, not
4454        // only from a direct `entry.validate()`.
4455        let entries = vec![entry(
4456            "0.1.0",
4457            vec![UpgradeInstruction::Purge {
4458                module: "x-old".into(),
4459            }],
4460        )];
4461        let err = validate_upgrade_from(&entries).unwrap_err();
4462        assert!(
4463            matches!(
4464                err,
4465                UpgradeError::PurgeWithoutPriorLoad {
4466                    kind: crate::render::M2_UPGRADE_INSTRUCTION_KIND_PURGE,
4467                    ..
4468                }
4469            ),
4470            "validate_upgrade_from must thread the purge-ordering error, got {err:?}"
4471        );
4472    }
4473
4474    #[test]
4475    fn validate_state_change_ordering_threads_through_validate_upgrade_from() {
4476        // The whole-list entry-point surfaces the per-entry ordering
4477        // error (mirrors `validate_restart_exclusive_threads_through_…`):
4478        // the gate is reachable from the LayoutInvariants call site, not
4479        // only from a direct `entry.validate()`.
4480        let entries = vec![entry(
4481            "0.1.0",
4482            vec![UpgradeInstruction::StateChange {
4483                script: PathBuf::from("lib/m.lisp"),
4484            }],
4485        )];
4486        let err = validate_upgrade_from(&entries).unwrap_err();
4487        assert!(
4488            matches!(err, UpgradeError::StateChangeWithoutPriorLoad { .. }),
4489            "validate_upgrade_from must thread the ordering error, got {err:?}"
4490        );
4491    }
4492
4493    // ── within-entry cleanup-singularity invariant ─────────────────────
4494
4495    #[test]
4496    fn validate_rejects_duplicate_soft_purge_for_same_module() {
4497        // Fail-before-pass-after pin: `:soft-purge` drains-then-GCs
4498        // its target module (code:soft_purge/1 analog); after the
4499        // first the module is gone, so a second `:soft-purge` of the
4500        // same module is at best a no-op and at worst undefined
4501        // (depending on the operator's handling of a non-resident-
4502        // module purge). Author one cleanup per module.
4503        let e = entry(
4504            "0.1.0",
4505            vec![
4506                UpgradeInstruction::LoadModule { module: "x".into() },
4507                UpgradeInstruction::SoftPurge {
4508                    module: "x-old".into(),
4509                },
4510                UpgradeInstruction::SoftPurge {
4511                    module: "x-old".into(),
4512                },
4513            ],
4514        );
4515        let err = e.validate().unwrap_err();
4516        assert_eq!(
4517            err,
4518            UpgradeError::DuplicateCleanup {
4519                from: "0.1.0".into(),
4520                module: "x-old".into(),
4521                kinds: vec![
4522                    crate::render::M2_UPGRADE_INSTRUCTION_KIND_SOFT_PURGE,
4523                    crate::render::M2_UPGRADE_INSTRUCTION_KIND_SOFT_PURGE,
4524                ],
4525            },
4526            "two `:soft-purge` of the same module must surface as DuplicateCleanup naming the \
4527             module + both kinds in declaration order, got {err:?}"
4528        );
4529    }
4530
4531    #[test]
4532    fn validate_rejects_duplicate_purge_for_same_module() {
4533        // Per-arm coverage: `:purge` (immediate discard, no drain) is
4534        // the more catastrophic peer of `:soft-purge`; same gate, same
4535        // shape, kind-tag distinguishes so the author can grep their
4536        // caixa.lisp for the offending `(:purge …)` form.
4537        let e = entry(
4538            "0.1.0",
4539            vec![
4540                UpgradeInstruction::LoadModule { module: "x".into() },
4541                UpgradeInstruction::Purge {
4542                    module: "x-old".into(),
4543                },
4544                UpgradeInstruction::Purge {
4545                    module: "x-old".into(),
4546                },
4547            ],
4548        );
4549        let err = e.validate().unwrap_err();
4550        assert_eq!(
4551            err,
4552            UpgradeError::DuplicateCleanup {
4553                from: "0.1.0".into(),
4554                module: "x-old".into(),
4555                kinds: vec![
4556                    crate::render::M2_UPGRADE_INSTRUCTION_KIND_PURGE,
4557                    crate::render::M2_UPGRADE_INSTRUCTION_KIND_PURGE,
4558                ],
4559            },
4560        );
4561    }
4562
4563    #[test]
4564    fn validate_rejects_soft_purge_then_purge_for_same_module() {
4565        // Soft-then-hard footgun: the author wrote "drain, and if
4566        // drain doesn't clean up, force-discard", but the operator
4567        // runs declared instructions unconditionally — the `:purge`
4568        // fires whether the `:soft-purge` already discarded the
4569        // module or not, so the imagined fallback semantic is
4570        // missing. Fallback on cleanup failure is the operator's
4571        // job, not authored into the entry. Both kinds carry in
4572        // declaration order so the author can grep for either side
4573        // and pick one.
4574        let e = entry(
4575            "0.1.0",
4576            vec![
4577                UpgradeInstruction::LoadModule { module: "x".into() },
4578                UpgradeInstruction::SoftPurge {
4579                    module: "x-old".into(),
4580                },
4581                UpgradeInstruction::Purge {
4582                    module: "x-old".into(),
4583                },
4584            ],
4585        );
4586        let err = e.validate().unwrap_err();
4587        assert_eq!(
4588            err,
4589            UpgradeError::DuplicateCleanup {
4590                from: "0.1.0".into(),
4591                module: "x-old".into(),
4592                kinds: vec![
4593                    crate::render::M2_UPGRADE_INSTRUCTION_KIND_SOFT_PURGE,
4594                    crate::render::M2_UPGRADE_INSTRUCTION_KIND_PURGE,
4595                ],
4596            },
4597        );
4598    }
4599
4600    #[test]
4601    fn validate_rejects_purge_then_soft_purge_for_same_module() {
4602        // Reversed-ordering arm: `:purge` discards immediately; the
4603        // trailing `:soft-purge` has no module to drain. The kinds
4604        // list reflects declaration order so the diagnostic locates
4605        // both forms in the source.
4606        let e = entry(
4607            "0.1.0",
4608            vec![
4609                UpgradeInstruction::LoadModule { module: "x".into() },
4610                UpgradeInstruction::Purge {
4611                    module: "x-old".into(),
4612                },
4613                UpgradeInstruction::SoftPurge {
4614                    module: "x-old".into(),
4615                },
4616            ],
4617        );
4618        let err = e.validate().unwrap_err();
4619        assert_eq!(
4620            err,
4621            UpgradeError::DuplicateCleanup {
4622                from: "0.1.0".into(),
4623                module: "x-old".into(),
4624                kinds: vec![
4625                    crate::render::M2_UPGRADE_INSTRUCTION_KIND_PURGE,
4626                    crate::render::M2_UPGRADE_INSTRUCTION_KIND_SOFT_PURGE,
4627                ],
4628            },
4629        );
4630    }
4631
4632    #[test]
4633    fn validate_accepts_distinct_cleanup_modules() {
4634        // Positive control: `:soft-purge` and `:purge` on *different*
4635        // modules pass the gate. Mirrors
4636        // `validate_accepts_multiple_purges_after_one_load` — the
4637        // cleanup-singularity gate is keyed on (module), not on
4638        // (kind, module) pair, so distinct old-version names render
4639        // distinct cleanup targets and don't collide. Sweep both
4640        // same-class (two `:soft-purge` distinct modules) and cross-
4641        // class (`:soft-purge` then `:purge` distinct modules) so a
4642        // future tighten to a kind-only key (which would over-fire on
4643        // distinct modules) surfaces here.
4644        let two_soft = entry(
4645            "0.1.0",
4646            vec![
4647                UpgradeInstruction::LoadModule { module: "x".into() },
4648                UpgradeInstruction::SoftPurge {
4649                    module: "x-old".into(),
4650                },
4651                UpgradeInstruction::SoftPurge {
4652                    module: "x-older".into(),
4653                },
4654            ],
4655        );
4656        two_soft.validate().unwrap();
4657        let mixed = entry(
4658            "0.1.0",
4659            vec![
4660                UpgradeInstruction::LoadModule { module: "x".into() },
4661                UpgradeInstruction::SoftPurge {
4662                    module: "x-old".into(),
4663                },
4664                UpgradeInstruction::Purge {
4665                    module: "x-oldest".into(),
4666                },
4667            ],
4668        );
4669        mixed.validate().unwrap();
4670    }
4671
4672    #[test]
4673    fn validate_accepts_single_cleanup_per_module() {
4674        // Boundary control: a list with exactly one `:soft-purge` and
4675        // one `:purge` (distinct modules, the canonical "drain one,
4676        // hard-discard the other" shape) is the gate's identity
4677        // element. Pin so a future off-by-one in the duplicate-detection
4678        // scan doesn't accidentally flag a single occurrence as
4679        // duplicating itself — mirrors
4680        // `validate_upgrade_from_single_entry_never_duplicates` on
4681        // the peer cross-entry duplicate axis.
4682        let e = entry(
4683            "0.1.0",
4684            vec![
4685                UpgradeInstruction::LoadModule { module: "x".into() },
4686                UpgradeInstruction::SoftPurge {
4687                    module: "x-old".into(),
4688                },
4689                UpgradeInstruction::Purge {
4690                    module: "y-old".into(),
4691                },
4692            ],
4693        );
4694        e.validate().unwrap();
4695    }
4696
4697    #[test]
4698    fn validate_cleanup_singularity_fires_after_purge_ordering() {
4699        // Diagnostic-precedence pin: an entry like `((:soft-purge "x")
4700        // (:soft-purge "x"))` is *both* purge-without-load and
4701        // duplicate-cleanup. The more-fundamental ordering gate must
4702        // win — the missing-load defect is load-bearing (the canonical
4703        // OTP shape requires the new code be resident before any
4704        // cleanup runs), and surfacing the duplicate diagnostic first
4705        // would mask the no-replacement-window defect the ordering
4706        // gate exists to close. Guards the call order in `validate`
4707        // against silent reordering. Same posture as
4708        // `validate_purge_ordering_fires_after_state_change_ordering`
4709        // on the sibling ordering gate.
4710        let e = entry(
4711            "0.1.0",
4712            vec![
4713                UpgradeInstruction::SoftPurge {
4714                    module: "x-old".into(),
4715                },
4716                UpgradeInstruction::SoftPurge {
4717                    module: "x-old".into(),
4718                },
4719            ],
4720        );
4721        let err = e.validate().unwrap_err();
4722        assert!(
4723            matches!(
4724                err,
4725                UpgradeError::PurgeWithoutPriorLoad {
4726                    kind: crate::render::M2_UPGRADE_INSTRUCTION_KIND_SOFT_PURGE,
4727                    ..
4728                }
4729            ),
4730            "purge-without-load must surface before duplicate-cleanup, got {err:?}"
4731        );
4732    }
4733
4734    #[test]
4735    fn validate_cleanup_singularity_fires_after_per_instr_shape() {
4736        // Order pin: a malformed `:module` value on a `:soft-purge`
4737        // (an empty string) surfaces its narrower kind-tagged
4738        // `ModuleEmpty` diagnostic *before* the within-entry cleanup-
4739        // singularity gate fires. The per-instruction shape pass walks
4740        // the list inline before the singularity check, so the
4741        // narrower self-locating diagnostic surfaces first — mirrors
4742        // the empty-first cascade on every peer DNS-1123 gate and the
4743        // `validate_purge_ordering_fires_after_per_instr_shape` pin on
4744        // the sibling ordering gate.
4745        //
4746        // Two empty-string `:soft-purge` would *otherwise* duplicate
4747        // (both modules are the same empty string), so this pin
4748        // double-locks the precedence: the per-instr shape gate must
4749        // win on the first malformed instruction before the duplicate
4750        // scan even reaches the second.
4751        let e = entry(
4752            "0.1.0",
4753            vec![
4754                UpgradeInstruction::LoadModule { module: "x".into() },
4755                UpgradeInstruction::SoftPurge {
4756                    module: String::new(),
4757                },
4758                UpgradeInstruction::SoftPurge {
4759                    module: String::new(),
4760                },
4761            ],
4762        );
4763        let err = e.validate().unwrap_err();
4764        assert_eq!(
4765            err,
4766            UpgradeError::ModuleEmpty {
4767                kind: crate::render::M2_UPGRADE_INSTRUCTION_KIND_SOFT_PURGE
4768            },
4769            "malformed instruction must surface its kind-tagged diagnostic before the \
4770             cleanup-singularity gate fires, got {err:?}"
4771        );
4772    }
4773
4774    #[test]
4775    fn validate_cleanup_singularity_reports_first_collision() {
4776        // Determinism pin: with three cleanups of the same module the
4777        // gate reports the *first* collision (the second occurrence)
4778        // and stops — the third's duplicate is masked by the first
4779        // surfaced one. Mirrors
4780        // `validate_upgrade_from_duplicate_diagnostic_names_second_collision`
4781        // on the peer cross-entry duplicate axis.
4782        let e = entry(
4783            "0.1.0",
4784            vec![
4785                UpgradeInstruction::LoadModule { module: "x".into() },
4786                UpgradeInstruction::SoftPurge {
4787                    module: "x-old".into(),
4788                },
4789                UpgradeInstruction::SoftPurge {
4790                    module: "x-old".into(),
4791                },
4792                UpgradeInstruction::Purge {
4793                    module: "x-old".into(),
4794                },
4795            ],
4796        );
4797        let err = e.validate().unwrap_err();
4798        assert_eq!(
4799            err,
4800            UpgradeError::DuplicateCleanup {
4801                from: "0.1.0".into(),
4802                module: "x-old".into(),
4803                kinds: vec![
4804                    crate::render::M2_UPGRADE_INSTRUCTION_KIND_SOFT_PURGE,
4805                    crate::render::M2_UPGRADE_INSTRUCTION_KIND_SOFT_PURGE,
4806                ],
4807            },
4808            "the first colliding pair must surface, not the later `:purge` collision"
4809        );
4810    }
4811
4812    #[test]
4813    fn validate_cleanup_singularity_threads_through_validate_upgrade_from() {
4814        // The whole-list entry-point surfaces the per-entry singularity
4815        // error (mirrors
4816        // `validate_purge_ordering_threads_through_validate_upgrade_from`):
4817        // the gate is reachable from the LayoutInvariants call site,
4818        // not only from a direct `entry.validate()`.
4819        let entries = vec![entry(
4820            "0.1.0",
4821            vec![
4822                UpgradeInstruction::LoadModule { module: "x".into() },
4823                UpgradeInstruction::SoftPurge {
4824                    module: "x-old".into(),
4825                },
4826                UpgradeInstruction::Purge {
4827                    module: "x-old".into(),
4828                },
4829            ],
4830        )];
4831        let err = validate_upgrade_from(&entries).unwrap_err();
4832        assert!(
4833            matches!(err, UpgradeError::DuplicateCleanup { .. }),
4834            "validate_upgrade_from must thread the cleanup-singularity error, got {err:?}"
4835        );
4836    }
4837
4838    #[test]
4839    fn validate_rejects_duplicate_load_module_for_same_module() {
4840        // `LoadModule` is the `code:load_module/1` analog (INSPIRATIONS
4841        // §II.4): each module is loaded exactly once per upgrade entry,
4842        // the operator's dispatch table reads the module name to bind
4843        // the wasm component, and a second `(:load-module "x")` re-reads
4844        // the same module name and re-binds the same component — a
4845        // no-op the second time. systools-generated `.relup` files emit
4846        // at most one `load_module` per module per upgrade step for
4847        // this reason. Author one `(:load-module "x")` per old module.
4848        let e = entry(
4849            "0.1.0",
4850            vec![
4851                UpgradeInstruction::LoadModule { module: "x".into() },
4852                UpgradeInstruction::LoadModule { module: "x".into() },
4853            ],
4854        );
4855        let err = e.validate().unwrap_err();
4856        assert_eq!(
4857            err,
4858            UpgradeError::DuplicateLoadModule {
4859                from: "0.1.0".into(),
4860                module: "x".into(),
4861            },
4862            "two `:load-module` of the same module must surface as DuplicateLoadModule naming \
4863             the module, got {err:?}"
4864        );
4865    }
4866
4867    #[test]
4868    fn validate_accepts_distinct_load_modules() {
4869        // Positive control: `:load-module` instructions on *different*
4870        // modules pass the gate. Mirrors
4871        // `validate_accepts_distinct_cleanup_modules` on the sibling
4872        // singularity axis — the load-singularity gate is keyed on
4873        // (module), so distinct module names render distinct load
4874        // targets and don't collide. Sweep both the bare two-load shape
4875        // and the canonical load-pair-with-cleanup shape so a future
4876        // tighten that over-fires on distinct loads surfaces here.
4877        let two_loads = entry(
4878            "0.1.0",
4879            vec![
4880                UpgradeInstruction::LoadModule { module: "x".into() },
4881                UpgradeInstruction::LoadModule { module: "y".into() },
4882            ],
4883        );
4884        two_loads.validate().unwrap();
4885        let with_cleanup = entry(
4886            "0.1.0",
4887            vec![
4888                UpgradeInstruction::LoadModule { module: "x".into() },
4889                UpgradeInstruction::LoadModule { module: "y".into() },
4890                UpgradeInstruction::SoftPurge {
4891                    module: "x-old".into(),
4892                },
4893                UpgradeInstruction::SoftPurge {
4894                    module: "y-old".into(),
4895                },
4896            ],
4897        );
4898        with_cleanup.validate().unwrap();
4899    }
4900
4901    #[test]
4902    fn validate_accepts_single_load_per_module() {
4903        // Boundary control: a list with exactly one `:load-module`
4904        // followed by the canonical `:state-change` + `:soft-purge`
4905        // sequence (the module-doc OTP shape) is the gate's identity
4906        // element. Pin so a future off-by-one in the duplicate-
4907        // detection scan doesn't accidentally flag a single occurrence
4908        // as duplicating itself — mirrors
4909        // `validate_accepts_single_cleanup_per_module` on the sibling
4910        // singularity axis.
4911        let e = entry(
4912            "0.1.0",
4913            vec![
4914                UpgradeInstruction::LoadModule { module: "x".into() },
4915                UpgradeInstruction::StateChange {
4916                    script: PathBuf::from("lib/migrations/v01-to-v02.lisp"),
4917                },
4918                UpgradeInstruction::SoftPurge {
4919                    module: "x-old".into(),
4920                },
4921            ],
4922        );
4923        e.validate().unwrap();
4924    }
4925
4926    #[test]
4927    fn validate_load_singularity_fires_after_state_change_ordering() {
4928        // Diagnostic-precedence pin: an entry like `((:state-change
4929        // "m.lisp") (:load-module "x") (:load-module "x"))` is *both*
4930        // state-change-without-load and duplicate-load. The more-
4931        // fundamental ordering gate must win — the missing-load defect
4932        // is load-bearing (the migration runs against unloaded code),
4933        // and surfacing the duplicate diagnostic first would mask the
4934        // migrate-into-unloaded-code defect the ordering gate exists
4935        // to close. Guards the call order in `validate` against silent
4936        // reordering. Same posture as
4937        // `validate_cleanup_singularity_fires_after_purge_ordering`
4938        // on the sibling singularity gate.
4939        let e = entry(
4940            "0.1.0",
4941            vec![
4942                UpgradeInstruction::StateChange {
4943                    script: PathBuf::from("lib/m.lisp"),
4944                },
4945                UpgradeInstruction::LoadModule { module: "x".into() },
4946                UpgradeInstruction::LoadModule { module: "x".into() },
4947            ],
4948        );
4949        let err = e.validate().unwrap_err();
4950        assert!(
4951            matches!(err, UpgradeError::StateChangeWithoutPriorLoad { .. }),
4952            "state-change-without-load must surface before duplicate-load, got {err:?}"
4953        );
4954    }
4955
4956    #[test]
4957    fn validate_load_singularity_fires_after_purge_ordering() {
4958        // Diagnostic-precedence pin: an entry like `((:soft-purge
4959        // "x-old") (:load-module "x") (:load-module "x"))` is *both*
4960        // purge-without-load and duplicate-load. The more-fundamental
4961        // ordering gate must win — the missing-load defect is load-
4962        // bearing (the cleanup runs against no-replacement-window),
4963        // and surfacing the duplicate diagnostic first would mask the
4964        // drain-to-nothing defect the ordering gate exists to close.
4965        // Sibling of
4966        // `validate_cleanup_singularity_fires_after_purge_ordering` on
4967        // the load-singularity axis.
4968        let e = entry(
4969            "0.1.0",
4970            vec![
4971                UpgradeInstruction::SoftPurge {
4972                    module: "x-old".into(),
4973                },
4974                UpgradeInstruction::LoadModule { module: "x".into() },
4975                UpgradeInstruction::LoadModule { module: "x".into() },
4976            ],
4977        );
4978        let err = e.validate().unwrap_err();
4979        assert!(
4980            matches!(
4981                err,
4982                UpgradeError::PurgeWithoutPriorLoad {
4983                    kind: crate::render::M2_UPGRADE_INSTRUCTION_KIND_SOFT_PURGE,
4984                    ..
4985                }
4986            ),
4987            "purge-without-load must surface before duplicate-load, got {err:?}"
4988        );
4989    }
4990
4991    #[test]
4992    fn validate_load_singularity_fires_after_per_instr_shape() {
4993        // Order pin: a malformed `:module` value on a `:load-module`
4994        // (an empty string) surfaces its narrower kind-tagged
4995        // `ModuleEmpty` diagnostic *before* the within-entry load-
4996        // singularity gate fires. The per-instruction shape pass walks
4997        // the list inline before the singularity check, so the
4998        // narrower self-locating diagnostic surfaces first — mirrors
4999        // the empty-first cascade on every peer DNS-1123 gate and the
5000        // `validate_cleanup_singularity_fires_after_per_instr_shape`
5001        // pin on the sibling singularity gate.
5002        //
5003        // Two empty-string `:load-module` would *otherwise* duplicate
5004        // (both modules are the same empty string), so this pin
5005        // double-locks the precedence: the per-instr shape gate must
5006        // win on the first malformed instruction before the duplicate
5007        // scan even reaches the second.
5008        let e = entry(
5009            "0.1.0",
5010            vec![
5011                UpgradeInstruction::LoadModule {
5012                    module: String::new(),
5013                },
5014                UpgradeInstruction::LoadModule {
5015                    module: String::new(),
5016                },
5017            ],
5018        );
5019        let err = e.validate().unwrap_err();
5020        assert_eq!(
5021            err,
5022            UpgradeError::ModuleEmpty {
5023                kind: crate::render::M2_UPGRADE_INSTRUCTION_KIND_LOAD_MODULE,
5024            },
5025            "malformed instruction must surface its kind-tagged diagnostic before the \
5026             load-singularity gate fires, got {err:?}"
5027        );
5028    }
5029
5030    #[test]
5031    fn validate_load_singularity_fires_before_cleanup_singularity() {
5032        // Diagnostic-precedence pin: an entry that violates *both*
5033        // singularities — duplicate load on "x" *and* duplicate cleanup
5034        // on "y-old" — must surface the load-side diagnostic first.
5035        // The load axis precedes the cleanup axis in the canonical OTP
5036        // sequence (`code:load_module/1` then `code:soft_purge/1`) and
5037        // in [`UpgradeInstruction`] declaration order (LoadModule
5038        // before SoftPurge/Purge), so the load-side singularity is the
5039        // load-bearing diagnostic when both fire — the cleanup-side
5040        // duplicate is meaningless either way without a coherent load.
5041        // Guards the call order in `validate`: `validate_load_singularity`
5042        // runs before `validate_cleanup_singularity`.
5043        let e = entry(
5044            "0.1.0",
5045            vec![
5046                UpgradeInstruction::LoadModule { module: "x".into() },
5047                UpgradeInstruction::LoadModule { module: "x".into() },
5048                UpgradeInstruction::SoftPurge {
5049                    module: "y-old".into(),
5050                },
5051                UpgradeInstruction::SoftPurge {
5052                    module: "y-old".into(),
5053                },
5054            ],
5055        );
5056        let err = e.validate().unwrap_err();
5057        assert_eq!(
5058            err,
5059            UpgradeError::DuplicateLoadModule {
5060                from: "0.1.0".into(),
5061                module: "x".into(),
5062            },
5063            "duplicate-load must surface before duplicate-cleanup, got {err:?}"
5064        );
5065    }
5066
5067    #[test]
5068    fn validate_load_singularity_reports_first_collision() {
5069        // Determinism pin: with three loads of the same module the gate
5070        // reports the *first* collision (the second occurrence) and
5071        // stops — the third's duplicate is masked by the first surfaced
5072        // one. Mirrors
5073        // `validate_cleanup_singularity_reports_first_collision` on the
5074        // sibling singularity axis and every peer duplicate gate's
5075        // first-collision discipline.
5076        let e = entry(
5077            "0.1.0",
5078            vec![
5079                UpgradeInstruction::LoadModule { module: "x".into() },
5080                UpgradeInstruction::LoadModule { module: "x".into() },
5081                UpgradeInstruction::LoadModule { module: "x".into() },
5082            ],
5083        );
5084        let err = e.validate().unwrap_err();
5085        assert_eq!(
5086            err,
5087            UpgradeError::DuplicateLoadModule {
5088                from: "0.1.0".into(),
5089                module: "x".into(),
5090            },
5091            "the first colliding occurrence must surface, not the later third-load collision"
5092        );
5093    }
5094
5095    #[test]
5096    fn validate_load_singularity_threads_through_validate_upgrade_from() {
5097        // The whole-list entry-point surfaces the per-entry singularity
5098        // error (mirrors
5099        // `validate_cleanup_singularity_threads_through_validate_upgrade_from`):
5100        // the gate is reachable from the LayoutInvariants call site,
5101        // not only from a direct `entry.validate()`.
5102        let entries = vec![entry(
5103            "0.1.0",
5104            vec![
5105                UpgradeInstruction::LoadModule { module: "x".into() },
5106                UpgradeInstruction::LoadModule { module: "x".into() },
5107            ],
5108        )];
5109        let err = validate_upgrade_from(&entries).unwrap_err();
5110        assert!(
5111            matches!(err, UpgradeError::DuplicateLoadModule { .. }),
5112            "validate_upgrade_from must thread the load-singularity error, got {err:?}"
5113        );
5114    }
5115
5116    // ── within-entry state-change-singularity invariant ────────────────
5117
5118    #[test]
5119    fn validate_rejects_duplicate_state_change_for_same_script() {
5120        // `StateChange` is the `gen_server:code_change/3` analog
5121        // (INSPIRATIONS §II.4): the script folds the prior-version
5122        // state shape into the current-version shape — a one-shot
5123        // transition, not a step that composes with itself. OTP's
5124        // release_handler invokes `code_change/3` exactly once per
5125        // upgrade per gen_server; systools-generated `.relup` files
5126        // emit at most one `code_change` per gen_server per upgrade
5127        // step for this reason. A second `(:state-change "m.lisp")`
5128        // re-runs the same fold on the already-migrated state — at
5129        // best a no-op and at worst silent state corruption from
5130        // double-applied non-idempotent transforms (`add column`,
5131        // `increment counter`, `rename field`). Author one
5132        // `(:state-change "m.lisp")` per migration script per entry.
5133        let e = entry(
5134            "0.1.0",
5135            vec![
5136                UpgradeInstruction::LoadModule { module: "x".into() },
5137                UpgradeInstruction::StateChange {
5138                    script: PathBuf::from("lib/migrations/v01-to-v02.lisp"),
5139                },
5140                UpgradeInstruction::StateChange {
5141                    script: PathBuf::from("lib/migrations/v01-to-v02.lisp"),
5142                },
5143            ],
5144        );
5145        let err = e.validate().unwrap_err();
5146        assert_eq!(
5147            err,
5148            UpgradeError::DuplicateStateChange {
5149                from: "0.1.0".into(),
5150                script: PathBuf::from("lib/migrations/v01-to-v02.lisp"),
5151            },
5152            "two `:state-change` of the same script must surface as DuplicateStateChange naming \
5153             the script, got {err:?}"
5154        );
5155    }
5156
5157    #[test]
5158    fn validate_accepts_distinct_state_change_scripts() {
5159        // Positive control: `:state-change` instructions on *different*
5160        // scripts pass the gate. Mirrors
5161        // `validate_accepts_distinct_cleanup_modules` /
5162        // `validate_accepts_distinct_load_modules` on the sibling
5163        // singularity axes — the state-change-singularity gate is keyed
5164        // on the script PathBuf, so distinct scripts render distinct
5165        // migration targets and don't collide. Sweep both the bare two-
5166        // migration shape and the canonical load-pair-with-cleanup shape
5167        // so a future tighten that over-fires on distinct scripts
5168        // surfaces here. This positive control is the gate-level peer of
5169        // `validate_accepts_multiple_state_changes_after_one_load` (the
5170        // ordering-gate positive control on distinct scripts), pinned
5171        // here independently so a future refactor that decouples the
5172        // gates can't accidentally drop coverage on either.
5173        let two_migrations = entry(
5174            "0.1.0",
5175            vec![
5176                UpgradeInstruction::LoadModule { module: "x".into() },
5177                UpgradeInstruction::StateChange {
5178                    script: PathBuf::from("lib/m1.lisp"),
5179                },
5180                UpgradeInstruction::StateChange {
5181                    script: PathBuf::from("lib/m2.lisp"),
5182                },
5183            ],
5184        );
5185        two_migrations.validate().unwrap();
5186        let with_cleanup = entry(
5187            "0.1.0",
5188            vec![
5189                UpgradeInstruction::LoadModule { module: "x".into() },
5190                UpgradeInstruction::StateChange {
5191                    script: PathBuf::from("lib/m1.lisp"),
5192                },
5193                UpgradeInstruction::StateChange {
5194                    script: PathBuf::from("lib/m2.lisp"),
5195                },
5196                UpgradeInstruction::SoftPurge {
5197                    module: "x-old".into(),
5198                },
5199            ],
5200        );
5201        with_cleanup.validate().unwrap();
5202    }
5203
5204    #[test]
5205    fn validate_accepts_single_state_change_per_script() {
5206        // Boundary control: a list with exactly one `:state-change`
5207        // wrapped by the canonical `:load-module` + `:soft-purge`
5208        // sequence (the module-doc OTP shape) is the gate's identity
5209        // element. Pin so a future off-by-one in the duplicate-
5210        // detection scan doesn't accidentally flag a single occurrence
5211        // as duplicating itself — mirrors
5212        // `validate_accepts_single_load_per_module` /
5213        // `validate_accepts_single_cleanup_per_module` on the sibling
5214        // singularity axes.
5215        let e = entry(
5216            "0.1.0",
5217            vec![
5218                UpgradeInstruction::LoadModule { module: "x".into() },
5219                UpgradeInstruction::StateChange {
5220                    script: PathBuf::from("lib/migrations/v01-to-v02.lisp"),
5221                },
5222                UpgradeInstruction::SoftPurge {
5223                    module: "x-old".into(),
5224                },
5225            ],
5226        );
5227        e.validate().unwrap();
5228    }
5229
5230    #[test]
5231    fn validate_state_change_singularity_fires_after_state_change_ordering() {
5232        // Diagnostic-precedence pin: an entry like `((:state-change
5233        // "m.lisp") (:state-change "m.lisp"))` is *both* state-change-
5234        // without-load and duplicate-state-change. The more-fundamental
5235        // ordering gate must win — the missing-load defect is load-
5236        // bearing (the migration runs against unloaded code), and
5237        // surfacing the duplicate diagnostic first would mask the
5238        // migrate-into-unloaded-code defect the ordering gate exists to
5239        // close. Guards the call order in `validate` against silent
5240        // reordering. Same posture as
5241        // `validate_load_singularity_fires_after_state_change_ordering`
5242        // on the sibling singularity gate.
5243        //
5244        // Two same-script `:state-change` would *otherwise* duplicate
5245        // (both scripts collide on the very first `:state-change`-
5246        // without-load encountered), so this pin double-locks the
5247        // precedence: the ordering gate must win on the first un-loaded
5248        // `:state-change` before the singularity scan even reaches the
5249        // second.
5250        let e = entry(
5251            "0.1.0",
5252            vec![
5253                UpgradeInstruction::StateChange {
5254                    script: PathBuf::from("lib/m.lisp"),
5255                },
5256                UpgradeInstruction::StateChange {
5257                    script: PathBuf::from("lib/m.lisp"),
5258                },
5259            ],
5260        );
5261        let err = e.validate().unwrap_err();
5262        assert!(
5263            matches!(err, UpgradeError::StateChangeWithoutPriorLoad { .. }),
5264            "state-change-without-load must surface before duplicate-state-change, got {err:?}"
5265        );
5266    }
5267
5268    #[test]
5269    fn validate_state_change_singularity_fires_after_purge_ordering() {
5270        // Diagnostic-precedence pin: an entry like `((:soft-purge
5271        // "x-old") (:load-module "x") (:state-change "m.lisp")
5272        // (:state-change "m.lisp"))` is *both* purge-without-load and
5273        // duplicate-state-change. The more-fundamental ordering gate
5274        // must win — the missing-load defect (a cleanup that drains the
5275        // only resident version to nothing) is load-bearing, and
5276        // surfacing the duplicate diagnostic first would mask the
5277        // drain-to-nothing defect the ordering gate exists to close.
5278        // Sibling of `validate_load_singularity_fires_after_purge_ordering`
5279        // on the state-change-singularity axis.
5280        let e = entry(
5281            "0.1.0",
5282            vec![
5283                UpgradeInstruction::SoftPurge {
5284                    module: "x-old".into(),
5285                },
5286                UpgradeInstruction::LoadModule { module: "x".into() },
5287                UpgradeInstruction::StateChange {
5288                    script: PathBuf::from("lib/m.lisp"),
5289                },
5290                UpgradeInstruction::StateChange {
5291                    script: PathBuf::from("lib/m.lisp"),
5292                },
5293            ],
5294        );
5295        let err = e.validate().unwrap_err();
5296        assert!(
5297            matches!(
5298                err,
5299                UpgradeError::PurgeWithoutPriorLoad {
5300                    kind: crate::render::M2_UPGRADE_INSTRUCTION_KIND_SOFT_PURGE,
5301                    ..
5302                }
5303            ),
5304            "purge-without-load must surface before duplicate-state-change, got {err:?}"
5305        );
5306    }
5307
5308    #[test]
5309    fn validate_state_change_singularity_fires_after_per_instr_shape() {
5310        // Order pin: a malformed `:script` value on a `:state-change`
5311        // (an empty path) surfaces its narrower `EmptyScript` diagnostic
5312        // *before* the within-entry state-change-singularity gate fires.
5313        // The per-instruction shape pass walks the list inline before
5314        // the singularity check, so the narrower self-locating
5315        // diagnostic surfaces first — mirrors the empty-first cascade on
5316        // every peer path-shape gate and the
5317        // `validate_load_singularity_fires_after_per_instr_shape` /
5318        // `validate_cleanup_singularity_fires_after_per_instr_shape`
5319        // pins on the sibling singularity gates.
5320        //
5321        // Two empty-path `:state-change` would *otherwise* duplicate
5322        // (both scripts are the same empty PathBuf), so this pin double-
5323        // locks the precedence: the per-instr shape gate must win on the
5324        // first malformed instruction before the duplicate scan even
5325        // reaches the second.
5326        let e = entry(
5327            "0.1.0",
5328            vec![
5329                UpgradeInstruction::LoadModule { module: "x".into() },
5330                UpgradeInstruction::StateChange {
5331                    script: PathBuf::new(),
5332                },
5333                UpgradeInstruction::StateChange {
5334                    script: PathBuf::new(),
5335                },
5336            ],
5337        );
5338        let err = e.validate().unwrap_err();
5339        assert_eq!(
5340            err,
5341            UpgradeError::EmptyScript,
5342            "malformed instruction must surface its narrower diagnostic before the \
5343             state-change-singularity gate fires, got {err:?}"
5344        );
5345    }
5346
5347    #[test]
5348    fn validate_state_change_singularity_fires_after_load_singularity() {
5349        // Diagnostic-precedence pin: an entry that violates *both*
5350        // singularities — duplicate load on "x" *and* duplicate
5351        // state-change on "m.lisp" — must surface the load-side
5352        // diagnostic first. The load axis precedes the migration axis
5353        // in the canonical OTP sequence (`code:load_module/1` then
5354        // `gen_server:code_change/3`) and in [`UpgradeInstruction`]
5355        // declaration order (LoadModule before StateChange), so the
5356        // load-side singularity is the load-bearing diagnostic when
5357        // both fire — the migration-side duplicate is meaningless
5358        // either way without a coherent load. Guards the call order in
5359        // `validate`: `validate_load_singularity` runs before
5360        // `validate_state_change_singularity`.
5361        let e = entry(
5362            "0.1.0",
5363            vec![
5364                UpgradeInstruction::LoadModule { module: "x".into() },
5365                UpgradeInstruction::LoadModule { module: "x".into() },
5366                UpgradeInstruction::StateChange {
5367                    script: PathBuf::from("lib/m.lisp"),
5368                },
5369                UpgradeInstruction::StateChange {
5370                    script: PathBuf::from("lib/m.lisp"),
5371                },
5372            ],
5373        );
5374        let err = e.validate().unwrap_err();
5375        assert_eq!(
5376            err,
5377            UpgradeError::DuplicateLoadModule {
5378                from: "0.1.0".into(),
5379                module: "x".into(),
5380            },
5381            "duplicate-load must surface before duplicate-state-change, got {err:?}"
5382        );
5383    }
5384
5385    #[test]
5386    fn validate_state_change_singularity_fires_before_cleanup_singularity() {
5387        // Diagnostic-precedence pin: an entry that violates *both*
5388        // singularities — duplicate state-change on "m.lisp" *and*
5389        // duplicate cleanup on "y-old" — must surface the migration-
5390        // side diagnostic first. The migration axis precedes the
5391        // cleanup axis in the canonical OTP sequence
5392        // (`gen_server:code_change/3` then `code:soft_purge/1`) and in
5393        // [`UpgradeInstruction`] declaration order (StateChange before
5394        // SoftPurge/Purge), so the migration-side singularity is the
5395        // load-bearing diagnostic when both fire — the cleanup-side
5396        // duplicate is irrelevant once the migration has corrupted
5397        // state by double-applying. Guards the call order in
5398        // `validate`: `validate_state_change_singularity` runs before
5399        // `validate_cleanup_singularity`.
5400        let e = entry(
5401            "0.1.0",
5402            vec![
5403                UpgradeInstruction::LoadModule { module: "x".into() },
5404                UpgradeInstruction::StateChange {
5405                    script: PathBuf::from("lib/m.lisp"),
5406                },
5407                UpgradeInstruction::StateChange {
5408                    script: PathBuf::from("lib/m.lisp"),
5409                },
5410                UpgradeInstruction::SoftPurge {
5411                    module: "y-old".into(),
5412                },
5413                UpgradeInstruction::SoftPurge {
5414                    module: "y-old".into(),
5415                },
5416            ],
5417        );
5418        let err = e.validate().unwrap_err();
5419        assert_eq!(
5420            err,
5421            UpgradeError::DuplicateStateChange {
5422                from: "0.1.0".into(),
5423                script: PathBuf::from("lib/m.lisp"),
5424            },
5425            "duplicate-state-change must surface before duplicate-cleanup, got {err:?}"
5426        );
5427    }
5428
5429    #[test]
5430    fn validate_state_change_singularity_reports_first_collision() {
5431        // Determinism pin: with three state-changes on the same script
5432        // the gate reports the *first* collision (the second
5433        // occurrence) and stops — the third's duplicate is masked by
5434        // the first surfaced one. Mirrors
5435        // `validate_load_singularity_reports_first_collision` /
5436        // `validate_cleanup_singularity_reports_first_collision` on the
5437        // sibling singularity axes and every peer duplicate gate's
5438        // first-collision discipline.
5439        let e = entry(
5440            "0.1.0",
5441            vec![
5442                UpgradeInstruction::LoadModule { module: "x".into() },
5443                UpgradeInstruction::StateChange {
5444                    script: PathBuf::from("lib/m.lisp"),
5445                },
5446                UpgradeInstruction::StateChange {
5447                    script: PathBuf::from("lib/m.lisp"),
5448                },
5449                UpgradeInstruction::StateChange {
5450                    script: PathBuf::from("lib/m.lisp"),
5451                },
5452            ],
5453        );
5454        let err = e.validate().unwrap_err();
5455        assert_eq!(
5456            err,
5457            UpgradeError::DuplicateStateChange {
5458                from: "0.1.0".into(),
5459                script: PathBuf::from("lib/m.lisp"),
5460            },
5461            "the first colliding occurrence must surface, not the later third-migration collision"
5462        );
5463    }
5464
5465    #[test]
5466    fn validate_state_change_singularity_threads_through_validate_upgrade_from() {
5467        // The whole-list entry-point surfaces the per-entry singularity
5468        // error (mirrors
5469        // `validate_load_singularity_threads_through_validate_upgrade_from`
5470        // / `validate_cleanup_singularity_threads_through_validate_upgrade_from`):
5471        // the gate is reachable from the LayoutInvariants call site,
5472        // not only from a direct `entry.validate()`.
5473        let entries = vec![entry(
5474            "0.1.0",
5475            vec![
5476                UpgradeInstruction::LoadModule { module: "x".into() },
5477                UpgradeInstruction::StateChange {
5478                    script: PathBuf::from("lib/m.lisp"),
5479                },
5480                UpgradeInstruction::StateChange {
5481                    script: PathBuf::from("lib/m.lisp"),
5482                },
5483            ],
5484        )];
5485        let err = validate_upgrade_from(&entries).unwrap_err();
5486        assert!(
5487            matches!(err, UpgradeError::DuplicateStateChange { .. }),
5488            "validate_upgrade_from must thread the state-change-singularity error, got {err:?}"
5489        );
5490    }
5491
5492    #[test]
5493    fn validate_state_change_singularity_projects_scripts_through_declared_path_accessor() {
5494        // Composition pin: [`UpgradeFromEntry::validate_state_change_singularity`]'s
5495        // per-instruction `StateChange`-arm script-path projection must
5496        // route through the sibling lifted
5497        // [`UpgradeInstruction::declared_path`] `Option<&PathBuf>`
5498        // accessor, not the raw
5499        // `match instr { UpgradeInstruction::StateChange { script } =>
5500        // script.as_path(), _ => continue }` open-coded pattern-match
5501        // the gate previously carried.
5502        //
5503        // Structurally: the gate's projection accept-set is the union
5504        // of every [`UpgradeInstruction`] variant for which
5505        // `declared_path().is_some()` — today exactly
5506        // [`UpgradeInstruction::StateChange`] per the sibling
5507        // `declared_path_only_for_state_change` pin, so a
5508        // duplicate-scripts input trips `DuplicateStateChange` and a
5509        // non-`StateChange` input (module-bearing / terminal) leaves
5510        // `seen` empty and the gate returns `Ok(())` byte-identical to
5511        // the pattern-match shape.
5512        //
5513        // Byte-equal today (`declared_path` returns `Some(script)` iff
5514        // `StateChange`, byte-for-byte from the variant's own storage);
5515        // the pin catches any future accessor extension that promotes
5516        // an additional variant onto the `PathBuf`-carrying axis — the
5517        // gate then fires on duplicate scripts from that variant too,
5518        // and the singularity discipline the sibling
5519        // `validate_load_singularity` / `validate_cleanup_singularity`
5520        // gates share on the `String`-carrying axis's per-variant
5521        // consumers extends to the promoted variant by construction.
5522        //
5523        // Peer of the sibling four per-`UpgradeInstruction` consumers
5524        // ([`UpgradeInstruction::validate`]'s per-`StateChange`
5525        // sandbox-path fan-out, the layout-side per-`StateChange`
5526        // script-existence fan-out at
5527        // `caixa-core/src/layout.rs:1017`, the cross-slot
5528        // [`validate_upgrade_from_against_behavior`] gate's per-
5529        // `StateChange` detection loop, the peer
5530        // [`UpgradeInstruction::declared_module`] `String`-axis
5531        // per-variant unifier) — this gate now shares one typed
5532        // dispatch on the substrate primitive's `PathBuf`-carrying
5533        // axis with those consumers, so a future rebrand on the axis
5534        // migrates as a single caixa-core edit rather than a
5535        // coordinated rewrite of five call sites.
5536        //
5537        // Three-arm projective coverage:
5538        //   (a) `StateChange` scripts project through `declared_path()`
5539        //       byte-equal to the raw `script.as_path()` field access;
5540        //   (b) a duplicate-`StateChange` input trips the gate on the
5541        //       second occurrence with `DuplicateStateChange` carrying
5542        //       the offending script verbatim;
5543        //   (c) a non-`StateChange`-only input (`LoadModule` /
5544        //       `SoftPurge` / `Purge` / `Restart`) leaves the gate
5545        //       vacuous with `Ok(())` — the `declared_path().is_none()`
5546        //       arm's `continue` fall-through pins.
5547        //
5548        // Fail-before-pass-after verified locally: swapping the
5549        // production `let Some(script) = instr.declared_path() else {
5550        // continue };` back to `let script = match instr {
5551        // UpgradeInstruction::StateChange { script } =>
5552        // script.as_path(), _ => continue, };` keeps arms (a)-(c)
5553        // passing but silently detaches the gate from the accessor's
5554        // typed dispatch — any future `declared_path` extension
5555        // (promotion of an additional variant onto the axis, an
5556        // operator-side pre-resolved-path cache the accessor
5557        // materializes) would then silently disagree between this
5558        // gate's raw pattern-match and the peer four sibling consumers
5559        // that route through the accessor.
5560        use std::path::PathBuf;
5561
5562        // (a) StateChange projection byte-equal via declared_path.
5563        let sc = UpgradeInstruction::StateChange {
5564            script: PathBuf::from("lib/m.lisp"),
5565        };
5566        assert_eq!(
5567            sc.declared_path().map(std::path::PathBuf::as_path),
5568            Some(PathBuf::from("lib/m.lisp").as_path()),
5569            "declared_path() must project the StateChange :script byte-equal to the raw \
5570             field access — accessor divergence would silently detach the gate from the \
5571             projection every peer per-`UpgradeInstruction` consumer routes through"
5572        );
5573
5574        // (b) Duplicate-StateChange input trips the gate.
5575        let dup = entry(
5576            "0.1.0",
5577            vec![
5578                UpgradeInstruction::LoadModule { module: "x".into() },
5579                UpgradeInstruction::StateChange {
5580                    script: PathBuf::from("lib/m.lisp"),
5581                },
5582                UpgradeInstruction::StateChange {
5583                    script: PathBuf::from("lib/m.lisp"),
5584                },
5585            ],
5586        );
5587        assert_eq!(
5588            dup.validate_state_change_singularity(),
5589            Err(UpgradeError::DuplicateStateChange {
5590                from: "0.1.0".into(),
5591                script: PathBuf::from("lib/m.lisp"),
5592            }),
5593            "duplicate StateChange scripts must trip the gate on the second occurrence \
5594             through the declared_path accessor's Some(script) arm"
5595        );
5596
5597        // (c) Non-StateChange-only inputs leave the gate vacuous.
5598        for instrs in [
5599            vec![UpgradeInstruction::LoadModule { module: "x".into() }],
5600            vec![
5601                UpgradeInstruction::LoadModule { module: "x".into() },
5602                UpgradeInstruction::SoftPurge {
5603                    module: "x-old".into(),
5604                },
5605            ],
5606            vec![
5607                UpgradeInstruction::LoadModule { module: "x".into() },
5608                UpgradeInstruction::Purge {
5609                    module: "x-old".into(),
5610                },
5611            ],
5612            vec![UpgradeInstruction::Restart],
5613        ] {
5614            for instr in &instrs {
5615                assert!(
5616                    instr.declared_path().is_none(),
5617                    "non-StateChange variants must project None through declared_path — \
5618                     accessor divergence would let this gate silently fire on a duplicate \
5619                     module reference far from any :state-change site"
5620                );
5621            }
5622            let e = entry("0.1.0", instrs);
5623            assert_eq!(
5624                e.validate_state_change_singularity(),
5625                Ok(()),
5626                "the state-change-singularity gate must return Ok(()) on an entry whose \
5627                 instructions all project None through declared_path — the accessor's \
5628                 continue arm the pattern-match's `_ => continue` previously carried"
5629            );
5630        }
5631    }
5632
5633    // ── within-entry state-change-before-cleanup ordering invariant ──
5634
5635    #[test]
5636    fn validate_rejects_state_change_after_soft_purge() {
5637        // Fail-before-pass-after pin: `:state-change` is the
5638        // gen_server:code_change/3 analog and folds the prior-version
5639        // state shape into the current shape; `:soft-purge` drains the
5640        // prior code. The operator runs instructions in declared order,
5641        // so a `:soft-purge` ahead of a `:state-change` drains the
5642        // prior module before the migration callback runs against the
5643        // state it held — the canonical OTP error mode
5644        // "`code_change/3` invoked on a purged module" the
5645        // release_handler closes by always ordering the migration
5646        // before the cleanup.
5647        let e = entry(
5648            "0.1.0",
5649            vec![
5650                UpgradeInstruction::LoadModule { module: "x".into() },
5651                UpgradeInstruction::SoftPurge {
5652                    module: "x-old".into(),
5653                },
5654                UpgradeInstruction::StateChange {
5655                    script: PathBuf::from("lib/m.lisp"),
5656                },
5657            ],
5658        );
5659        let err = e.validate().unwrap_err();
5660        assert_eq!(
5661            err,
5662            UpgradeError::StateChangeAfterCleanup {
5663                from: "0.1.0".into(),
5664                script: PathBuf::from("lib/m.lisp"),
5665                prior_cleanup_kind: crate::render::M2_UPGRADE_INSTRUCTION_KIND_SOFT_PURGE,
5666                prior_cleanup_module: "x-old".into(),
5667            },
5668            "a `:state-change` after a `:soft-purge` must surface as StateChangeAfterCleanup \
5669             naming the offending entry + script + the prior cleanup's kind/module, got {err:?}"
5670        );
5671    }
5672
5673    #[test]
5674    fn validate_rejects_state_change_after_purge() {
5675        // Per-arm coverage: `:purge` (immediate discard, no drain) is
5676        // the more catastrophic peer of `:soft-purge` on the cleanup
5677        // axis; same gate, same shape, the `prior_cleanup_kind` field
5678        // distinguishes the diagnostic so the author can grep their
5679        // caixa.lisp for the offending `(:purge …)` form.
5680        let e = entry(
5681            "0.1.0",
5682            vec![
5683                UpgradeInstruction::LoadModule { module: "x".into() },
5684                UpgradeInstruction::Purge {
5685                    module: "x-old".into(),
5686                },
5687                UpgradeInstruction::StateChange {
5688                    script: PathBuf::from("lib/m.lisp"),
5689                },
5690            ],
5691        );
5692        let err = e.validate().unwrap_err();
5693        assert_eq!(
5694            err,
5695            UpgradeError::StateChangeAfterCleanup {
5696                from: "0.1.0".into(),
5697                script: PathBuf::from("lib/m.lisp"),
5698                prior_cleanup_kind: crate::render::M2_UPGRADE_INSTRUCTION_KIND_PURGE,
5699                prior_cleanup_module: "x-old".into(),
5700            },
5701            "a `:state-change` after a `:purge` must surface as StateChangeAfterCleanup with \
5702             `prior_cleanup_kind: \":purge\"`, got {err:?}"
5703        );
5704    }
5705
5706    #[test]
5707    fn validate_accepts_state_change_before_cleanup() {
5708        // Positive control: the canonical `(:load-module …)
5709        // (:state-change …) (:soft-purge …)` order validates — the
5710        // exact shape the module doc example and `validate_accepts_
5711        // well_formed` already pin, restated here on the new gate's
5712        // identity element so a future shortcut that runs the
5713        // singularity gates first doesn't silently mask a regression
5714        // here.
5715        let e = entry(
5716            "0.1.0",
5717            vec![
5718                UpgradeInstruction::LoadModule { module: "x".into() },
5719                UpgradeInstruction::StateChange {
5720                    script: PathBuf::from("lib/m.lisp"),
5721                },
5722                UpgradeInstruction::SoftPurge {
5723                    module: "x-old".into(),
5724                },
5725            ],
5726        );
5727        e.validate().unwrap();
5728    }
5729
5730    #[test]
5731    fn validate_accepts_cleanup_without_state_change() {
5732        // Empty-set identity: an entry that carries no `:state-change`
5733        // at all has nothing to order against the cleanup, so the gate
5734        // passes regardless of how the cleanups are placed (after the
5735        // single required `:load-module`). Mirrors the
5736        // `validate_accepts_multiple_purges_after_one_load` positive
5737        // control on the peer purge-ordering gate; metadata-only
5738        // upgrades with cleanup-but-no-migration land here.
5739        let e = entry(
5740            "0.1.0",
5741            vec![
5742                UpgradeInstruction::LoadModule { module: "x".into() },
5743                UpgradeInstruction::SoftPurge {
5744                    module: "x-old".into(),
5745                },
5746                UpgradeInstruction::Purge {
5747                    module: "x-oldest".into(),
5748                },
5749            ],
5750        );
5751        e.validate().unwrap();
5752    }
5753
5754    #[test]
5755    fn validate_accepts_state_change_without_cleanup() {
5756        // Empty-set identity on the dual axis: an entry that carries no
5757        // cleanup at all has nothing to order against the state-change,
5758        // so the gate passes — additive-upgrade shapes (load new code,
5759        // migrate state, leave old code resident for in-flight callers
5760        // to drain naturally) land here.
5761        let e = entry(
5762            "0.1.0",
5763            vec![
5764                UpgradeInstruction::LoadModule { module: "x".into() },
5765                UpgradeInstruction::StateChange {
5766                    script: PathBuf::from("lib/m.lisp"),
5767                },
5768            ],
5769        );
5770        e.validate().unwrap();
5771    }
5772
5773    #[test]
5774    fn validate_accepts_multiple_state_changes_before_cleanup() {
5775        // Coverage: every state-change must precede every cleanup, not
5776        // just the first. A chain `(load) (sc) (sc) (sp)` is the
5777        // canonical "two distinct migration scripts on a chained
5778        // upgrade" shape (one module's schema *and* another's
5779        // projection per the DuplicateStateChange diagnostic), and
5780        // it must pass when each state-change has distinct script
5781        // paths. Pinned here so a future shortcut that only checks
5782        // the first state-change doesn't silently accept a
5783        // `(load) (sc-1) (sp) (sc-2)` regression.
5784        let e = entry(
5785            "0.1.0",
5786            vec![
5787                UpgradeInstruction::LoadModule { module: "x".into() },
5788                UpgradeInstruction::StateChange {
5789                    script: PathBuf::from("lib/m1.lisp"),
5790                },
5791                UpgradeInstruction::StateChange {
5792                    script: PathBuf::from("lib/m2.lisp"),
5793                },
5794                UpgradeInstruction::SoftPurge {
5795                    module: "x-old".into(),
5796                },
5797            ],
5798        );
5799        e.validate().unwrap();
5800    }
5801
5802    #[test]
5803    fn validate_rejects_state_change_sandwiched_between_cleanups() {
5804        // First-cleanup-wins pin: an entry like `(load) (sp-1) (sc)
5805        // (sp-2)` violates the gate because the state-change runs
5806        // after the first cleanup. The reported `prior_cleanup_*`
5807        // names the *first* cleanup (the load-bearing one), not the
5808        // last — mirrors every peer first-collision diagnostic
5809        // posture on this module (`validate_state_change_ordering`,
5810        // `validate_purge_ordering`, `validate_load_singularity`,
5811        // `validate_state_change_singularity`,
5812        // `validate_cleanup_singularity` all report the first
5813        // colliding instruction, not the last).
5814        let e = entry(
5815            "0.1.0",
5816            vec![
5817                UpgradeInstruction::LoadModule { module: "x".into() },
5818                UpgradeInstruction::SoftPurge {
5819                    module: "x-old".into(),
5820                },
5821                UpgradeInstruction::StateChange {
5822                    script: PathBuf::from("lib/m.lisp"),
5823                },
5824                UpgradeInstruction::Purge {
5825                    module: "y-old".into(),
5826                },
5827            ],
5828        );
5829        let err = e.validate().unwrap_err();
5830        assert_eq!(
5831            err,
5832            UpgradeError::StateChangeAfterCleanup {
5833                from: "0.1.0".into(),
5834                script: PathBuf::from("lib/m.lisp"),
5835                prior_cleanup_kind: crate::render::M2_UPGRADE_INSTRUCTION_KIND_SOFT_PURGE,
5836                prior_cleanup_module: "x-old".into(),
5837            },
5838            "the first cleanup the state-change follows must surface (not the trailing one), \
5839             got {err:?}"
5840        );
5841    }
5842
5843    #[test]
5844    fn validate_state_change_before_cleanup_fires_after_purge_ordering() {
5845        // Diagnostic-precedence pin: an entry like `((:soft-purge
5846        // "x-old") (:load-module "x") (:state-change "m.lisp"))` is
5847        // *both* purge-without-load (the cleanup runs before the
5848        // load) and state-change-after-cleanup (the state-change
5849        // runs after the cleanup). The more-fundamental ordering
5850        // gate must win — the missing-load defect (a cleanup that
5851        // drains the only resident version to nothing) is load-
5852        // bearing, and surfacing the state-change-after-cleanup
5853        // diagnostic first would mask the drain-to-nothing defect
5854        // the peer purge-ordering gate exists to close. Guards the
5855        // call order in `validate` against silent reordering. Same
5856        // posture as `validate_purge_ordering_fires_after_state_
5857        // change_ordering` on the sibling ordering gate.
5858        //
5859        // Pin specifically uses the load-after-cleanup shape (rather
5860        // than load-less) so the state-change-ordering gate (which
5861        // would otherwise fire first on a `((:soft-purge …)
5862        // (:state-change …))` shape with no leading load) is
5863        // sidestepped: with the load present after the cleanup,
5864        // state-change-ordering passes (its `loaded` latch is set
5865        // before the state-change is encountered) but purge-ordering
5866        // still fails (the cleanup precedes the load). That isolates
5867        // the precedence between purge-ordering and this gate
5868        // cleanly.
5869        let e = entry(
5870            "0.1.0",
5871            vec![
5872                UpgradeInstruction::SoftPurge {
5873                    module: "x-old".into(),
5874                },
5875                UpgradeInstruction::LoadModule { module: "x".into() },
5876                UpgradeInstruction::StateChange {
5877                    script: PathBuf::from("lib/m.lisp"),
5878                },
5879            ],
5880        );
5881        let err = e.validate().unwrap_err();
5882        assert!(
5883            matches!(
5884                err,
5885                UpgradeError::PurgeWithoutPriorLoad {
5886                    kind: crate::render::M2_UPGRADE_INSTRUCTION_KIND_SOFT_PURGE,
5887                    ..
5888                }
5889            ),
5890            "purge-without-load must surface before state-change-after-cleanup, got {err:?}"
5891        );
5892    }
5893
5894    #[test]
5895    fn validate_state_change_before_cleanup_fires_after_state_change_ordering() {
5896        // Diagnostic-precedence pin: an entry like `((:state-change
5897        // "m.lisp") (:soft-purge "x-old"))` is state-change-without-
5898        // load (because no `:load-module` precedes the state-change)
5899        // but *not* state-change-after-cleanup (the state-change
5900        // precedes the cleanup textually). The state-change-ordering
5901        // gate must surface first regardless — the missing-load
5902        // defect on the migration axis is the load-bearing semantic
5903        // and surfacing a different ordering diagnostic would mask
5904        // the migration-against-stale-code defect. Guards the call
5905        // order in `validate` against silent reordering on a shape
5906        // that fires only the state-change-ordering gate (not this
5907        // one), pinning that the state-change-ordering gate wins
5908        // ahead of this gate's chance to look at the list.
5909        let e = entry(
5910            "0.1.0",
5911            vec![
5912                UpgradeInstruction::StateChange {
5913                    script: PathBuf::from("lib/m.lisp"),
5914                },
5915                UpgradeInstruction::SoftPurge {
5916                    module: "x-old".into(),
5917                },
5918            ],
5919        );
5920        let err = e.validate().unwrap_err();
5921        assert!(
5922            matches!(err, UpgradeError::StateChangeWithoutPriorLoad { .. }),
5923            "state-change-without-load must surface before purge-without-load (the canonical \
5924             validate_purge_ordering_fires_after_state_change_ordering pin), got {err:?}"
5925        );
5926    }
5927
5928    #[test]
5929    fn validate_state_change_before_cleanup_fires_after_per_instr_shape() {
5930        // Order pin: a malformed `:script` value on a `:state-change`
5931        // (an empty path) surfaces its narrower `EmptyScript`
5932        // diagnostic *before* the within-entry state-change-before-
5933        // cleanup gate fires. The per-instruction shape pass walks
5934        // the list inline before the ordering check, so the narrower
5935        // self-locating diagnostic surfaces first — mirrors the
5936        // empty-first cascade on every peer path-shape gate and the
5937        // `validate_purge_ordering_fires_after_per_instr_shape` pin
5938        // on the sibling ordering gate.
5939        let e = entry(
5940            "0.1.0",
5941            vec![
5942                UpgradeInstruction::LoadModule { module: "x".into() },
5943                UpgradeInstruction::SoftPurge {
5944                    module: "x-old".into(),
5945                },
5946                UpgradeInstruction::StateChange {
5947                    script: PathBuf::new(),
5948                },
5949            ],
5950        );
5951        let err = e.validate().unwrap_err();
5952        assert_eq!(
5953            err,
5954            UpgradeError::EmptyScript,
5955            "malformed instruction must surface its narrower diagnostic before the \
5956             state-change-before-cleanup gate fires, got {err:?}"
5957        );
5958    }
5959
5960    #[test]
5961    fn validate_state_change_before_cleanup_fires_before_state_change_singularity() {
5962        // Diagnostic-precedence pin: an entry like `((:load-module
5963        // "x") (:soft-purge "x-old") (:state-change "m.lisp")
5964        // (:state-change "m.lisp"))` violates *both* this ordering
5965        // gate (the first state-change follows the cleanup) and the
5966        // state-change-singularity gate (the same script appears
5967        // twice). The ordering gate must win — the canonical
5968        // "ordering before singularity" precedence the peer
5969        // `validate_state_change_ordering` / `validate_purge_
5970        // ordering` gates already establish over their own singularity
5971        // gates, applied uniformly across the OTP canonical-sequence
5972        // ordering axis here. Guards the call order in `validate`:
5973        // `validate_state_change_before_cleanup` runs before the
5974        // per-instruction-class singularity gates.
5975        let e = entry(
5976            "0.1.0",
5977            vec![
5978                UpgradeInstruction::LoadModule { module: "x".into() },
5979                UpgradeInstruction::SoftPurge {
5980                    module: "x-old".into(),
5981                },
5982                UpgradeInstruction::StateChange {
5983                    script: PathBuf::from("lib/m.lisp"),
5984                },
5985                UpgradeInstruction::StateChange {
5986                    script: PathBuf::from("lib/m.lisp"),
5987                },
5988            ],
5989        );
5990        let err = e.validate().unwrap_err();
5991        assert!(
5992            matches!(err, UpgradeError::StateChangeAfterCleanup { .. }),
5993            "state-change-after-cleanup must surface before duplicate-state-change, got {err:?}"
5994        );
5995    }
5996
5997    #[test]
5998    fn validate_state_change_before_cleanup_threads_through_validate_upgrade_from() {
5999        // The whole-list entry-point surfaces the per-entry ordering
6000        // error (mirrors `validate_purge_ordering_threads_through_
6001        // validate_upgrade_from` and every peer wiring pin): the gate
6002        // is reachable from the LayoutInvariants call site, not only
6003        // from a direct `entry.validate()`.
6004        let entries = vec![entry(
6005            "0.1.0",
6006            vec![
6007                UpgradeInstruction::LoadModule { module: "x".into() },
6008                UpgradeInstruction::SoftPurge {
6009                    module: "x-old".into(),
6010                },
6011                UpgradeInstruction::StateChange {
6012                    script: PathBuf::from("lib/m.lisp"),
6013                },
6014            ],
6015        )];
6016        let err = validate_upgrade_from(&entries).unwrap_err();
6017        assert!(
6018            matches!(err, UpgradeError::StateChangeAfterCleanup { .. }),
6019            "validate_upgrade_from must thread the state-change-before-cleanup error, \
6020             got {err:?}"
6021        );
6022    }
6023
6024    #[test]
6025    fn validate_state_change_before_cleanup_projects_scripts_through_declared_path_accessor() {
6026        // Composition pin: [`UpgradeFromEntry::validate_state_change_before_cleanup`]'s
6027        // per-instruction `StateChange`-arm script-path projection must
6028        // route through the sibling lifted
6029        // [`UpgradeInstruction::declared_path`] `Option<&PathBuf>`
6030        // accessor, not the raw
6031        // `if let UpgradeInstruction::StateChange { script } = instr`
6032        // open-coded pattern-match the gate previously carried inside
6033        // `impl UpgradeFromEntry` at caixa-core/src/upgrade.rs:806.
6034        //
6035        // Structurally: the gate's projection accept-set is the union
6036        // of every [`UpgradeInstruction`] variant for which
6037        // `declared_path().is_some()` — today exactly
6038        // [`UpgradeInstruction::StateChange`] per the sibling
6039        // `declared_path_only_for_state_change` pin, so a
6040        // state-change-after-cleanup input trips
6041        // `StateChangeAfterCleanup` and a non-`StateChange` input
6042        // (module-bearing / terminal) leaves the sticky-once latch
6043        // sweep quiet byte-identical to the pattern-match shape.
6044        //
6045        // Byte-equal today (`declared_path` returns `Some(script)` iff
6046        // `StateChange`, byte-for-byte from the variant's own storage);
6047        // the pin catches any future accessor extension that promotes
6048        // an additional variant onto the `PathBuf`-carrying axis — the
6049        // gate then fires on migrate-after-cleanup for that variant too,
6050        // and the migrate→cleanup ordering discipline the peer
6051        // [`validate_state_change_singularity`] /
6052        // [`validate_upgrade_from_against_behavior`] gates share on the
6053        // same axis extends to the promoted variant by construction.
6054        //
6055        // Peer of the sibling four per-`UpgradeInstruction` consumers
6056        // ([`UpgradeInstruction::validate`]'s per-`StateChange`
6057        // sandbox-path fan-out, the layout-side per-`StateChange`
6058        // script-existence fan-out at
6059        // `caixa-core/src/layout.rs:1058`, the within-entry
6060        // [`UpgradeFromEntry::validate_state_change_singularity`]
6061        // per-`StateChange` script-projection fan-out, the cross-slot
6062        // [`validate_upgrade_from_against_behavior`] per-`StateChange`
6063        // detection loop) — the fifth (and last unlifted inside
6064        // `impl UpgradeFromEntry`) per-`UpgradeInstruction`-consumer of
6065        // the `PathBuf`-carrying axis to now route through the accessor.
6066        // Same shape as the sibling
6067        // `validate_state_change_singularity_projects_scripts_through_declared_path_accessor`
6068        // and `validate_upgrade_from_against_behavior_projects_scripts_through_declared_path_accessor`
6069        // pins extended onto the within-entry migrate→cleanup ordering
6070        // gate.
6071        //
6072        // Three-arm projective coverage:
6073        //   (a) `StateChange` scripts project through `declared_path()`
6074        //       byte-equal to the raw `script.clone()` field access
6075        //       the diagnostic previously carried;
6076        //   (b) a `:state-change`-after-cleanup input trips the gate
6077        //       with `StateChangeAfterCleanup` carrying the offending
6078        //       script + the prior cleanup's kind/module verbatim;
6079        //   (c) a non-`StateChange`-only input (`LoadModule` /
6080        //       `SoftPurge` / `Purge` / `Restart`) leaves the gate
6081        //       vacuous with `Ok(())` — the `declared_path().is_none()`
6082        //       arm's fall-through pins.
6083        //
6084        // Fail-before-pass-after verified structurally: swapping the
6085        // production
6086        //   `else if let Some(script) = instr.declared_path() && … { … }`
6087        // back to
6088        //   `else if let UpgradeInstruction::StateChange { script } = instr && … { … }`
6089        // keeps arms (a)-(c) passing but silently detaches this within-
6090        // entry ordering gate from the accessor's typed dispatch — any
6091        // future `declared_path` extension (promotion of an additional
6092        // variant onto the axis, an operator-side pre-resolved-path
6093        // cache the accessor materializes) would then silently disagree
6094        // between this gate's raw pattern-match and the peer four
6095        // sibling consumers that route through the accessor.
6096
6097        // (a) StateChange projection byte-equal via declared_path.
6098        let sc = UpgradeInstruction::StateChange {
6099            script: PathBuf::from("lib/m.lisp"),
6100        };
6101        assert_eq!(
6102            sc.declared_path().cloned(),
6103            Some(PathBuf::from("lib/m.lisp")),
6104            "declared_path() must project the StateChange :script byte-equal to the raw \
6105             field access — accessor divergence would silently detach this within-entry \
6106             migrate→cleanup ordering gate from the projection every peer per-`UpgradeInstruction` \
6107             consumer routes through"
6108        );
6109
6110        // (b) StateChange-after-cleanup trips the gate through the accessor.
6111        let after = entry(
6112            "0.1.0",
6113            vec![
6114                UpgradeInstruction::LoadModule { module: "x".into() },
6115                UpgradeInstruction::SoftPurge {
6116                    module: "x-old".into(),
6117                },
6118                UpgradeInstruction::StateChange {
6119                    script: PathBuf::from("lib/m.lisp"),
6120                },
6121            ],
6122        );
6123        assert_eq!(
6124            after.validate(),
6125            Err(UpgradeError::StateChangeAfterCleanup {
6126                from: "0.1.0".into(),
6127                script: PathBuf::from("lib/m.lisp"),
6128                prior_cleanup_kind: crate::render::M2_UPGRADE_INSTRUCTION_KIND_SOFT_PURGE,
6129                prior_cleanup_module: "x-old".into(),
6130            }),
6131            "a :state-change following a cleanup must trip the gate through the declared_path \
6132             accessor's Some(script) arm — carrying the offending script + the prior cleanup's \
6133             kind/module verbatim byte-identical to the pattern-match shape"
6134        );
6135
6136        // (c) Non-StateChange-only inputs leave the gate vacuous.
6137        for instrs in [
6138            vec![UpgradeInstruction::LoadModule { module: "x".into() }],
6139            vec![
6140                UpgradeInstruction::LoadModule { module: "x".into() },
6141                UpgradeInstruction::SoftPurge {
6142                    module: "x-old".into(),
6143                },
6144            ],
6145            vec![
6146                UpgradeInstruction::LoadModule { module: "x".into() },
6147                UpgradeInstruction::Purge {
6148                    module: "x-old".into(),
6149                },
6150            ],
6151            vec![UpgradeInstruction::Restart],
6152        ] {
6153            for instr in &instrs {
6154                assert!(
6155                    instr.declared_path().is_none(),
6156                    "non-StateChange variants must project None through declared_path — \
6157                     accessor divergence would let this within-entry ordering gate silently \
6158                     fire on a cleanup-only sequence far from any :state-change site"
6159                );
6160            }
6161            let e = entry("0.1.0", instrs);
6162            assert_eq!(
6163                e.validate(),
6164                Ok(()),
6165                "the state-change-before-cleanup gate must return Ok(()) on an entry whose \
6166                 instructions all project None through declared_path — the accessor's \
6167                 None arm the pattern-match's implicit fall-through previously carried"
6168            );
6169        }
6170    }
6171
6172    #[test]
6173    fn validate_restart_order_independent() {
6174        // Position-agnostic: `(:restart)` leading or trailing the
6175        // mixed sequence surfaces the same RestartNotExclusive shape.
6176        // Mirrors OTP appup's order-insensitive
6177        // `restart_emulator | restart_new_emulator` terminal rule —
6178        // the position of the restart instruction in the script is
6179        // irrelevant; what matters is the script *contains* it
6180        // alongside other instructions at all. The gate must not
6181        // gain a false positive by depending on instruction ordering.
6182        let leading = entry(
6183            "0.1.0",
6184            vec![
6185                UpgradeInstruction::Restart,
6186                UpgradeInstruction::LoadModule { module: "x".into() },
6187            ],
6188        );
6189        let trailing = entry(
6190            "0.1.0",
6191            vec![
6192                UpgradeInstruction::LoadModule { module: "x".into() },
6193                UpgradeInstruction::Restart,
6194            ],
6195        );
6196        let middle = entry(
6197            "0.1.0",
6198            vec![
6199                UpgradeInstruction::LoadModule { module: "a".into() },
6200                UpgradeInstruction::Restart,
6201                UpgradeInstruction::SoftPurge {
6202                    module: "a-old".into(),
6203                },
6204            ],
6205        );
6206        for e in [&leading, &trailing, &middle] {
6207            assert!(
6208                matches!(
6209                    e.validate().unwrap_err(),
6210                    UpgradeError::RestartNotExclusive {
6211                        restart_count: 1,
6212                        ..
6213                    }
6214                ),
6215                "mixed-with-:restart entry must surface RestartNotExclusive regardless of \
6216                 instruction order, got {:?}",
6217                e.validate()
6218            );
6219        }
6220    }
6221
6222    #[test]
6223    fn validate_restart_exclusive_fires_after_per_instr_shape() {
6224        // Order pin: a malformed `:module` value on a Module-bearing
6225        // instruction (an empty string) surfaces its narrower
6226        // kind-tagged `ModuleEmpty` diagnostic *before* the within-
6227        // entry restart-exclusivity gate fires. The per-instruction
6228        // shape pass walks the list inline before the restart-
6229        // exclusive check, so the narrower self-locating diagnostic
6230        // surfaces first — mirrors the empty-first cascade on every
6231        // peer DNS-1123 gate (`validate_module`,
6232        // `validate_membro_caixa`, `validate_placement_cluster`) and
6233        // the `*_invalid_fires_before_duplicate_check` arm-ordering
6234        // pins on every typed-graph axis. Without this pin a future
6235        // shortcut that runs the restart-exclusive check ahead of
6236        // per-instruction shape would surface a less-actionable
6237        // RestartNotExclusive over an instruction list that's also
6238        // malformed at the per-instruction layer.
6239        let e = entry(
6240            "0.1.0",
6241            vec![
6242                UpgradeInstruction::LoadModule {
6243                    module: String::new(),
6244                },
6245                UpgradeInstruction::Restart,
6246            ],
6247        );
6248        let err = e.validate().unwrap_err();
6249        assert_eq!(
6250            err,
6251            UpgradeError::ModuleEmpty {
6252                kind: crate::render::M2_UPGRADE_INSTRUCTION_KIND_LOAD_MODULE
6253            },
6254            "malformed instruction must surface its kind-tagged diagnostic before the \
6255             restart-exclusivity gate fires, got {err:?}"
6256        );
6257    }
6258
6259    fn behavior_with_state_change_callback() -> crate::BehaviorSpec {
6260        // Helper for the cross-slot composition gate's pass arm: a
6261        // BehaviorSpec carrying just the `:on-state-change` callback,
6262        // the runtime hook the per-version `(:state-change "…")`
6263        // instruction is delivered through during hot upgrade. Mirrors
6264        // the canonical authoring shape pinned in the module doc.
6265        crate::BehaviorSpec {
6266            on_state_change: Some(PathBuf::from("lib/migrations.lisp")),
6267            ..Default::default()
6268        }
6269    }
6270
6271    #[test]
6272    fn behavior_gate_rejects_state_change_without_any_behavior() {
6273        // `:upgrade-from` with a `(:state-change "lib/m.lisp")` and the
6274        // caixa carries no `:behavior` at all surfaces the missing-
6275        // callback diagnostic naming the offending entry's `:from` +
6276        // script. The "I added the upgrade path but never declared
6277        // `:behavior`" footgun: `:behavior` is optional at the typed
6278        // root, the typed `:upgrade-from` slot validates on its own
6279        // merits, and the operator's hot-upgrade dispatch reaches for
6280        // a callback that doesn't exist.
6281        let entries = vec![entry(
6282            "0.1.0",
6283            vec![
6284                UpgradeInstruction::LoadModule { module: "x".into() },
6285                UpgradeInstruction::StateChange {
6286                    script: PathBuf::from("lib/m.lisp"),
6287                },
6288            ],
6289        )];
6290        let err = validate_upgrade_from_against_behavior(&entries, None).unwrap_err();
6291        assert_eq!(
6292            err,
6293            UpgradeError::StateChangeWithoutOnStateChangeCallback {
6294                from: "0.1.0".into(),
6295                script: PathBuf::from("lib/m.lisp"),
6296            },
6297        );
6298    }
6299
6300    #[test]
6301    fn behavior_gate_rejects_state_change_when_on_state_change_is_none() {
6302        // `:behavior` declared with *other* callbacks set
6303        // (`:on-init`, `:on-terminate`, etc.) but `:on-state-change`
6304        // None still surfaces the missing-callback diagnostic — only
6305        // the `:on-state-change` axis matters for this gate. The
6306        // "I declared `:behavior` but missed the migration callback"
6307        // footgun: a caixa that registers its lifecycle hooks but
6308        // forgets the migration delivery path leaves the
6309        // `:state-change` instruction with no runtime hook to
6310        // dispatch through.
6311        let entries = vec![entry(
6312            "0.1.0",
6313            vec![
6314                UpgradeInstruction::LoadModule { module: "x".into() },
6315                UpgradeInstruction::StateChange {
6316                    script: PathBuf::from("lib/m.lisp"),
6317                },
6318            ],
6319        )];
6320        let b = crate::BehaviorSpec {
6321            on_init: Some(PathBuf::from("lib/init.lisp")),
6322            on_terminate: Some(PathBuf::from("lib/cleanup.lisp")),
6323            ..Default::default()
6324        };
6325        let err = validate_upgrade_from_against_behavior(&entries, Some(&b)).unwrap_err();
6326        assert_eq!(
6327            err,
6328            UpgradeError::StateChangeWithoutOnStateChangeCallback {
6329                from: "0.1.0".into(),
6330                script: PathBuf::from("lib/m.lisp"),
6331            },
6332            "only `:on-state-change` satisfies the composition; other callbacks must not mask \
6333             the missing migration hook"
6334        );
6335    }
6336
6337    #[test]
6338    fn behavior_gate_accepts_state_change_with_on_state_change_callback() {
6339        // The canonical composition shape: a per-version
6340        // `(:state-change "lib/m.lisp")` instruction paired with the
6341        // `:behavior :on-state-change "lib/migrations.lisp"` callback
6342        // it is delivered through at hot-upgrade time. Pins the gate's
6343        // pass arm — drift here = a future tighten that rejects the
6344        // canonical OTP-shape composition surfaces as a regression at
6345        // this positive-control pin.
6346        let entries = vec![entry(
6347            "0.1.0",
6348            vec![
6349                UpgradeInstruction::LoadModule { module: "x".into() },
6350                UpgradeInstruction::StateChange {
6351                    script: PathBuf::from("lib/m.lisp"),
6352                },
6353            ],
6354        )];
6355        let b = behavior_with_state_change_callback();
6356        validate_upgrade_from_against_behavior(&entries, Some(&b)).unwrap();
6357    }
6358
6359    #[test]
6360    fn behavior_gate_accepts_entries_without_any_state_change() {
6361        // Empty-set identity: entries carrying no `:state-change`
6362        // instruction at all (load + cleanup only — the metadata-only
6363        // upgrade shape the module doc names, "On any failure, the
6364        // current version stays load-bearing — a typed atomic
6365        // upgrade") leave the gate vacuous. The composition only
6366        // requires a callback when the per-version script exists; a
6367        // load + cleanup pair has no migration to deliver, so the
6368        // absence of `:on-state-change` is coherent.
6369        let entries = vec![entry(
6370            "0.1.0",
6371            vec![
6372                UpgradeInstruction::LoadModule { module: "x".into() },
6373                UpgradeInstruction::SoftPurge {
6374                    module: "x-old".into(),
6375                },
6376            ],
6377        )];
6378        validate_upgrade_from_against_behavior(&entries, None).unwrap();
6379    }
6380
6381    #[test]
6382    fn behavior_gate_accepts_restart_only_entry() {
6383        // The terminal-fallback `((:restart))` shape carries no
6384        // `:state-change` — the operator restarts the pod and the
6385        // new version comes up fresh against its initial state, no
6386        // migration. Pinned alongside the metadata-only positive
6387        // control above as the second empty-state-change shape.
6388        let entries = vec![entry("0.1.0", vec![UpgradeInstruction::Restart])];
6389        validate_upgrade_from_against_behavior(&entries, None).unwrap();
6390    }
6391
6392    #[test]
6393    fn behavior_gate_accepts_empty_entries_list() {
6394        // Empty `:upgrade-from` (a caixa with no declared upgrade
6395        // paths — the v0.1.0 caixa before any upgrade entries are
6396        // added) trivially passes the gate. Pinned so the gate
6397        // doesn't accidentally fire on a caixa that hasn't yet
6398        // declared any upgrades.
6399        let entries: Vec<UpgradeFromEntry> = vec![];
6400        validate_upgrade_from_against_behavior(&entries, None).unwrap();
6401    }
6402
6403    #[test]
6404    fn behavior_gate_reports_first_state_change_in_first_entry() {
6405        // First-collision determinism: with multiple `:state-change`
6406        // instructions across multiple entries, the gate reports the
6407        // *first* one encountered in declaration order — the entry's
6408        // declaration order first, then the within-entry instruction
6409        // order. Mirrors every peer first-collision diagnostic posture
6410        // on this module (`validate_state_change_ordering`,
6411        // `validate_purge_ordering`, the singularity gates), so a
6412        // future shortcut that walks the list in reverse or returns
6413        // the last collision surfaces as a regression here.
6414        let entries = vec![
6415            entry(
6416                "0.1.0",
6417                vec![
6418                    UpgradeInstruction::LoadModule { module: "x".into() },
6419                    UpgradeInstruction::StateChange {
6420                        script: PathBuf::from("lib/m1.lisp"),
6421                    },
6422                    UpgradeInstruction::StateChange {
6423                        script: PathBuf::from("lib/m2.lisp"),
6424                    },
6425                ],
6426            ),
6427            entry(
6428                "0.1.5",
6429                vec![
6430                    UpgradeInstruction::LoadModule { module: "x".into() },
6431                    UpgradeInstruction::StateChange {
6432                        script: PathBuf::from("lib/m3.lisp"),
6433                    },
6434                ],
6435            ),
6436        ];
6437        let err = validate_upgrade_from_against_behavior(&entries, None).unwrap_err();
6438        assert_eq!(
6439            err,
6440            UpgradeError::StateChangeWithoutOnStateChangeCallback {
6441                from: "0.1.0".into(),
6442                script: PathBuf::from("lib/m1.lisp"),
6443            },
6444            "the first :state-change in the first entry must surface, not later collisions"
6445        );
6446    }
6447
6448    #[test]
6449    fn behavior_gate_reports_second_entry_when_first_has_no_state_change() {
6450        // Cross-entry pin: a first entry with no `:state-change` (just
6451        // a load + cleanup) leaves the gate's per-entry walk continuing
6452        // to the second entry, where the offending instruction lives.
6453        // The diagnostic names the *second* entry's `:from` because
6454        // that's where the missing-callback shape is exposed — pinned
6455        // so a shortcut that bails on the first entry without a
6456        // `:state-change` (rather than continuing) doesn't mask the
6457        // defect in a later entry.
6458        let entries = vec![
6459            entry(
6460                "0.1.0",
6461                vec![
6462                    UpgradeInstruction::LoadModule { module: "x".into() },
6463                    UpgradeInstruction::SoftPurge {
6464                        module: "x-old".into(),
6465                    },
6466                ],
6467            ),
6468            entry(
6469                "0.1.5",
6470                vec![
6471                    UpgradeInstruction::LoadModule { module: "x".into() },
6472                    UpgradeInstruction::StateChange {
6473                        script: PathBuf::from("lib/m.lisp"),
6474                    },
6475                ],
6476            ),
6477        ];
6478        let err = validate_upgrade_from_against_behavior(&entries, None).unwrap_err();
6479        assert_eq!(
6480            err,
6481            UpgradeError::StateChangeWithoutOnStateChangeCallback {
6482                from: "0.1.5".into(),
6483                script: PathBuf::from("lib/m.lisp"),
6484            },
6485            "the offending entry's `:from` must surface even when an earlier entry carries no \
6486             :state-change"
6487        );
6488    }
6489
6490    #[test]
6491    fn behavior_gate_does_not_fire_when_callback_is_declared_across_many_entries() {
6492        // Positive control: a multi-entry `:upgrade-from` (chained
6493        // upgrades from v0.1.0 *and* v0.1.5) where every entry carries
6494        // a `:state-change` passes when the callback is declared once
6495        // at the caixa root. The callback is a single per-caixa
6496        // runtime hook; one declaration covers every entry's
6497        // `:state-change`, mirroring OTP's
6498        // `release_handler:install_release/1` which dispatches every
6499        // appup's `code_change` instruction through the single
6500        // `gen_server:code_change/3` callback registered on the
6501        // module.
6502        let entries = vec![
6503            entry(
6504                "0.1.0",
6505                vec![
6506                    UpgradeInstruction::LoadModule { module: "x".into() },
6507                    UpgradeInstruction::StateChange {
6508                        script: PathBuf::from("lib/m1.lisp"),
6509                    },
6510                ],
6511            ),
6512            entry(
6513                "0.1.5",
6514                vec![
6515                    UpgradeInstruction::LoadModule { module: "x".into() },
6516                    UpgradeInstruction::StateChange {
6517                        script: PathBuf::from("lib/m2.lisp"),
6518                    },
6519                ],
6520            ),
6521        ];
6522        let b = behavior_with_state_change_callback();
6523        validate_upgrade_from_against_behavior(&entries, Some(&b)).unwrap();
6524    }
6525
6526    #[test]
6527    fn behavior_gate_accepts_load_and_cleanup_only_when_behavior_carries_on_state_change() {
6528        // Symmetry pin: the gate's pass arm doesn't depend on the
6529        // entry actually carrying a `:state-change` — if no
6530        // `:state-change` is declared, the gate is vacuous regardless
6531        // of the callback (an `:on-state-change` declared without a
6532        // matching per-version script is fine, the callback is the
6533        // runtime default for any *future* migration the author hasn't
6534        // yet added). Pins that a caixa author can declare the
6535        // callback ahead of any migration without the gate
6536        // complaining.
6537        let entries = vec![entry(
6538            "0.1.0",
6539            vec![
6540                UpgradeInstruction::LoadModule { module: "x".into() },
6541                UpgradeInstruction::SoftPurge {
6542                    module: "x-old".into(),
6543                },
6544            ],
6545        )];
6546        let b = behavior_with_state_change_callback();
6547        validate_upgrade_from_against_behavior(&entries, Some(&b)).unwrap();
6548    }
6549
6550    #[test]
6551    fn validate_upgrade_from_against_behavior_projects_scripts_through_declared_path_accessor() {
6552        // Composition pin: [`validate_upgrade_from_against_behavior`]'s
6553        // per-instruction `StateChange`-arm script-path projection must
6554        // route through the sibling lifted
6555        // [`UpgradeInstruction::declared_path`] `Option<&PathBuf>`
6556        // accessor, not the raw
6557        // `if let UpgradeInstruction::StateChange { script } = instr`
6558        // open-coded pattern-match the cross-slot gate previously
6559        // carried at caixa-core/src/upgrade.rs:1365.
6560        //
6561        // Structurally: the gate's projection accept-set is the union
6562        // of every [`UpgradeInstruction`] variant for which
6563        // `declared_path().is_some()` — today exactly
6564        // [`UpgradeInstruction::StateChange`] per the sibling
6565        // `declared_path_only_for_state_change` pin, so a
6566        // `:state-change`-carrying entry without an `:on-state-change`
6567        // callback trips `StateChangeWithoutOnStateChangeCallback` and
6568        // a non-`StateChange` entry (load-only / cleanup-only /
6569        // restart-only / empty-`:instructions`) leaves the per-entry
6570        // walk continuing past every non-projecting instruction
6571        // byte-identical to the pattern-match shape.
6572        //
6573        // Byte-equal today (`declared_path` returns `Some(script)` iff
6574        // `StateChange`, byte-for-byte from the variant's own storage);
6575        // the pin catches any future accessor extension that promotes
6576        // an additional variant onto the `PathBuf`-carrying axis — the
6577        // gate then fires on scripts from that variant too, and the
6578        // cross-slot composition discipline the sibling per-
6579        // `UpgradeInstruction` consumers share on the `PathBuf`-
6580        // carrying axis extends to the promoted variant by
6581        // construction.
6582        //
6583        // Peer of the sibling four per-`UpgradeInstruction` consumers
6584        // ([`UpgradeInstruction::validate`]'s per-`StateChange`
6585        // sandbox-path fan-out, the layout-side per-`StateChange`
6586        // script-existence fan-out at
6587        // `caixa-core/src/layout.rs:1058`, the within-entry
6588        // [`UpgradeFromEntry::validate_state_change_singularity`]
6589        // (2bf3ce5) per-`StateChange` script-projection fan-out, the
6590        // peer [`UpgradeInstruction::declared_module`] `String`-axis
6591        // per-variant unifier) — the fourth (and last) per-
6592        // `UpgradeInstruction`-consumer of the `PathBuf`-carrying axis
6593        // to now route through the accessor. Same shape as the
6594        // sibling
6595        // `validate_state_change_singularity_projects_scripts_through_declared_path_accessor`
6596        // pin extended onto the cross-slot composition gate.
6597        //
6598        // Three-arm projective coverage:
6599        //   (a) `StateChange` scripts project through `declared_path()`
6600        //       byte-equal to the raw `script.clone()` field access
6601        //       the diagnostic previously carried;
6602        //   (b) a `:state-change`-carrying entry with `behavior: None`
6603        //       trips the gate with `StateChangeWithoutOnStateChangeCallback`
6604        //       carrying the offending script verbatim;
6605        //   (c) a non-`StateChange`-only entry (`LoadModule` /
6606        //       `SoftPurge` / `Purge` / `Restart`) leaves the gate
6607        //       vacuous with `Ok(())` — the `declared_path().is_none()`
6608        //       arm's fall-through pins.
6609        //
6610        // Fail-before-pass-after verified structurally: swapping the
6611        // production
6612        //   `if let Some(script) = instr.declared_path() { … }`
6613        // back to
6614        //   `if let UpgradeInstruction::StateChange { script } = instr { … }`
6615        // keeps arms (a)-(c) passing but silently detaches the gate
6616        // from the accessor's typed dispatch — any future
6617        // `declared_path` extension (promotion of an additional
6618        // variant onto the axis, an operator-side pre-resolved-path
6619        // cache the accessor materializes) would then silently
6620        // disagree between this cross-slot gate's raw pattern-match
6621        // and the peer four sibling consumers that route through the
6622        // accessor.
6623
6624        // (a) StateChange projection byte-equal via declared_path.
6625        let sc = UpgradeInstruction::StateChange {
6626            script: PathBuf::from("lib/m.lisp"),
6627        };
6628        assert_eq!(
6629            sc.declared_path().cloned(),
6630            Some(PathBuf::from("lib/m.lisp")),
6631            "declared_path() must project the StateChange :script byte-equal to the raw \
6632             field access — accessor divergence would silently detach this cross-slot \
6633             composition gate from the projection every peer per-`UpgradeInstruction` \
6634             consumer routes through"
6635        );
6636
6637        // (b) StateChange-carrying entry with behavior: None trips gate.
6638        let entries = vec![entry(
6639            "0.1.0",
6640            vec![
6641                UpgradeInstruction::LoadModule { module: "x".into() },
6642                UpgradeInstruction::StateChange {
6643                    script: PathBuf::from("lib/m.lisp"),
6644                },
6645            ],
6646        )];
6647        assert_eq!(
6648            validate_upgrade_from_against_behavior(&entries, None),
6649            Err(UpgradeError::StateChangeWithoutOnStateChangeCallback {
6650                from: "0.1.0".into(),
6651                script: PathBuf::from("lib/m.lisp"),
6652            }),
6653            "a :state-change-carrying entry with behavior: None must trip the gate through \
6654             the declared_path accessor's Some(script) arm — carrying the offending script \
6655             verbatim byte-identical to the pattern-match shape"
6656        );
6657
6658        // (c) Non-StateChange-only inputs leave the gate vacuous.
6659        for instrs in [
6660            vec![UpgradeInstruction::LoadModule { module: "x".into() }],
6661            vec![
6662                UpgradeInstruction::LoadModule { module: "x".into() },
6663                UpgradeInstruction::SoftPurge {
6664                    module: "x-old".into(),
6665                },
6666            ],
6667            vec![
6668                UpgradeInstruction::LoadModule { module: "x".into() },
6669                UpgradeInstruction::Purge {
6670                    module: "x-old".into(),
6671                },
6672            ],
6673            vec![UpgradeInstruction::Restart],
6674        ] {
6675            for instr in &instrs {
6676                assert!(
6677                    instr.declared_path().is_none(),
6678                    "non-StateChange variants must project None through declared_path — \
6679                     accessor divergence would let this cross-slot composition gate silently \
6680                     fire on a module reference far from any :state-change site"
6681                );
6682            }
6683            let entries = vec![entry("0.1.0", instrs)];
6684            assert_eq!(
6685                validate_upgrade_from_against_behavior(&entries, None),
6686                Ok(()),
6687                "the cross-slot composition gate must return Ok(()) on an entry whose \
6688                 instructions all project None through declared_path — the accessor's \
6689                 None arm the pattern-match's implicit fall-through previously carried"
6690            );
6691        }
6692    }
6693
6694    #[test]
6695    fn validate_restart_exclusive_threads_through_validate_upgrade_from() {
6696        // Wiring pin: the within-entry restart-exclusivity gate fires
6697        // through [`validate_upgrade_from`] (which delegates to
6698        // [`UpgradeFromEntry::validate`] per entry) before the cross-
6699        // entry duplicate-`:from` gate would have a chance to run on
6700        // the malformed entry. Pinned here so a future refactor that
6701        // walks the cross-entry gate first doesn't accidentally
6702        // surface a DuplicateFrom over an entry that's also malformed
6703        // at the within-entry restart-exclusivity layer.
6704        let entries = vec![
6705            entry(
6706                "0.1.0",
6707                vec![
6708                    UpgradeInstruction::LoadModule { module: "x".into() },
6709                    UpgradeInstruction::Restart,
6710                ],
6711            ),
6712            entry("0.1.0", vec![UpgradeInstruction::Restart]),
6713        ];
6714        let err = validate_upgrade_from(&entries).unwrap_err();
6715        assert!(
6716            matches!(
6717                err,
6718                UpgradeError::RestartNotExclusive {
6719                    restart_count: 1,
6720                    ..
6721                }
6722            ),
6723            "within-entry restart-exclusivity diagnostic must surface before the cross-entry \
6724             duplicate-`:from` gate fires, got {err:?}"
6725        );
6726    }
6727
6728    // ── drift-detection: serde-derive-to-M2_UPGRADE_FROM_KEY_* identity ──
6729
6730    #[test]
6731    fn upgrade_from_entry_serde_keys_match_lifted_m2_upgrade_from_key_consts() {
6732        // Load-bearing invariant: the two `M2_UPGRADE_FROM_KEY_*` consts
6733        // (`M2_UPGRADE_FROM_KEY_FROM` / `M2_UPGRADE_FROM_KEY_INSTRUCTIONS`)
6734        // name the exact camelCase JSON keys the `#[serde(rename_all =
6735        // "camelCase")]` attribute on `UpgradeFromEntry` emits, and every
6736        // test-side probe across the caixa-core / caixa-flux renderer
6737        // test fixtures navigates into each element of the rendered
6738        // `:upgrade-from` overlay sequence by consulting one of these two
6739        // `&'static str`s. Serialize a fully-populated UpgradeFromEntry
6740        // and pin that each canonical byte-sequence appears verbatim in
6741        // the JSON — a future accidental `rename_all = "snake_case"` /
6742        // `"kebab-case"` / verbatim-field-name flip at the derive
6743        // attribute (any of which would silently break every test-side
6744        // probe that reaches for one of the two consts) surfaces here as
6745        // a build-time test failure at `upgrade.rs`, not as an apply-time
6746        // `.get(<stale-canonical-const>)` returning `None` far from the
6747        // derive-attr drift's commit. Same discipline the sibling
6748        // `limits_spec_serde_keys_match_lifted_m2_limits_key_consts`
6749        // (d8b8b4f) and
6750        // `behavior_spec_serde_keys_match_lifted_m2_behavior_key_consts`
6751        // (21fe462) pins established on the peer `:limits` / `:behavior`
6752        // sub-slot axes: one canonical byte-string per typed sub-key
6753        // axis, pinned to the load-bearing serde derivation at the type
6754        // itself.
6755        let e = UpgradeFromEntry {
6756            from: "0.1.0".into(),
6757            instructions: vec![UpgradeInstruction::LoadModule {
6758                module: "hello-rio".into(),
6759            }],
6760        };
6761        let json = serde_json::to_string(&e).unwrap();
6762        for key in [
6763            crate::render::M2_UPGRADE_FROM_KEY_FROM,
6764            crate::render::M2_UPGRADE_FROM_KEY_INSTRUCTIONS,
6765        ] {
6766            let quoted = format!("\"{key}\"");
6767            assert!(
6768                json.contains(&quoted),
6769                "serialized UpgradeFromEntry must carry the lifted \
6770                 M2_UPGRADE_FROM_KEY_* byte-sequence {quoted} verbatim in \
6771                 the JSON emission (got: {json})",
6772            );
6773        }
6774    }
6775
6776    #[test]
6777    fn m2_upgrade_from_key_consts_are_pairwise_distinct() {
6778        // Cross-axis drift-detection pin: a future collapse of the two
6779        // canonical sub-key byte-strings onto the same value (e.g. an
6780        // accidental copy-paste flip of `M2_UPGRADE_FROM_KEY_INSTRUCTIONS`
6781        // to also read `"from"`) would silently reroute every test-side
6782        // probe on one axis onto the sibling axis's per-entry field and
6783        // pass every propagation-probe test that expected only the stale
6784        // axis's value. Peer of `m2_limits_key_consts_are_pairwise_distinct`
6785        // (d8b8b4f) and `m2_behavior_key_consts_are_pairwise_distinct`
6786        // (21fe462) on the sibling `:limits` / `:behavior` sub-slot axes.
6787        let all = [
6788            crate::render::M2_UPGRADE_FROM_KEY_FROM,
6789            crate::render::M2_UPGRADE_FROM_KEY_INSTRUCTIONS,
6790        ];
6791        for (i, a) in all.iter().enumerate() {
6792            for b in all.iter().skip(i + 1) {
6793                assert_ne!(
6794                    a, b,
6795                    "M2_UPGRADE_FROM_KEY_* consts must be pairwise-distinct \
6796                     canonical byte-sequences — got `{a}` == `{b}`",
6797                );
6798            }
6799        }
6800    }
6801
6802    #[test]
6803    fn upgrade_instruction_serde_tag_key_matches_lifted_m2_upgrade_instruction_key_kind_const() {
6804        // Load-bearing invariant on the M2 `:upgrade-from :instructions`
6805        // per-entry OTP-appup [`UpgradeInstruction`] enum's internally-
6806        // tagged variant-discriminator key axis: the
6807        // `M2_UPGRADE_INSTRUCTION_KEY_KIND` const names the exact tag-slot
6808        // JSON key the `#[serde(tag = "kind", rename_all = "kebab-case")]`
6809        // attribute on [`UpgradeInstruction`] emits, and every downstream
6810        // consumer that navigates the serialized instruction blob to
6811        // route by variant (the caixa-core reflection-vs-serde round-trip
6812        // check in `dispatcher_registration.rs` that probes
6813        // `v.get("kind")` against every variant's expected kebab-case
6814        // tag, the future M4 admission-webhook path, any wasm-operator
6815        // dispatch step consuming the serialized instruction blob) reads
6816        // through the same `&'static str`. Serialize every variant and
6817        // pin that the const's byte-sequence appears verbatim as the
6818        // tag-slot JSON key with the expected kebab-case value — a
6819        // future accidental `tag = "type"` / `tag = "op"` /
6820        // `tag = "instruction"` rebrand at the derive attribute (any of
6821        // which would silently break every consumer probe reaching for
6822        // the stale-tag-key const) surfaces here as a build-time test
6823        // failure at `upgrade.rs`, not as an apply-time
6824        // `.get(<stale-tag-key>)` returning `None` far from the derive-
6825        // attr drift's commit.
6826        //
6827        // Same "one canonical byte-string per typed axis" discipline the
6828        // sibling `upgrade_from_entry_serde_keys_match_lifted_m2_upgrade_from_key_consts`
6829        // pin (36ffe65) established on the peer `:upgrade-from` per-entry
6830        // outer-container axis — this pin extends the discipline one
6831        // altitude deeper onto the per-instruction *tag* axis inside
6832        // each element of the `:instructions` list, completing the
6833        // typed coverage of the `:upgrade-from :instructions` dual
6834        // (key = "kind" + five variant-value tags): the five
6835        // `M2_UPGRADE_INSTRUCTION_KIND_*` consts (56120ef) pin the
6836        // per-variant kebab-case *values*; this pin pins the tag *key*
6837        // above them.
6838        let samples: [(UpgradeInstruction, &'static str); 5] = [
6839            (
6840                UpgradeInstruction::LoadModule {
6841                    module: "hello-rio".into(),
6842                },
6843                crate::render::M2_UPGRADE_INSTRUCTION_KIND_LOAD_MODULE.trim_start_matches(':'),
6844            ),
6845            (
6846                UpgradeInstruction::StateChange {
6847                    script: PathBuf::from("lib/migrations/v01-to-v02.lisp"),
6848                },
6849                crate::render::M2_UPGRADE_INSTRUCTION_KIND_STATE_CHANGE.trim_start_matches(':'),
6850            ),
6851            (
6852                UpgradeInstruction::SoftPurge {
6853                    module: "hello-rio-old".into(),
6854                },
6855                crate::render::M2_UPGRADE_INSTRUCTION_KIND_SOFT_PURGE.trim_start_matches(':'),
6856            ),
6857            (
6858                UpgradeInstruction::Purge {
6859                    module: "hello-rio-old".into(),
6860                },
6861                crate::render::M2_UPGRADE_INSTRUCTION_KIND_PURGE.trim_start_matches(':'),
6862            ),
6863            (
6864                UpgradeInstruction::Restart,
6865                crate::render::M2_UPGRADE_INSTRUCTION_KIND_RESTART.trim_start_matches(':'),
6866            ),
6867        ];
6868        for (sample, expected_value) in &samples {
6869            let v: serde_json::Value = serde_json::to_value(sample).unwrap();
6870            let got = v
6871                .get(crate::render::M2_UPGRADE_INSTRUCTION_KEY_KIND)
6872                .and_then(|k| k.as_str());
6873            assert_eq!(
6874                got,
6875                Some(*expected_value),
6876                "serialized {sample:?} must carry the lifted \
6877                 M2_UPGRADE_INSTRUCTION_KEY_KIND byte-sequence \
6878                 ({:?}) verbatim as the tag-slot JSON key, holding the \
6879                 expected kebab-case value {expected_value:?} (got: {v})",
6880                crate::render::M2_UPGRADE_INSTRUCTION_KEY_KIND,
6881            );
6882        }
6883    }
6884
6885    #[test]
6886    fn m2_upgrade_instruction_key_kind_const_is_lower_camel_case_shape() {
6887        // Shape-pin: the `M2_UPGRADE_INSTRUCTION_KEY_KIND` const must be
6888        // a lowerCamelCase byte-sequence (non-empty, ASCII-lowercase
6889        // leader, ASCII-alphanumeric only — no `snake_case` underscores,
6890        // no `kebab-case` hyphens, no `PascalCase` leading capital, no
6891        // whitespace / colons / dots) — the canonical shape a serde
6892        // internally-tagged discriminator key takes across every peer
6893        // enum in this crate. A future flip to a non-camelCase byte at
6894        // the const surfaces here at build time. Peer of
6895        // `m2_upgrade_from_key_consts_are_lower_camel_case_shape` on the
6896        // sibling per-entry outer-container axis.
6897        let key = crate::render::M2_UPGRADE_INSTRUCTION_KEY_KIND;
6898        assert!(
6899            !key.is_empty(),
6900            "M2_UPGRADE_INSTRUCTION_KEY_KIND must be non-empty (got {key:?})"
6901        );
6902        let first = key.chars().next().unwrap();
6903        assert!(
6904            first.is_ascii_lowercase(),
6905            "M2_UPGRADE_INSTRUCTION_KEY_KIND must lead with an ASCII-lowercase \
6906             byte (got {key:?}, leads with {first:?})",
6907        );
6908        assert!(
6909            key.chars().all(|c| c.is_ascii_alphanumeric()),
6910            "M2_UPGRADE_INSTRUCTION_KEY_KIND must be ASCII-alphanumeric only \
6911             — no `_` / `-` / `:` / `.` / whitespace (got {key:?})",
6912        );
6913    }
6914
6915    #[test]
6916    fn m2_upgrade_instruction_key_kind_const_disjoint_from_variant_data_keys() {
6917        // Cross-axis drift-detection pin: the tag-slot key
6918        // `M2_UPGRADE_INSTRUCTION_KEY_KIND` (`"kind"`) must be
6919        // disjoint from every per-variant data-field key the
6920        // internally-tagged serialization also emits (`"module"` for
6921        // LoadModule/SoftPurge/Purge, `"script"` for StateChange). A
6922        // future accidental rebrand that collapses `tag = "kind"` onto
6923        // one of the data-field names (e.g. `tag = "module"`) would
6924        // silently corrupt every serialized LoadModule blob (the
6925        // module string and the variant tag would collide on the same
6926        // JSON key) and every consumer probe would either misread the
6927        // tag or fail to distinguish variants. Pin the disjointness at
6928        // build time. Same cross-axis discipline the sibling
6929        // `m2_upgrade_from_key_consts_are_pairwise_distinct` pin
6930        // (36ffe65) established on the outer container's own
6931        // `from`/`instructions` pair.
6932        let key = crate::render::M2_UPGRADE_INSTRUCTION_KEY_KIND;
6933        // Enumerate every per-variant data-field key across all five
6934        // variants of [`UpgradeInstruction`], routing through the two
6935        // lifted `M2_UPGRADE_INSTRUCTION_FIELD_KEY_*` byte-string consts
6936        // that name the same per-variant data-field JSON keys the
6937        // `variant_fields` reflection in
6938        // `caixa-core/tests/dispatcher_registration.rs` surfaces. A future
6939        // per-variant struct-field rebrand (`module` → `component`,
6940        // `script` → `path`) lands as an edit to exactly one const and
6941        // reaches this disjointness pin by construction — the two axes
6942        // (tag-slot key on one side, per-variant data-field keys on the
6943        // other) share one source of truth per axis.
6944        for data_field in [
6945            crate::render::M2_UPGRADE_INSTRUCTION_FIELD_KEY_MODULE,
6946            crate::render::M2_UPGRADE_INSTRUCTION_FIELD_KEY_SCRIPT,
6947        ] {
6948            assert_ne!(
6949                key, data_field,
6950                "M2_UPGRADE_INSTRUCTION_KEY_KIND (the serde `tag` slot) \
6951                 must be disjoint from every UpgradeInstruction per-variant \
6952                 data-field key — got tag-key {key:?} colliding with \
6953                 data-field {data_field:?}, which would silently corrupt \
6954                 the internally-tagged serialization",
6955            );
6956        }
6957    }
6958
6959    #[test]
6960    fn upgrade_instruction_variant_data_field_keys_match_lifted_field_key_consts() {
6961        // Load-bearing invariant on the M2 `:upgrade-from :instructions`
6962        // per-entry OTP-appup [`UpgradeInstruction`] enum's per-variant
6963        // data-field JSON key axis: the two
6964        // `M2_UPGRADE_INSTRUCTION_FIELD_KEY_*` consts (`_MODULE`,
6965        // `_SCRIPT`) name the exact per-variant field JSON keys the
6966        // `#[serde(tag = "kind", rename_all = "kebab-case")]` attribute on
6967        // [`UpgradeInstruction`] emits alongside the tag-slot key from the
6968        // sibling [`crate::render::M2_UPGRADE_INSTRUCTION_KEY_KIND`]
6969        // const — the `module: String` struct-field on
6970        // `LoadModule`/`SoftPurge`/`Purge` and the `script: PathBuf`
6971        // struct-field on `StateChange` are promoted to sibling JSON keys
6972        // at the same nesting level as the tag by the internally-tagged
6973        // serialization, and every downstream consumer that navigates the
6974        // serialized instruction blob to reach the payload (the caixa-core
6975        // reflection round-trip in `dispatcher_registration.rs` that
6976        // consults `variant_fields`, the sibling disjointness pin below,
6977        // any future wasm-operator upgrade-dispatch step consuming the
6978        // serialized instruction blob to route the per-module load /
6979        // soft-purge / purge action or the per-script state-change action)
6980        // reads through the same `&'static str`. Serialize one Module-
6981        // bearing variant and one Script-bearing variant, then pin that
6982        // each const's byte-sequence appears verbatim in the JSON emission
6983        // — a future accidental struct-field rebrand (`module: String` →
6984        // `component: String`, `script: PathBuf` → `path: PathBuf`) at
6985        // either variant surfaces here as a build-time test failure at
6986        // `upgrade.rs`, not as an apply-time `.get(<stale-field-key>)`
6987        // returning `None` far from the field-name drift's commit.
6988        //
6989        // Same "one canonical byte-string per typed axis" discipline the
6990        // sibling `upgrade_instruction_serde_tag_key_matches_lifted_m2_upgrade_instruction_key_kind_const`
6991        // pin established on the peer tag-slot key axis on the same
6992        // enum — this pin extends the discipline onto the per-variant
6993        // data-field key axis, completing the `:upgrade-from :instructions`
6994        // variant-JSON dual (tag key + tag values + per-variant field keys)
6995        // fully into caixa-core.
6996        let module_sample = UpgradeInstruction::LoadModule {
6997            module: "hello-rio".into(),
6998        };
6999        let v: serde_json::Value = serde_json::to_value(&module_sample).unwrap();
7000        assert_eq!(
7001            v.get(crate::render::M2_UPGRADE_INSTRUCTION_FIELD_KEY_MODULE)
7002                .and_then(|k| k.as_str()),
7003            Some("hello-rio"),
7004            "serialized {module_sample:?} must carry the lifted \
7005             M2_UPGRADE_INSTRUCTION_FIELD_KEY_MODULE byte-sequence \
7006             ({:?}) verbatim as the data-field JSON key holding the \
7007             module string (got: {v})",
7008            crate::render::M2_UPGRADE_INSTRUCTION_FIELD_KEY_MODULE,
7009        );
7010
7011        let script_sample = UpgradeInstruction::StateChange {
7012            script: PathBuf::from("lib/migrations/v01-to-v02.lisp"),
7013        };
7014        let v: serde_json::Value = serde_json::to_value(&script_sample).unwrap();
7015        assert_eq!(
7016            v.get(crate::render::M2_UPGRADE_INSTRUCTION_FIELD_KEY_SCRIPT)
7017                .and_then(|k| k.as_str()),
7018            Some("lib/migrations/v01-to-v02.lisp"),
7019            "serialized {script_sample:?} must carry the lifted \
7020             M2_UPGRADE_INSTRUCTION_FIELD_KEY_SCRIPT byte-sequence \
7021             ({:?}) verbatim as the data-field JSON key holding the \
7022             script path (got: {v})",
7023            crate::render::M2_UPGRADE_INSTRUCTION_FIELD_KEY_SCRIPT,
7024        );
7025    }
7026
7027    #[test]
7028    fn m2_upgrade_instruction_field_key_consts_are_lower_camel_case_shape() {
7029        // Shape-pin: every `M2_UPGRADE_INSTRUCTION_FIELD_KEY_*` const must
7030        // be a lowerCamelCase byte-sequence (non-empty, ASCII-lowercase
7031        // leader, ASCII-alphanumeric only — no `snake_case` underscores,
7032        // no `kebab-case` hyphens, no `PascalCase` leading capital, no
7033        // whitespace / colons / dots) — the canonical shape a Rust
7034        // struct-field name promoted to a JSON key by serde takes on this
7035        // internally-tagged variant surface, matching the sibling
7036        // [`crate::render::M2_UPGRADE_INSTRUCTION_KEY_KIND`] tag-slot key
7037        // shape. A future flip to a non-camelCase byte at either const
7038        // (an accidental `rename_all` regime interleave, or a struct-
7039        // field flip like `module` → `module_name`) surfaces here at
7040        // build time. Peer of
7041        // `m2_upgrade_instruction_key_kind_const_is_lower_camel_case_shape`
7042        // and `m2_upgrade_from_key_consts_are_lower_camel_case_shape` on
7043        // the sibling wire-key axes.
7044        for key in [
7045            crate::render::M2_UPGRADE_INSTRUCTION_FIELD_KEY_MODULE,
7046            crate::render::M2_UPGRADE_INSTRUCTION_FIELD_KEY_SCRIPT,
7047        ] {
7048            assert!(
7049                !key.is_empty(),
7050                "M2_UPGRADE_INSTRUCTION_FIELD_KEY_* must be non-empty (got {key:?})"
7051            );
7052            let first = key.chars().next().unwrap();
7053            assert!(
7054                first.is_ascii_lowercase(),
7055                "M2_UPGRADE_INSTRUCTION_FIELD_KEY_* must lead with an ASCII-lowercase \
7056                 byte (got {key:?}, leads with {first:?})",
7057            );
7058            assert!(
7059                key.chars().all(|c| c.is_ascii_alphanumeric()),
7060                "M2_UPGRADE_INSTRUCTION_FIELD_KEY_* must be ASCII-alphanumeric only \
7061                 — no `_` / `-` / `:` / `.` / whitespace (got {key:?})",
7062            );
7063        }
7064    }
7065
7066    #[test]
7067    fn m2_upgrade_instruction_field_key_consts_are_pairwise_distinct() {
7068        // Cross-axis drift-detection pin: a future collapse of the two
7069        // canonical per-variant data-field byte-strings onto the same
7070        // value (e.g. an accidental copy-paste flip of
7071        // `M2_UPGRADE_INSTRUCTION_FIELD_KEY_SCRIPT` to also read
7072        // `"module"`) would silently reroute every test-side probe on one
7073        // variant's payload onto the sibling variant's payload and pass
7074        // every propagation-probe test that expected only the stale
7075        // axis's value. Peer of `m2_upgrade_from_key_consts_are_pairwise_distinct`
7076        // on the sibling per-entry outer-container axis, and of
7077        // `m2_upgrade_instruction_key_kind_const_disjoint_from_variant_data_keys`
7078        // on the sibling tag-slot key ↔ per-variant data-field key axis.
7079        let all = [
7080            crate::render::M2_UPGRADE_INSTRUCTION_FIELD_KEY_MODULE,
7081            crate::render::M2_UPGRADE_INSTRUCTION_FIELD_KEY_SCRIPT,
7082        ];
7083        for (i, a) in all.iter().enumerate() {
7084            for b in all.iter().skip(i + 1) {
7085                assert_ne!(
7086                    a, b,
7087                    "M2_UPGRADE_INSTRUCTION_FIELD_KEY_* consts must be pairwise-distinct \
7088                     canonical byte-sequences — got `{a}` == `{b}`",
7089                );
7090            }
7091        }
7092    }
7093
7094    #[test]
7095    fn m2_upgrade_from_key_consts_are_lower_camel_case_shape() {
7096        // Shape-pin: every `M2_UPGRADE_FROM_KEY_*` const must be a
7097        // lowerCamelCase byte-sequence (no `snake_case` underscores, no
7098        // `kebab-case` hyphens, no `PascalCase` leading capital, no
7099        // whitespace / colons / dots) — the canonical shape the
7100        // `#[serde(rename_all = "camelCase")]` derive produces on
7101        // `UpgradeFromEntry`. A future flip to a non-camelCase attribute
7102        // at the derive surfaces both here (this test fails on the
7103        // stale-constant shape) and at
7104        // `upgrade_from_entry_serde_keys_match_lifted_m2_upgrade_from_key_consts`
7105        // (that test fails on the mismatch between const and derive).
7106        // Peer of `m2_limits_key_consts_are_lower_camel_case_shape`
7107        // (d8b8b4f) and `m2_behavior_key_consts_are_lower_camel_case_shape`
7108        // (21fe462) on the sibling `:limits` / `:behavior` sub-slot axes.
7109        for key in [
7110            crate::render::M2_UPGRADE_FROM_KEY_FROM,
7111            crate::render::M2_UPGRADE_FROM_KEY_INSTRUCTIONS,
7112        ] {
7113            assert!(
7114                !key.is_empty(),
7115                "M2_UPGRADE_FROM_KEY_* must be non-empty (got {key:?})"
7116            );
7117            let first = key.chars().next().unwrap();
7118            assert!(
7119                first.is_ascii_lowercase(),
7120                "M2_UPGRADE_FROM_KEY_* must lead with an ASCII-lowercase \
7121                 byte (got {key:?}, leads with {first:?})",
7122            );
7123            assert!(
7124                key.chars().all(|c| c.is_ascii_alphanumeric()),
7125                "M2_UPGRADE_FROM_KEY_* must be ASCII-alphanumeric only \
7126                 — no `_` / `-` / `:` / `.` / whitespace (got {key:?})",
7127            );
7128        }
7129    }
7130
7131    #[test]
7132    fn m2_upgrade_instruction_kind_consts_pin_canonical_kebab_case_labels() {
7133        // Scalar-value pin on the M2 `:upgrade-from :instructions` per-entry
7134        // OTP-appup variant-tag axis: the five canonical author-facing
7135        // kebab-case labels (`:load-module` / `:state-change` /
7136        // `:soft-purge` / `:purge` / `:restart`) the substrate's
7137        // per-variant [`UpgradeInstruction::lisp_form`] dispatch reads
7138        // from and every downstream consumer probes for verbatim. Same
7139        // scalar-value discipline the peer
7140        // `contrato_author_key_consts_pin_canonical_kebab_case_labels`
7141        // (f50c875), `m3_top_level_author_key_consts_pin_canonical_kebab_case_labels`
7142        // (882f498), `m2_top_level_author_key_consts_pin_canonical_kebab_case_labels`
7143        // (f49c8b0), and `supervisor_top_level_author_key_consts_pin_canonical_kebab_case_labels`
7144        // (be40492) established for the sibling M2 / M3 / Supervisor
7145        // top-level and sub-slot author-facing-label axes. Fail-before-
7146        // pass-after locally verified by mutating
7147        // `M2_UPGRADE_INSTRUCTION_KIND_LOAD_MODULE` to `":load"` — this
7148        // pin fires as expected; restoring passes.
7149        //
7150        // A future OTP-lineage per-variant rebrand (e.g.
7151        // `:load-module` → `:load` matching Erlang's abbreviated
7152        // `code:load_module` name, `:state-change` → `:code-change`
7153        // matching Erlang's verbatim `code_change/3` callback,
7154        // `:soft-purge` → `:drain` matching a hypothetical operator-side
7155        // vocabulary flip, `:purge` → `:discard` matching a hypothetical
7156        // Elixir/Phoenix hot-reload rebrand, `:restart` → `:reboot`
7157        // matching a supervisor-tree vocabulary alignment) lands as an
7158        // edit to exactly one const, and every consumer that reaches for
7159        // the label (the [`UpgradeInstruction::lisp_form`] dispatch, the
7160        // [`validate_cleanup_singularity`] per-variant `kind:` tagger,
7161        // every [`UpgradeError`] `kind:` / `kinds:` / `other_kinds:` /
7162        // `prior_cleanup_kind:` diagnostic field, the
7163        // [`LayoutError::UpgradeViolation`] `issue:` probe in
7164        // `layout.rs`) picks it up at build time rather than at runtime
7165        // as a downstream `kind: <stale-kebab-case>` diagnostic mismatch
7166        // far from the rename's commit.
7167        assert_eq!(
7168            crate::render::M2_UPGRADE_INSTRUCTION_KIND_LOAD_MODULE,
7169            ":load-module"
7170        );
7171        assert_eq!(
7172            crate::render::M2_UPGRADE_INSTRUCTION_KIND_STATE_CHANGE,
7173            ":state-change"
7174        );
7175        assert_eq!(
7176            crate::render::M2_UPGRADE_INSTRUCTION_KIND_SOFT_PURGE,
7177            ":soft-purge"
7178        );
7179        assert_eq!(crate::render::M2_UPGRADE_INSTRUCTION_KIND_PURGE, ":purge");
7180        assert_eq!(
7181            crate::render::M2_UPGRADE_INSTRUCTION_KIND_RESTART,
7182            ":restart"
7183        );
7184    }
7185
7186    #[test]
7187    fn m2_upgrade_instruction_kind_consts_are_pairwise_distinct() {
7188        // Cross-arm drift-detection pin on the M2
7189        // [`crate::render::M2_UPGRADE_INSTRUCTION_KIND_LOAD_MODULE`] /
7190        // [`crate::render::M2_UPGRADE_INSTRUCTION_KIND_STATE_CHANGE`] /
7191        // [`crate::render::M2_UPGRADE_INSTRUCTION_KIND_SOFT_PURGE`] /
7192        // [`crate::render::M2_UPGRADE_INSTRUCTION_KIND_PURGE`] /
7193        // [`crate::render::M2_UPGRADE_INSTRUCTION_KIND_RESTART`]
7194        // closed-set OTP-appup variant-tag pentad: a future collapse
7195        // of two canonical variant byte-strings onto the same value
7196        // (an accidental copy-paste flip of
7197        // [`crate::render::M2_UPGRADE_INSTRUCTION_KIND_SOFT_PURGE`]
7198        // to also read `":purge"`, a per-arm rebrand that lands one
7199        // const without touching its paired peer) would silently
7200        // reroute every downstream OTP-appup dispatcher's per-
7201        // instruction branch onto the sibling arm's runtime
7202        // behavior and pass every propagation-probe test that
7203        // expected only the stale arm's tag — a `:soft-purge`
7204        // instruction (drain-then-swap: existing callers finish
7205        // under the old module, new callers land on the new one)
7206        // would come up under the `:purge` reconcile branch
7207        // (drop-existing: every in-flight caller terminates
7208        // immediately) on every hot-upgrade cycle, so a rolling
7209        // module swap would silently downgrade to a hard cutover
7210        // against its declared appup discipline, with no field
7211        // naming the instruction-tag drift root cause. Every
7212        // [`crate::UpgradeError`] diagnostic that surfaces the tag
7213        // ([`crate::UpgradeError::ModuleEmpty`] with `kind:` field,
7214        // [`crate::UpgradeError::CleanupCollision`] with `kinds:`
7215        // slice, [`crate::UpgradeError::CleanupPrecedes`] with
7216        // `prior_cleanup_kind:` field, the
7217        // [`crate::LayoutError::UpgradeViolation`] `issue:` probe in
7218        // `layout.rs`) would emit the sibling arm's stale bytes at
7219        // the operator's console, far from the source rebrand
7220        // commit. Peer of the sibling
7221        // [`crate::supervisor::tests::supervisor_estrategia_consts_are_pairwise_distinct`]
7222        // (09ffb2d) /
7223        // [`crate::supervisor::tests::supervisor_child_restart_consts_are_pairwise_distinct`]
7224        // (ccdf955) /
7225        // [`crate::kind::tests::caixa_kind_label_consts_are_pairwise_distinct`]
7226        // (d739850) distinctness pins on the sibling OTP-shape /
7227        // caixa-kind closed-set typed-enum discriminator axes —
7228        // the fifth closed-set OTP-appup / typed-enum axis to
7229        // converge on the same
7230        // "pairwise-distinct-by-construction" discipline, and the
7231        // canonical companion to the peer
7232        // [`m2_upgrade_instruction_field_key_consts_are_pairwise_distinct`]
7233        // (ff980bb) distinctness pin on the sibling internally-
7234        // tagged-JSON per-variant data-field-key axis (the tag axis
7235        // this pin covers vs. the data-field-key axis its peer
7236        // covers — two paired axes on the same
7237        // [`crate::UpgradeInstruction`] typed enum surface).
7238        //
7239        // Fail-before-pass-after locally verified by mutating
7240        // [`crate::render::M2_UPGRADE_INSTRUCTION_KIND_SOFT_PURGE`]
7241        // to also read `":purge"` — this pin fires as expected;
7242        // restoring passes.
7243        let all = [
7244            crate::render::M2_UPGRADE_INSTRUCTION_KIND_LOAD_MODULE,
7245            crate::render::M2_UPGRADE_INSTRUCTION_KIND_STATE_CHANGE,
7246            crate::render::M2_UPGRADE_INSTRUCTION_KIND_SOFT_PURGE,
7247            crate::render::M2_UPGRADE_INSTRUCTION_KIND_PURGE,
7248            crate::render::M2_UPGRADE_INSTRUCTION_KIND_RESTART,
7249        ];
7250        for (i, a) in all.iter().enumerate() {
7251            for (j, b) in all.iter().enumerate() {
7252                if i != j {
7253                    assert_ne!(
7254                        a, b,
7255                        "M2_UPGRADE_INSTRUCTION_KIND_* consts must be pairwise \
7256                         distinct — got duplicate {a:?} at indices {i} and {j}",
7257                    );
7258                }
7259            }
7260        }
7261    }
7262
7263    #[test]
7264    fn upgrade_instruction_lisp_form_routes_through_lifted_kind_consts() {
7265        // Production-through-const pin: the five per-variant labels
7266        // [`UpgradeInstruction::lisp_form`] returns route through the
7267        // lifted [`crate::render::M2_UPGRADE_INSTRUCTION_KIND_*`] consts,
7268        // so a future rebrand that reaches the const but not the
7269        // dispatch (or vice versa) surfaces here at build time rather
7270        // than at runtime as a downstream
7271        // [`UpgradeError::ModuleEmpty`] `kind: <stale-kebab-case>`
7272        // diagnostic drift far from the rename's commit. Mirror of the
7273        // peer `contrato_shape_gate_routes_through_lifted_contrato_author_key_consts`
7274        // (f50c875), `declared_mesh_slots_route_through_lifted_m3_author_key_consts`
7275        // (882f498), and `declared_servico_slots_route_through_lifted_m2_author_key_consts`
7276        // (f49c8b0) production-through-const pins on the sibling M3 /
7277        // M2 top-level slot axes.
7278        //
7279        // Fail-before-pass-after locally verified by mutating
7280        // `UpgradeInstruction::lisp_form`'s `Self::Purge` arm to return
7281        // `":purge-drift"` — this pin fires as expected; restoring
7282        // passes.
7283        let cases: &[(UpgradeInstruction, &'static str)] = &[
7284            (
7285                UpgradeInstruction::LoadModule { module: "x".into() },
7286                crate::render::M2_UPGRADE_INSTRUCTION_KIND_LOAD_MODULE,
7287            ),
7288            (
7289                UpgradeInstruction::StateChange {
7290                    script: PathBuf::from("lib/m.lisp"),
7291                },
7292                crate::render::M2_UPGRADE_INSTRUCTION_KIND_STATE_CHANGE,
7293            ),
7294            (
7295                UpgradeInstruction::SoftPurge {
7296                    module: "x-old".into(),
7297                },
7298                crate::render::M2_UPGRADE_INSTRUCTION_KIND_SOFT_PURGE,
7299            ),
7300            (
7301                UpgradeInstruction::Purge {
7302                    module: "x-old".into(),
7303                },
7304                crate::render::M2_UPGRADE_INSTRUCTION_KIND_PURGE,
7305            ),
7306            (
7307                UpgradeInstruction::Restart,
7308                crate::render::M2_UPGRADE_INSTRUCTION_KIND_RESTART,
7309            ),
7310        ];
7311        for (instr, expected) in cases {
7312            assert_eq!(
7313                instr.lisp_form(),
7314                *expected,
7315                "UpgradeInstruction::lisp_form on {instr:?} must route through the lifted \
7316                 const (expected {expected:?})",
7317            );
7318        }
7319    }
7320
7321    #[test]
7322    fn upgrade_from_entry_instructions_returns_instructions_slice_byte_equal_across_permutations() {
7323        // The canonical per-`:upgrade-from :instructions` OTP-appup
7324        // migration-instruction-list slice-shape pin:
7325        // [`UpgradeFromEntry::instructions`] must return the
7326        // `:instructions` typed `Vec<UpgradeInstruction>` verbatim as
7327        // a `&[UpgradeInstruction]` slice-view over the same backing
7328        // buffer the raw `self.instructions.as_slice()` field access
7329        // borrows from, byte-equal across every representative fixture
7330        // in the accept-set — the empty slice (the "no-op upgrade" /
7331        // metadata-only sentinel the [`UpgradeFromEntry::instructions`]
7332        // field's own docstring names), the singleton slice on every
7333        // variant of the [`UpgradeInstruction`] arm-space
7334        // (`LoadModule` / `StateChange` / `SoftPurge` / `Purge` /
7335        // `Restart` — the five OTP-appup runtime-primitive variants),
7336        // and multi-instruction cohorts (the canonical
7337        // `LoadModule → StateChange → SoftPurge` OTP two-phase code-
7338        // load + state-migration triad the module doc names as the
7339        // "runs the instructions in order" example).
7340        //
7341        // Pins against a future silent detour that returned
7342        // `&Vec<UpgradeInstruction>` (which would type-check but leak
7343        // the storage-side `Vec`'s grow/push/reserve surface no
7344        // consumer of the typed view reaches for), a fresh-allocated
7345        // `Vec<UpgradeInstruction>` copy (which would type-check via
7346        // a coercion but silently break every downstream caller that
7347        // relied on the slice sharing the backing buffer's identity),
7348        // or an out-of-order or length-drifted projection (which
7349        // would silently split the paired within-entry cross-
7350        // instruction ordering gates' inputs from the peer per-
7351        // instruction shape-check loop's input, one seven-gate cohort
7352        // silently drifting from the peer gate's actual traversal
7353        // input).
7354        //
7355        // Peer of the sibling
7356        // `aplicacao_spec_contratos_returns_contratos_slice_byte_equal_across_permutations`
7357        // (0dcc926) `&[WitContract]` byte-equal pin on the M3 per-
7358        // `:contratos` edge-list axis, extended onto the M2 per-
7359        // `:upgrade-from :instructions` migration-instruction-list
7360        // axis — the fifth `&[T]`-return byte-equal pin, closing the
7361        // last unlifted `Vec`-carry axis on any M2 or M3 typed slot.
7362        let fixtures: Vec<Vec<UpgradeInstruction>> = vec![
7363            Vec::new(),
7364            vec![UpgradeInstruction::LoadModule { module: "x".into() }],
7365            vec![UpgradeInstruction::StateChange {
7366                script: PathBuf::from("lib/m.lisp"),
7367            }],
7368            vec![UpgradeInstruction::SoftPurge {
7369                module: "x-old".into(),
7370            }],
7371            vec![UpgradeInstruction::Purge {
7372                module: "x-old".into(),
7373            }],
7374            vec![UpgradeInstruction::Restart],
7375            vec![
7376                UpgradeInstruction::LoadModule { module: "x".into() },
7377                UpgradeInstruction::StateChange {
7378                    script: PathBuf::from("lib/migrations/v01-to-v02.lisp"),
7379                },
7380                UpgradeInstruction::SoftPurge {
7381                    module: "x-old".into(),
7382                },
7383            ],
7384        ];
7385        for instructions in fixtures {
7386            let e = UpgradeFromEntry {
7387                from: "0.1.0".into(),
7388                instructions: instructions.clone(),
7389            };
7390            assert_eq!(
7391                e.instructions(),
7392                e.instructions.as_slice(),
7393                "UpgradeFromEntry::instructions must project the raw \
7394                 `:instructions` `Vec<UpgradeInstruction>` verbatim as a \
7395                 `&[UpgradeInstruction]` slice-view over the same backing buffer \
7396                 (fixture: {instructions:?})",
7397            );
7398            assert_eq!(
7399                e.instructions().len(),
7400                instructions.len(),
7401                "UpgradeFromEntry::instructions length must match the raw \
7402                 `:instructions` `Vec<UpgradeInstruction>` length (fixture: {instructions:?})",
7403            );
7404        }
7405    }
7406
7407    #[test]
7408    fn validate_reads_through_lifted_instructions_accessor() {
7409        // Three-consumer coherence pin on the lifted
7410        // [`UpgradeFromEntry::instructions`] slice-return accessor:
7411        // exercises three of the nine paired production consumers of
7412        // the per-`:upgrade-from :instructions` OTP-appup migration-
7413        // instruction-list surface through end-to-end validate() paths
7414        // that require the accessor to reach each of the fixture's
7415        // instructions.
7416        //
7417        // (1) The per-instruction shape-check fan-out
7418        // ([`UpgradeFromEntry::validate`]'s `for instr in
7419        // self.instructions()` loop): pass the well-formed load →
7420        // state-change → soft-purge triad — `validate()` must accept
7421        // it, which requires the accessor to project every entry so
7422        // each `instr.validate()` fires.
7423        //
7424        // (2) The within-entry state-change-ordering gate
7425        // ([`Self::validate_state_change_ordering`]): pass a
7426        // `((:state-change …))` singleton — `validate()` must return
7427        // [`UpgradeError::StateChangeWithoutPriorLoad`], which
7428        // requires the accessor to reach the state-change so the
7429        // no-prior-load probe fires.
7430        //
7431        // (3) The within-entry per-module cleanup-singularity gate
7432        // ([`Self::validate_cleanup_singularity`]): pass a
7433        // `((:load-module "x") (:soft-purge "x-old") (:soft-purge
7434        // "x-old"))` cohort — `validate()` must return
7435        // [`UpgradeError::DuplicateCleanup`], which requires the
7436        // accessor to iterate the whole list so the second `SoftPurge`
7437        // matches the first via the `seen` set.
7438        //
7439        // Peer of the sibling
7440        // `validate_reads_through_lifted_contratos_accessor` (0dcc926)
7441        // three-consumer coherence pin on the M3 per-`:contratos`
7442        // edge-list axis, extended onto the M2 per-`:upgrade-from
7443        // :instructions` migration-instruction-list axis.
7444
7445        // (1) accept the well-formed OTP two-phase code-load triad
7446        let well_formed = entry(
7447            "0.1.0",
7448            vec![
7449                UpgradeInstruction::LoadModule { module: "x".into() },
7450                UpgradeInstruction::StateChange {
7451                    script: PathBuf::from("lib/migrations/v01-to-v02.lisp"),
7452                },
7453                UpgradeInstruction::SoftPurge {
7454                    module: "x-old".into(),
7455                },
7456            ],
7457        );
7458        assert!(
7459            well_formed.validate().is_ok(),
7460            "well-formed `LoadModule → StateChange → SoftPurge` triad must accept — \
7461             the per-instruction shape-check fan-out requires the accessor to reach every entry"
7462        );
7463
7464        // (2) refuse a `((:state-change …))` singleton — the
7465        // state-change-without-prior-load gate must fire, which
7466        // requires the accessor to reach the single instruction.
7467        let no_prior_load = entry(
7468            "0.1.0",
7469            vec![UpgradeInstruction::StateChange {
7470                script: PathBuf::from("lib/m.lisp"),
7471            }],
7472        );
7473        match no_prior_load.validate() {
7474            Err(UpgradeError::StateChangeWithoutPriorLoad { .. }) => {}
7475            other => panic!(
7476                "expected StateChangeWithoutPriorLoad on a `((:state-change …))` singleton \
7477                 — the within-entry state-change-ordering gate must reach the single \
7478                 instruction through the lifted accessor; got: {other:?}"
7479            ),
7480        }
7481
7482        // (3) refuse a `((:load-module "x") (:soft-purge "x-old")
7483        // (:soft-purge "x-old"))` cohort — the per-module cleanup-
7484        // singularity gate must fire on the second `SoftPurge`, which
7485        // requires the accessor to iterate the whole list.
7486        let duplicate_cleanup = entry(
7487            "0.1.0",
7488            vec![
7489                UpgradeInstruction::LoadModule { module: "x".into() },
7490                UpgradeInstruction::SoftPurge {
7491                    module: "x-old".into(),
7492                },
7493                UpgradeInstruction::SoftPurge {
7494                    module: "x-old".into(),
7495                },
7496            ],
7497        );
7498        match duplicate_cleanup.validate() {
7499            Err(UpgradeError::DuplicateCleanup { module, .. }) => {
7500                assert_eq!(
7501                    module, "x-old",
7502                    "DuplicateCleanup must name the colliding module `x-old` — the per-module \
7503                     cleanup-singularity gate must iterate through the lifted accessor to \
7504                     match the second SoftPurge against the first via the `seen` set"
7505                );
7506            }
7507            other => panic!(
7508                "expected DuplicateCleanup on `((:load-module x) (:soft-purge x-old) \
7509                 (:soft-purge x-old))` — the within-entry cleanup-singularity gate must \
7510                 iterate the whole list through the lifted accessor; got: {other:?}"
7511            ),
7512        }
7513
7514        // Path::new suppresses the unused-import warning if the
7515        // outer module trims `use std::path::Path;` in a future edit.
7516        let _ = Path::new("lib/m.lisp");
7517    }
7518}