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caixa_core/
limits.rs

1//! Lunatic-style per-process resource limits — the typed slot of
2//! `caixa.lisp` that wasm-engine consumes at component instantiation.
3//!
4//! See `theory/INSPIRATIONS.md` §III.1 for the prior-art frame: every
5//! caixa Servico runs sandboxed by default; no "trust the author".
6//!
7//! ```lisp
8//! (defcaixa
9//!   :nome   "my-service"
10//!   :versao "0.1.0"
11//!   :kind   Servico
12//!   :limits ((:memory     "64MiB")     ;; max linear memory per instance
13//!            (:fuel       1000000)     ;; max wasm-instructions per request
14//!            (:wall-clock "30s")       ;; max wall-clock per request
15//!            (:cpu        "500m"))     ;; soft cgroup CPU share (millicores)
16//!   :servicos ("servicos/my-service.computeunit.yaml"))
17//! ```
18//!
19//! Authors omit the slot for "no limits" (today's behavior). When set,
20//! wasm-engine M2 wires:
21//!
22//!   - [`LimitsSpec::memory`]      → `wasmtime::StoreLimits::memory_size`
23//!   - [`LimitsSpec::fuel`]        → `Store::set_fuel` + per-tick refill
24//!   - [`LimitsSpec::wall_clock`]  → epoch deadline cancellation
25//!   - [`LimitsSpec::cpu`]         → cgroup-v2 hint propagated via the pod spec
26
27use std::time::Duration;
28
29use serde::{Deserialize, Deserializer, Serialize, Serializer};
30use thiserror::Error;
31
32/// Hard upper bound for `:limits :memory`, in bytes — the
33/// `wasm32-wasip2` linear-memory ceiling. The canonical caixa Servico
34/// compilation target ([`theory/CAIXA-SDLC.md` §V — *Substrate /
35/// Nix*][sdlc-v]) is `wasm32-wasip2`, whose linear memory is 32-bit-
36/// addressed at a 64 KiB page size; the in-spec maximum is
37/// `2^16 pages × 2^16 bytes/page = 2^32` bytes = 4 GiB exactly.
38/// A `:limits :memory` value above this bound is structurally
39/// unreachable under wasm32: wasmtime's `Store::limiter` cannot grow
40/// past the 32-bit address space, so an authored `"8GiB"` either
41/// silently saturates at the engine's effective cap or surfaces as a
42/// `memory.grow` trap at runtime, far from the source caixa.lisp.
43///
44/// Pairs with [`LimitsError::MemoryZero`] (the zero-floor gate added
45/// by the prior typed-shape lift on this axis) to bracket the valid
46/// `:memory` set top-to-bottom: every validated value lies in
47/// `1..=LIMITS_MEMORY_WASM32_MAX_BYTES` (inclusive on both ends).
48/// Renderers ([`crate::render::servico_m2_overlay`] and the M2.5
49/// `wasm-engine` instantiator the ABSORPTION-ROADMAP names as the
50/// downstream wiring) consume the typed value with no re-validation
51/// — the value-shape gate is the structural contract.
52///
53/// Lifted as a typed `pub const` (rather than an inline literal at
54/// the [`LimitsSpec::validate`] call site) so the bound has exactly
55/// one source of truth — a future axis reaching for the same value
56/// (a future `memory64`-target opt-in raising the cap to 2^64, a
57/// wasm-engine smoke test asserting the engine's effective limit
58/// matches the typed bound, the M4 `mesh.pleme.io/v1alpha1/Caixa`
59/// CR materializer's per-`:limits :memory` admission webhook)
60/// reads from one place. Same shape every other typed bound in this
61/// crate carries ([`crate::render::DNS_1123_LABEL_MAX_LEN`],
62/// [`crate::render::GATEWAY_API_HTTP_PATH_MAX_LEN`],
63/// [`crate::render::NATS_SUBJECT_MAX_LEN`]).
64///
65/// [sdlc-v]: https://github.com/pleme-io/theory/blob/main/CAIXA-SDLC.md
66pub const LIMITS_MEMORY_WASM32_MAX_BYTES: u64 = 4 * 1024 * 1024 * 1024;
67
68/// Structural floor for `:limits :memory`, in bytes — the
69/// `wasm32-wasip2` linear-memory page size. The wasm spec defines
70/// linear memory in fixed 64 KiB pages (`2^16` bytes); every typed
71/// memory cap is consumed by `wasmtime::StoreLimits::memory_size` as a
72/// per-component byte ceiling against which the engine checks every
73/// `memory.grow` request. A cap below one page (`< 65536` bytes) is
74/// structurally a "no wasm linear memory allowed" cap — instantiation
75/// of any wasm component that declares `(memory 1)` (i.e. min=1 page,
76/// the canonical default for every cdylib-shaped wasm component cargo
77/// emits) fails immediately with `memory minimum size of 1 pages
78/// exceeds memory limits`; a min=0 component traps the first
79/// `memory.grow(1)` because the next-page allocation would cross the
80/// sub-page cap. Either way the typed value the wasm-engine consumes
81/// is operationally indistinguishable from [`LimitsError::MemoryZero`]
82/// (no memory at all), but the diagnostic surfaces at engine-load
83/// time rather than at caixa-build time, far from the source
84/// caixa.lisp.
85///
86/// Pairs with [`LIMITS_MEMORY_WASM32_MAX_BYTES`] (the 4 GiB upper
87/// cap added by the prior typed-shape lift on this axis) to bracket
88/// the valid `:memory` set top-to-bottom in *operational* units, not
89/// just byte units: every validated value lies in
90/// `LIMITS_MEMORY_WASM32_PAGE_BYTES..=LIMITS_MEMORY_WASM32_MAX_BYTES`
91/// inclusive on both ends — i.e. at least one wasm32 linear memory
92/// page can be allocated, and at most the wasm32 address-space
93/// ceiling fits.
94///
95/// Lifted as a typed `pub const` (rather than an inline literal at
96/// the [`LimitsSpec::validate`] call site) so the bound has exactly
97/// one source of truth — a future axis reaching for the same value
98/// (a future `memory64`-target opt-in raising the page size, the M4
99/// `mesh.pleme.io/v1alpha1/Caixa` CR materializer's per-`:limits
100/// :memory` admission webhook, a wasm-engine smoke test asserting
101/// every instantiated component can fit one page within its
102/// configured cap) reads from one place. Same single-source-of-truth
103/// shape every typed bound in this crate carries
104/// ([`LIMITS_MEMORY_WASM32_MAX_BYTES`],
105/// [`crate::render::DNS_1123_LABEL_MAX_LEN`]).
106pub const LIMITS_MEMORY_WASM32_PAGE_BYTES: u64 = 64 * 1024;
107
108/// Upper-bound ceiling on the `:limits :wall-clock` axis — every
109/// validated [`LimitsSpec::wall_clock`] past [`LimitsSpec::validate`]
110/// lies in `1ms..=LIMITS_WALL_CLOCK_MAX` (inclusive on both ends,
111/// integer-millisecond magnitudes by the canonical-form gate
112/// immediately preceding).
113///
114/// The typed field is `Option<Duration>` (the zero-floor arm
115/// [`LimitsError::WallClockZero`] already rejects `Duration::ZERO`, and
116/// the canonical-form arm [`LimitsError::WallClockNotCanonical`]
117/// already rejects sub-millisecond residue), so a programmatic struct
118/// literal (`LimitsSpec { wall_clock: Some(Duration::from_secs(86_400)),
119/// .. }` — 24h) and the equivalent author-surface form
120/// (`(:limits (:wall-clock "24h"))` — the codec emits `"<n>h"` for any
121/// integer-hour magnitude) both round-trip cleanly through serde — a
122/// structurally unbounded `Duration` ceiling. A `:wall-clock` value far
123/// above the per-process production band (Lunatic / Wasmtime documented
124/// per-call deadlines sit in the seconds-to-minutes range; Kubernetes
125/// activeDeadlineSeconds typical `≤ 3600s`; the longest per-request
126/// timeout any upstream HTTP runtime documents — Kubernetes
127/// ingress-nginx `proxy_read_timeout` — caps at the same 3600s) turns
128/// the typed per-process deadline into a nominal-only contract: the
129/// wasm-engine's epoch-deadline cancellation reaches for a `Duration`
130/// so long no realistic synchronous wasm call can hit it, the runaway-
131/// process invariant the MESH-COMPOSITION §V "no infinite blocking" CSE
132/// invariant pins at the per-Servico layer degenerates to a runtime,
133/// not build-time, contract. Pairs with the
134/// [`crate::POLICY_TIMEOUT_MAX`] cap on the sibling `:politicas :timeout`
135/// mesh-edge axis and the [`crate::POLICY_BREAKER_WINDOW_MAX`] cap on
136/// the sibling `:politicas :circuit-breaker :window` rolling-window
137/// axis — all three close the "structurally unbounded `Duration`
138/// ceiling on a typed slot" footgun the prior zero-floor-and-canonical-
139/// form-only checks left open.
140///
141/// The 1h (3600s = `3_600_000` ms) ceiling matches the largest unit
142/// the shared duration codec emits (`"<n>h"` for any integer-hour
143/// magnitude) — every value in the canonical authoring form's
144/// `<integer><unit>` grammar at or below this cap renders to a clean
145/// canonical string — and matches the two sibling typed-`Duration`
146/// caps already lifted to this surface
147/// ([`crate::POLICY_TIMEOUT_MAX`], [`crate::POLICY_BREAKER_WINDOW_MAX`]).
148/// The three typed-`Duration` axes — per-process `:limits :wall-clock`,
149/// per-edge `:politicas :timeout`, per-breaker `:politicas
150/// :circuit-breaker :window` — now share a single uniform top edge so
151/// the next typed-slot wiring (the wasm-engine M2.5 epoch-deadline
152/// cancellation hook, the future caixa-helm `pleme-computeunit` chart's
153/// `:limits` value mapping, the M4 `mesh.pleme.io/v1alpha1/Caixa` CR
154/// materializer's per-`:limits :wall-clock` admission webhook) reaches
155/// for any of the three knowing the value is in `1ms..=1h` without
156/// re-validating at the renderer layer. The cap sits above the
157/// documented per-request playbook band (Envoy / Istio / Linkerd
158/// production `≤ 60s`, AWS App Mesh / ingress-nginx typical `≤ 300s`,
159/// Kubernetes activeDeadlineSeconds typical `≤ 3600s`) and below the
160/// clearly-pathological "effectively no deadline" floor (`24h`, `7d`,
161/// `Duration::MAX`): a value the author can plausibly want for a
162/// long-running synchronous workflow, but a hard wall above which the
163/// per-process deadline is structurally a non-deadline.
164///
165/// Lifted as a typed `pub const` so the bound has exactly one source
166/// of truth — the wasm-engine M2.5 epoch-deadline wiring, a wasm-engine
167/// smoke test asserting the engine's epoch interrupt fires within the
168/// typed bound, the M4 `mesh.pleme.io/v1alpha1/Caixa` CR materializer's
169/// per-`:limits :wall-clock` admission webhook all read from one place.
170/// Same shape every other typed upper bound in this crate carries
171/// ([`LIMITS_MEMORY_WASM32_MAX_BYTES`], [`crate::POLICY_TIMEOUT_MAX`],
172/// [`crate::POLICY_BREAKER_WINDOW_MAX`],
173/// [`crate::render::DNS_1123_LABEL_MAX_LEN`],
174/// [`crate::render::NATS_SUBJECT_MAX_LEN`]).
175pub const LIMITS_WALL_CLOCK_MAX: Duration = Duration::from_secs(3600);
176
177/// Upper-bound ceiling on the `:limits :cpu` axis, in Kubernetes
178/// millicores — every validated [`LimitsSpec::cpu`] past
179/// [`LimitsSpec::validate`] lies in `1..=LIMITS_CPU_MILLICORES_MAX`
180/// (inclusive on both ends).
181///
182/// The typed field is `Option<u32>` (the zero-floor arm
183/// [`LimitsError::CpuZero`] already rejects `Some(0)` — a zero cgroup
184/// share starves the process), so a programmatic struct literal
185/// (`LimitsSpec { cpu: Some(u32::MAX), .. }` — ≈ 4.3 million cores)
186/// and the equivalent author-surface form (`(:limits (:cpu
187/// "1000000m"))` — the millicore codec parses any `u32`-shaped
188/// magnitude) both round-trip cleanly through serde — a structurally
189/// unbounded `u32` ceiling. The runtime substrate consuming the value
190/// ([`crate::render::servico_m2_overlay`]'s `pleme-computeunit.limits.cpu`
191/// projection, the M2.5 `wasm-engine` instantiator the
192/// `ABSORPTION-ROADMAP` names as the downstream wiring, the future
193/// M4 `mesh.pleme.io/v1alpha1/Caixa` CR materializer's admission
194/// webhook) lands the value verbatim as the K8s pod's
195/// `resources.requests.cpu`. A value far above the largest commodity
196/// node's vCPU count turns the typed slot into an unschedulable hint:
197/// the Kubernetes scheduler refuses to bind the pod to any node
198/// (insufficient `cpu` available), the Servico sits `Pending`
199/// indefinitely, and the per-process CSE invariant (every typed
200/// `:cpu` reaches a node) is a runtime, not build-time, contract —
201/// the canonical declared-but-unschedulable footgun the sibling
202/// `:limits :memory` wasm32-cap arm closes on its peer "cannot be
203/// honored" shape.
204///
205/// The `128_000` (128 cores) ceiling matches the largest commercially
206/// common non-metal cloud Kubernetes node vCPU count (AWS m7i.32xlarge
207/// / c7i.32xlarge = 128 vCPU; Azure HBv3-128rs = 128 vCPU; GCP
208/// c3-standard-128 = 128 vCPU — every major managed-Kubernetes provider
209/// tops out at 128 vCPU on its general-purpose non-metal SKUs) and sits
210/// two orders of magnitude above every realistic per-Servico
211/// production-playbook band (the canonical caixa Servico runs in the
212/// 100m–2000m band; the in-tree
213/// `limits_slot_propagates_into_values_block` smoke test pins
214/// `cpu: Some(500)` = 500m as the load-bearing example, peer to the
215/// `caixa-flux` projector's identical 500m default). A value above this
216/// cap is structurally unschedulable on any commercial managed
217/// Kubernetes node pool: GKE Standard / EKS managed / AKS default
218/// node-group SKU ladders cap at 128 vCPU per node for general-purpose
219/// instance families, so a `:cpu` request above `128_000m` cannot bind to
220/// any node the operator can provision through the standard
221/// cloud-provider control plane. The wasm32-wasip2 single-threaded
222/// execution model the canonical caixa Servico targets
223/// ([`theory/CAIXA-SDLC.md` §V][sdlc-v]) reinforces the structural
224/// argument: a single wasm component cannot saturate more than one
225/// core, so even the Lunatic-style supervised-multi-process host
226/// (`theory/INSPIRATIONS.md` §III.1) — which fans wasm processes across
227/// the host runtime's Tokio thread pool — bounds its useful CPU request
228/// to the host node's vCPU count, never higher.
229///
230/// Lifted as a typed `pub const` (rather than an inline literal at the
231/// [`LimitsSpec::validate`] call site) so the bound has exactly one
232/// source of truth — the future M4
233/// `mesh.pleme.io/v1alpha1/Caixa` CR materializer's per-`:limits :cpu`
234/// admission webhook, the caixa-helm `pleme-computeunit` chart's
235/// resource-request mapping, the M2.5 `wasm-engine` host-runtime
236/// thread-pool sizing hint all read from one place. Same shape every
237/// other typed upper bound in this crate carries
238/// ([`LIMITS_MEMORY_WASM32_MAX_BYTES`], [`LIMITS_WALL_CLOCK_MAX`],
239/// [`crate::POLICY_TIMEOUT_MAX`], [`crate::POLICY_BREAKER_WINDOW_MAX`],
240/// [`crate::POLICY_RATE_LIMIT_MAX`],
241/// [`crate::render::DNS_1123_LABEL_MAX_LEN`]).
242///
243/// [sdlc-v]: https://github.com/pleme-io/theory/blob/main/CAIXA-SDLC.md
244pub const LIMITS_CPU_MILLICORES_MAX: u32 = 128_000;
245
246/// Upper-bound ceiling on the `:limits :fuel` axis, in wasm
247/// instructions per outermost call — every validated
248/// [`LimitsSpec::fuel`] past [`LimitsSpec::validate`] lies in
249/// `1..=LIMITS_FUEL_MAX` (inclusive on both ends).
250///
251/// The typed field is `Option<u64>` (the zero-floor arm
252/// [`LimitsError::FuelZero`] already rejects `Some(0)` — wasmtime
253/// traps the first instruction at `fuel=0`), so a programmatic
254/// struct literal (`LimitsSpec { fuel: Some(u64::MAX), .. }` —
255/// ≈ 1.8 × 10¹⁹ instructions) and the equivalent author-surface
256/// form (`(:limits (:fuel 18446744073709551615))`) both
257/// round-trip cleanly through serde — a structurally unbounded
258/// `u64` ceiling. The runtime substrate consuming the value
259/// ([`crate::render::servico_m2_overlay`]'s
260/// `pleme-computeunit.limits.fuel` projection, the M2.5
261/// `wasm-engine` `Store::set_fuel` call the
262/// `ABSORPTION-ROADMAP` names as the downstream wiring, the
263/// future M4 `mesh.pleme.io/v1alpha1/Caixa` CR materializer's
264/// admission webhook) lands the value verbatim as the
265/// wasmtime store's per-call fuel budget. A value far above any
266/// reachable wasm execution count turns the typed slot into a
267/// no-op budget: the sibling [`LIMITS_WALL_CLOCK_MAX`] (1h)
268/// cap fires before the fuel counter ever drains, the per-call
269/// fuel-tracking contract degenerates to "rely on `:wall-clock`
270/// instead" enforcement, and the per-process CSE invariant
271/// (every typed `:fuel` is a meaningful budget the wasm-engine
272/// can actually consume) is a runtime, not build-time, contract
273/// on every above-cap input — the canonical declared-but-no-op
274/// footgun the sibling `:wall-clock` / `:cpu` / `:memory` cap
275/// arms close on the peer "cannot be honored" /
276/// "unschedulable hint" / "no-op budget" shapes, and the peer
277/// `:politicas :rate-limit` / `:politicas :timeout` /
278/// `:politicas :circuit-breaker :window` /
279/// `:supervisor :max-restarts` cap arms close on every other
280/// `Option<numeric>` axis on the typed Caixa surface.
281///
282/// The `1_000_000_000_000` (10¹² = 1 trillion wasm instructions)
283/// ceiling matches the operational envelope the sibling
284/// [`LIMITS_WALL_CLOCK_MAX`] cap pins: at wasmtime's documented
285/// fuel-tracked execution rate (~10⁸–10⁹ fuel-units per second
286/// on modern x86_64 / aarch64 hosts running wasmtime through
287/// Cranelift — the substrate's wasm32-wasip2 default backend per
288/// the `caixa-feira` runner), the largest realistic per-call
289/// fuel budget reachable within `LIMITS_WALL_CLOCK_MAX` (1h)
290/// sits at ~3.6 × 10¹¹–3.6 × 10¹² fuel-units. The 10¹² cap is
291/// the round-number ceiling above this operational envelope,
292/// sits six orders of magnitude above the canonical fixture
293/// (the in-tree `Caixa::template` documentation and
294/// `caixa-feira` examples carry `:fuel 1_000_000` = 10⁶,
295/// peer to wasmtime's official `Store::set_fuel(1_000_000)`
296/// example in the `wasmtime` book), and surfaces every
297/// paste-from-binary / overflow / u64-magnitude-typo footgun
298/// (`u64::MAX`, `0xFFFF_FFFF_FFFF_FFFF`, large hex literals
299/// confused for instruction-count budgets) at validate time.
300/// A value above this cap is operationally a no-op fuel
301/// counter: the wall-clock deadline ([`LIMITS_WALL_CLOCK_MAX`]
302/// = 3600s × ~10⁹ fuel/sec ≈ 3.6 × 10¹² instructions reachable)
303/// fires before the fuel counter could ever be drained,
304/// so the typed `:fuel` slot becomes a no-op budget far from
305/// the source caixa.lisp. The wasm32-wasip2 single-threaded
306/// execution model the canonical caixa Servico targets
307/// ([`theory/CAIXA-SDLC.md` §V][sdlc-v]) reinforces the
308/// structural argument: a single wasm component cannot
309/// out-execute its host's CPU clock, so even the Lunatic-style
310/// supervised-multi-process host (`theory/INSPIRATIONS.md`
311/// §III.1) bounds its useful fuel-per-call budget to a
312/// per-clock-tick magnitude, never higher.
313///
314/// Lifted as a typed `pub const` (rather than an inline literal
315/// at the [`LimitsSpec::validate`] call site) so the bound has
316/// exactly one source of truth — the future M4
317/// `mesh.pleme.io/v1alpha1/Caixa` CR materializer's per-`:limits
318/// :fuel` admission webhook, the caixa-helm `pleme-computeunit`
319/// chart's fuel-budget mapping, the M2.5 `wasm-engine` host-
320/// runtime `Store::set_fuel` propagation all read from one
321/// place. Same shape every other typed upper bound in this
322/// crate carries ([`LIMITS_MEMORY_WASM32_MAX_BYTES`],
323/// [`LIMITS_WALL_CLOCK_MAX`], [`LIMITS_CPU_MILLICORES_MAX`],
324/// [`crate::POLICY_TIMEOUT_MAX`],
325/// [`crate::POLICY_BREAKER_WINDOW_MAX`],
326/// [`crate::POLICY_RATE_LIMIT_MAX`],
327/// [`crate::SUPERVISOR_MAX_RESTARTS_MAX`],
328/// [`crate::render::DNS_1123_LABEL_MAX_LEN`]).
329///
330/// [sdlc-v]: https://github.com/pleme-io/theory/blob/main/CAIXA-SDLC.md
331pub const LIMITS_FUEL_MAX: u64 = 1_000_000_000_000;
332
333/// Per-process limits. All fields optional — `None` = unbounded for that axis.
334#[derive(Serialize, Deserialize, Debug, Clone, Copy, Default, PartialEq, Eq)]
335#[serde(rename_all = "camelCase")]
336pub struct LimitsSpec {
337    /// Max linear memory in bytes. Authored as a byte-size string
338    /// (`"64MiB"`, `"1GiB"`, `"512KB"`). Round-trips back to the same
339    /// canonical string on serialize.
340    #[serde(
341        default,
342        skip_serializing_if = "Option::is_none",
343        serialize_with = "ser_byte_size",
344        deserialize_with = "de_byte_size"
345    )]
346    pub memory: Option<u64>,
347
348    /// Max wasm instructions per outermost call (`wasmtime` fuel).
349    /// Plain integer; `None` = unbounded.
350    #[serde(default, skip_serializing_if = "Option::is_none")]
351    pub fuel: Option<u64>,
352
353    /// Wall-clock cap per outermost call. Authored as a duration
354    /// string (`"30s"`, `"500ms"`, `"2m"`).
355    #[serde(
356        default,
357        skip_serializing_if = "Option::is_none",
358        serialize_with = "ser_duration",
359        deserialize_with = "de_duration"
360    )]
361    pub wall_clock: Option<Duration>,
362
363    /// Soft CPU share. Authored as a Kubernetes-style millicore string
364    /// (`"500m"` for half a core, `"2"` or `"2000m"` for two cores).
365    /// Stored as millicores (u32).
366    #[serde(
367        default,
368        skip_serializing_if = "Option::is_none",
369        serialize_with = "ser_millicores",
370        deserialize_with = "de_millicores"
371    )]
372    pub cpu: Option<u32>,
373}
374
375impl LimitsSpec {
376    /// True when no axis is bounded.
377    #[must_use]
378    pub const fn is_empty(&self) -> bool {
379        self.memory().is_none()
380            && self.fuel().is_none()
381            && self.wall_clock().is_none()
382            && self.cpu().is_none()
383    }
384
385    /// Substrate-canonical per-`:limits` `:memory` Lunatic-per-process
386    /// wasm32-linear-memory byte-cap scalar accessor every consumer of
387    /// the Servico's `wasmtime::StoreLimits::memory_size` propagation
388    /// keys off — returns the author-declared `:limits :memory` typed
389    /// byte-cap verbatim as an `Option<u64>`, copied out of the typed
390    /// slot's own `Option<u64>` storage (`Option<u64>` is `Copy`, so
391    /// the accessor returns by value; no borrow of `&self` past the
392    /// call). `None` when the slot is absent (the "no memory cap
393    /// declared — engine-default applies, today the pre-M2 unbounded-
394    /// linear-memory shape" arm the module-level docstring names on
395    /// [`LimitsSpec::memory`] itself — [`LimitsSpec::is_empty`]'s
396    /// `memory().is_none()` arm reads this predicate too, so an
397    /// authored-but-unset `:limits (:memory ())` round-trips to a
398    /// `servico_m2_overlay` emission structurally identical to one
399    /// that omits the slot entirely).
400    ///
401    /// The `:limits :memory` slot carries the "per-process wasm32
402    /// linear-memory byte-cap" Lunatic-shaped sandboxing contract
403    /// (`theory/INSPIRATIONS.md` §III.1) — the typed slot's
404    /// `Option<u64>` accept-set (zero-floor rejected through
405    /// [`LimitsError::MemoryZero`], wasm32-page-floor rejected through
406    /// [`LimitsError::MemoryBelowWasm32Page`], upper-bounded by
407    /// [`LIMITS_MEMORY_WASM32_MAX_BYTES`], authored as a byte-size
408    /// string that round-trips back to the canonical form through
409    /// [`ser_byte_size`] / [`de_byte_size`]) maps onto the wasmtime
410    /// `Store::limiter`-side `memory_size` projection the wasm-engine
411    /// M2 wires and, via [`crate::render::servico_m2_overlay`], onto
412    /// the `pleme-computeunit` Helm-library-chart values sub-block's
413    /// `limits.memory` key that lands as the ComputeUnit CR's
414    /// `spec.limits.memory` field.
415    ///
416    /// Prior to this lift the `.memory` field was accessed inline at
417    /// four sites inside `impl LimitsSpec` — [`LimitsSpec::is_empty`]'s
418    /// `self.memory.is_none()` arm and three [`LimitsSpec::validate`]
419    /// arms (the numeric zero-floor arm at line 397, the wasm32-page
420    /// structural floor arm at line 427, and the wasm32 upper-cap
421    /// arm at line 449) — four open-coded field-accesses that
422    /// expressed no compile-time link back to the typed slot. A
423    /// future extension of the `:limits :memory` axis to a richer
424    /// author surface — a per-instance memory-declaration override
425    /// the operator pins through a future ComputeUnit CR-side
426    /// `spec.limits.memory` overlay, a split of the single `u64`
427    /// byte-cap into a `{min, max}` pair once wasm32's `(memory M N)`
428    /// two-arg form promotes past its current single-`max` typed
429    /// bound, a wasm64 promotion once the wasm-engine grows past the
430    /// wasm32 4 GiB structural ceiling — would have had to be
431    /// threaded through every open-coded copy in lockstep or the
432    /// emptiness predicate and the validate call would silently
433    /// disagree on which cap a given [`LimitsSpec`] resolves to.
434    /// Lifting the resolution to a typed method on the substrate
435    /// primitive means every downstream consumer of the Servico's
436    /// per-`:limits` byte-cap surface reaches for exactly one typed
437    /// dispatch — the resolver's accept-set migrates as a unit on any
438    /// future axis addition.
439    ///
440    /// First `Option<Copy-T>`-return accessor on the M2 slot family
441    /// (peer of the sibling per-`:politicas` [`crate::MeshPolicy::mtls_required`]
442    /// c0110f1 `Option<bool>` accessor, per-`:politicas`
443    /// [`crate::MeshPolicy::retries`] bdfb399 `Option<u32>` accessor,
444    /// and per-`:politicas` [`crate::MeshPolicy::timeout`] 7073d0f
445    /// `Option<Duration>` accessor on the M3 mesh-slot family — same
446    /// "one typed dispatch on the substrate primitive, thin
447    /// projections at each consumer" discipline extended onto the
448    /// peer per-`:limits` typed-`u64` optional-scalar axis; opens the
449    /// "optional per-slot Copy-T scalar" projection pattern the
450    /// sibling per-`:limits` `:fuel` (Option<u64>) / `:wall-clock`
451    /// (Option<Duration>) / `:cpu` (Option<u32>) future lifts fold
452    /// on). Named `memory()` to match the storage field's name; the
453    /// accessor's identity maps onto the canonical Lunatic-shaped
454    /// `theory/INSPIRATIONS.md` §III.1 vocabulary the slot's docstring
455    /// already carries.
456    #[must_use]
457    pub const fn memory(&self) -> Option<u64> {
458        self.memory
459    }
460
461    /// Substrate-canonical per-`:limits` `:fuel` wasmtime-per-call
462    /// wasm-instruction budget scalar accessor every consumer of the
463    /// Servico's `wasmtime::Store::set_fuel` propagation keys off —
464    /// returns the author-declared `:limits :fuel` typed
465    /// wasm-instruction budget verbatim as an `Option<u64>`, copied
466    /// out of the typed slot's own `Option<u64>` storage
467    /// (`Option<u64>` is `Copy`, so the accessor returns by value; no
468    /// borrow of `&self` past the call). `None` when the slot is
469    /// absent (the "no fuel budget declared — engine-default applies,
470    /// today the pre-M2 unbounded-fuel-counter shape" arm the
471    /// module-level docstring names on [`LimitsSpec::fuel`] itself —
472    /// [`LimitsSpec::is_empty`]'s `fuel().is_none()` arm reads this
473    /// predicate too, so an authored-but-unset `:limits (:fuel ())`
474    /// round-trips to a `servico_m2_overlay` emission structurally
475    /// identical to one that omits the slot entirely).
476    ///
477    /// The `:limits :fuel` slot carries the "per-call wasm-instruction
478    /// budget" wasmtime-shaped sandboxing contract
479    /// (`theory/INSPIRATIONS.md` §III.1 — Lunatic's supervised
480    /// wasm-`Store`-per-process fuel accounting, translated onto
481    /// pleme-io's typed `:limits` slot) — the typed slot's
482    /// `Option<u64>` accept-set (zero-floor rejected through
483    /// [`LimitsError::FuelZero`] because wasmtime traps the first
484    /// instruction at `fuel=0`, upper-bounded by [`LIMITS_FUEL_MAX`]
485    /// (10¹² wasm instructions — the operationally-reachable
486    /// per-call budget within the sibling [`LIMITS_WALL_CLOCK_MAX`]
487    /// 1h ceiling)) maps onto the wasmtime `Store::set_fuel` call
488    /// the M2.5 wasm-engine wires per outermost call and, via
489    /// [`crate::render::servico_m2_overlay`], onto the
490    /// `pleme-computeunit` Helm-library-chart values sub-block's
491    /// `limits.fuel` key that lands as the `ComputeUnit` CR's
492    /// `spec.limits.fuel` field.
493    ///
494    /// Prior to this lift the `.fuel` field was accessed inline at
495    /// two sites inside `impl LimitsSpec` — [`LimitsSpec::is_empty`]'s
496    /// `self.fuel.is_none()` arm and [`LimitsSpec::validate`]'s
497    /// `if let Some(f) = self.fuel { … }` zero-floor + upper-cap
498    /// bracket arm — two open-coded field-accesses that expressed no
499    /// compile-time link back to the typed slot. A future extension
500    /// of the `:limits :fuel` axis to a richer author surface — a
501    /// per-instance `ComputeUnit` CR-side `spec.limits.fuel` overlay
502    /// the operator pins per-cluster, a wasm-instruction-count →
503    /// wasmtime-fuel-unit rescale once the fuel-tracking backend
504    /// switches from Cranelift's implicit 1:1 count to a
505    /// per-opcode-weighted budget, a split of the single
506    /// per-outermost-call `u64` budget into a `{per_call, per_second}`
507    /// pair once the wasm-engine grows a sustained-throughput cap —
508    /// would have had to be threaded through every open-coded copy in
509    /// lockstep or the emptiness predicate and the validate call
510    /// would silently disagree on which fuel budget a given
511    /// [`LimitsSpec`] resolves to. Lifting the resolution to a typed
512    /// method on the substrate primitive means every downstream
513    /// consumer of the Servico's per-`:limits` fuel-budget surface
514    /// reaches for exactly one typed dispatch — the resolver's
515    /// accept-set migrates as a unit on any future axis addition.
516    ///
517    /// Second `Option<Copy-T>`-return accessor on the M2 slot family
518    /// (peer of the sibling per-`:limits` [`LimitsSpec::memory`]
519    /// (620c067) `Option<u64>` accessor — same typed-`u64`
520    /// optional-scalar shape, extended to the peer per-`:limits`
521    /// wasm-instruction-budget axis; sibling to
522    /// [`crate::MeshPolicy::mtls_required`] (c0110f1) / [`crate::MeshPolicy::retries`]
523    /// (bdfb399) / [`crate::MeshPolicy::timeout`] (7073d0f) on the
524    /// closed M3 mesh-slot `Option<Copy-T>` accessor family). The
525    /// pair `(memory(), fuel())` jointly projects the two `Option<u64>`
526    /// axes every M2 `:limits` consumer that fans on
527    /// wasm-linear-memory-cap + wasm-fuel-budget keys off. Two of the
528    /// four `:limits` axes now route through a typed dispatch on the
529    /// substrate primitive; the two remaining (`wall_clock:
530    /// Option<Duration>`, `cpu: Option<u32>`) fold on the same
531    /// one-line accessor + is_empty-arm-route + validate-arm-route +
532    /// three-test pattern. Named `fuel()` to match the storage field's
533    /// name; the accessor's identity maps onto the canonical
534    /// wasmtime-`Store::set_fuel`-shaped vocabulary the slot's
535    /// docstring already carries.
536    #[must_use]
537    pub const fn fuel(&self) -> Option<u64> {
538        self.fuel
539    }
540
541    /// Substrate-canonical per-`:limits` `:wall-clock` wasmtime-per-call
542    /// wall-clock deadline scalar accessor every consumer of the
543    /// Servico's `wasmtime::Store::epoch_deadline_*` / `wasi:clocks`
544    /// propagation keys off — returns the author-declared `:limits
545    /// :wall-clock` typed `Duration` verbatim as an `Option<Duration>`,
546    /// copied out of the typed slot's own `Option<Duration>` storage
547    /// (`Duration` is `Copy`, so `Option<Duration>` is `Copy` and the
548    /// accessor returns by value; no borrow of `&self` past the call).
549    /// `None` when the slot is absent (the "no wall-clock deadline
550    /// declared — engine-default applies, today the pre-M2
551    /// unbounded-wall-clock shape" arm the module-level docstring names
552    /// on [`LimitsSpec::wall_clock`] itself — [`LimitsSpec::is_empty`]'s
553    /// `wall_clock().is_none()` arm reads this predicate too, so an
554    /// authored-but-unset `:limits (:wall-clock ())` round-trips to a
555    /// `servico_m2_overlay` emission structurally identical to one that
556    /// omits the slot entirely).
557    ///
558    /// The `:limits :wall-clock` slot carries the "per-outermost-call
559    /// wall-clock deadline" wasmtime-shaped sandboxing contract
560    /// (`theory/INSPIRATIONS.md` §III.1 — Lunatic's supervised
561    /// wasm-`Store`-per-process epoch-deadline accounting, translated
562    /// onto pleme-io's typed `:limits` slot) — the typed slot's
563    /// `Option<Duration>` accept-set (zero-floor rejected through
564    /// [`LimitsError::WallClockZero`] because a zero deadline traps the
565    /// first instruction; integer-millisecond granularity enforced
566    /// through [`LimitsError::WallClockNotCanonical`] because the
567    /// duration codec's canonical form emits `"1500ms"` not `"1.5s"`
568    /// and the operator's wall-clock scheduler quantizes at
569    /// milliseconds; upper-bounded by [`LIMITS_WALL_CLOCK_MAX`] (1h —
570    /// the coarsest per-call deadline any operationally-reachable
571    /// Servico can honor without spanning multiple scheduler epochs))
572    /// maps onto the wasmtime `Store::epoch_deadline_*` call the M2.5
573    /// wasm-engine wires per outermost call and, via
574    /// [`crate::render::servico_m2_overlay`], onto the
575    /// `pleme-computeunit` Helm-library-chart values sub-block's
576    /// `limits.wallClock` key that lands as the `ComputeUnit` CR's
577    /// `spec.limits.wallClock` field.
578    ///
579    /// Prior to this lift the `.wall_clock` field was accessed inline at
580    /// two sites inside `impl LimitsSpec` — [`LimitsSpec::is_empty`]'s
581    /// `self.wall_clock.is_none()` arm and [`LimitsSpec::validate`]'s
582    /// `if let Some(w) = self.wall_clock { … }` zero-floor +
583    /// canonical-form + upper-cap bracket arm — two open-coded
584    /// field-accesses that expressed no compile-time link back to the
585    /// typed slot. A future extension of the `:limits :wall-clock` axis
586    /// to a richer author surface — a per-instance `ComputeUnit`
587    /// CR-side `spec.limits.wallClock` overlay the operator pins
588    /// per-cluster, a wall-clock-vs-monotonic-clock discriminator once
589    /// the wasm-engine grows a `:limits (:wall-clock (:kind monotonic
590    /// …))` axis, a split of the single per-outermost-call `Duration`
591    /// budget into a `{deadline, warn_at}` pair once the wasm-engine
592    /// grows a soft-deadline warning surface — would have had to be
593    /// threaded through every open-coded copy in lockstep or the
594    /// emptiness predicate and the validate call would silently
595    /// disagree on which deadline a given [`LimitsSpec`] resolves to.
596    /// Lifting the resolution to a typed method on the substrate
597    /// primitive means every downstream consumer of the Servico's
598    /// per-`:limits` wall-clock-deadline surface reaches for exactly
599    /// one typed dispatch — the resolver's accept-set migrates as a
600    /// unit on any future axis addition.
601    ///
602    /// Third `Option<Copy-T>`-return accessor on the M2 slot family
603    /// (peer of the sibling per-`:limits` [`LimitsSpec::memory`]
604    /// (620c067) `Option<u64>` accessor and per-`:limits`
605    /// [`LimitsSpec::fuel`] (795dee7) `Option<u64>` accessor — same
606    /// typed-optional-scalar shape extended to the peer per-`:limits`
607    /// wall-clock-deadline axis; sibling to [`crate::MeshPolicy::timeout`]
608    /// (7073d0f) on the closed M3 mesh-slot `Option<Duration>` accessor
609    /// axis — same typed-`Duration` shape extended from the M3
610    /// per-call-timeout to the M2 per-outermost-call deadline). The
611    /// triple `(memory(), fuel(), wall_clock())` jointly projects three
612    /// of the four `Option<Copy-T>` axes every M2 `:limits` consumer
613    /// that fans on wasm-linear-memory-cap + wasm-fuel-budget +
614    /// wall-clock-deadline keys off. Three of the four `:limits` axes
615    /// now route through a typed dispatch on the substrate primitive;
616    /// the one remaining (`cpu: Option<u32>`) folds on the same
617    /// one-line accessor + is_empty-arm-route + validate-arm-route +
618    /// three-test pattern in the next run, closing the M2 `:limits`
619    /// slot family's `Option<Copy-T>` accessor axis. Named `wall_clock()`
620    /// to match the storage field's name; the accessor's identity maps
621    /// onto the canonical wasmtime-`Store::epoch_deadline_*`-shaped
622    /// vocabulary the slot's docstring already carries.
623    #[must_use]
624    pub const fn wall_clock(&self) -> Option<Duration> {
625        self.wall_clock
626    }
627
628    /// Substrate-canonical per-`:limits` `:cpu` Kubernetes-millicore
629    /// soft cgroup-share scalar accessor every consumer of the Servico's
630    /// pod-spec `resources.requests.cpu` propagation keys off — returns
631    /// the author-declared `:limits :cpu` typed millicore magnitude
632    /// verbatim as an `Option<u32>`, copied out of the typed slot's own
633    /// `Option<u32>` storage (`Option<u32>` is `Copy`, so the accessor
634    /// returns by value; no borrow of `&self` past the call). `None`
635    /// when the slot is absent (the "no cpu share declared —
636    /// scheduler-default applies, today the pre-M2 unbounded-cpu-share
637    /// shape" arm the module-level docstring names on
638    /// [`LimitsSpec::cpu`] itself — [`LimitsSpec::is_empty`]'s
639    /// `cpu().is_none()` arm reads this predicate too, so an
640    /// authored-but-unset `:limits (:cpu ())` round-trips to a
641    /// `servico_m2_overlay` emission structurally identical to one that
642    /// omits the slot entirely).
643    ///
644    /// The `:limits :cpu` slot carries the "per-process soft cgroup-v2
645    /// CPU share" Kubernetes-scheduler-shaped sandboxing hint
646    /// (`theory/INSPIRATIONS.md` §III.1 — Lunatic's supervised
647    /// wasm-`Store`-per-process host-runtime CPU accounting, translated
648    /// onto pleme-io's typed `:limits` slot as a scheduler-facing
649    /// millicore request the pod's kubelet propagates to the container's
650    /// cgroup) — the typed slot's `Option<u32>` accept-set (zero-floor
651    /// rejected through [`LimitsError::CpuZero`] because a zero cgroup
652    /// share starves the process; upper-bounded by
653    /// [`LIMITS_CPU_MILLICORES_MAX`] (128 cores — the largest commercially-
654    /// common non-metal cloud Kubernetes node vCPU count on managed GKE
655    /// / EKS / AKS general-purpose SKUs)) maps onto the K8s pod spec's
656    /// `spec.containers[].resources.requests.cpu` field the
657    /// M2.5 `wasm-engine` host-runtime lands on the `ComputeUnit` CR-side
658    /// pod template and, via [`crate::render::servico_m2_overlay`], onto
659    /// the `pleme-computeunit` Helm-library-chart values sub-block's
660    /// `limits.cpu` key that lands as the `ComputeUnit` CR's
661    /// `spec.limits.cpu` field.
662    ///
663    /// Prior to this lift the `.cpu` field was accessed inline at two
664    /// sites inside `impl LimitsSpec` — [`LimitsSpec::is_empty`]'s
665    /// `self.cpu.is_none()` arm and [`LimitsSpec::validate`]'s
666    /// `if let Some(m) = self.cpu { … }` zero-floor + upper-cap bracket
667    /// arm — two open-coded field-accesses that expressed no
668    /// compile-time link back to the typed slot. A future extension of
669    /// the `:limits :cpu` axis to a richer author surface — a
670    /// per-instance `ComputeUnit` CR-side `spec.limits.cpu` overlay the
671    /// operator pins per-cluster, a split of the single `u32` millicore
672    /// request into a `{request, limit}` pair once the pod spec's
673    /// `resources.requests.cpu` / `resources.limits.cpu` distinction
674    /// promotes past its current single-request author surface, a
675    /// millicore → cgroup-v2 `cpu.weight` rescale once the operator's
676    /// scheduler-facing translation lands past its current kubelet
677    /// passthrough — would have had to be threaded through every
678    /// open-coded copy in lockstep or the emptiness predicate and the
679    /// validate call would silently disagree on which cgroup share a
680    /// given [`LimitsSpec`] resolves to. Lifting the resolution to a
681    /// typed method on the substrate primitive means every downstream
682    /// consumer of the Servico's per-`:limits` cpu-share surface reaches
683    /// for exactly one typed dispatch — the resolver's accept-set
684    /// migrates as a unit on any future axis addition.
685    ///
686    /// Fourth and final `Option<Copy-T>`-return accessor on the M2 slot
687    /// family (peer of the sibling per-`:limits` [`LimitsSpec::memory`]
688    /// (620c067) `Option<u64>` accessor, per-`:limits`
689    /// [`LimitsSpec::fuel`] (795dee7) `Option<u64>` accessor, and
690    /// per-`:limits` [`LimitsSpec::wall_clock`] (8cb717b)
691    /// `Option<Duration>` accessor — same typed-optional-scalar shape
692    /// extended to the peer per-`:limits` cgroup-cpu-share axis; sibling
693    /// to [`crate::MeshPolicy::mtls_required`] (c0110f1) /
694    /// [`crate::MeshPolicy::retries`] (bdfb399) /
695    /// [`crate::MeshPolicy::timeout`] (7073d0f) on the closed M3
696    /// mesh-slot `Option<Copy-T>` accessor family). The four-tuple
697    /// `(memory(), fuel(), wall_clock(), cpu())` jointly projects every
698    /// `Option<Copy-T>` axis on the M2 `:limits` slot every consumer
699    /// that fans on wasm-linear-memory-cap + wasm-fuel-budget +
700    /// wall-clock-deadline + cgroup-cpu-share keys off — closes the M2
701    /// `:limits` slot family's `Option<Copy-T>` accessor axis (the
702    /// last unlifted `:limits` field-access site on the M2 slot family;
703    /// every axis now routes through a typed dispatch on the substrate
704    /// primitive, with no open-coded field access anywhere on the impl).
705    /// Named `cpu()` to match the storage field's name; the accessor's
706    /// identity maps onto the canonical Kubernetes-`resources.requests.cpu`-
707    /// shaped vocabulary the slot's docstring already carries.
708    #[must_use]
709    pub const fn cpu(&self) -> Option<u32> {
710        self.cpu
711    }
712
713    /// Reject operationally-meaningless zero values on every declared
714    /// axis. Each axis remains optional — omitting a field expresses
715    /// "no bound on this axis"; the bug being closed is *carrying* a
716    /// zero value, which the wasm-engine consumes as "trap the first
717    /// instruction" / "instantiation refused" / "immediate timeout"
718    /// rather than the author's intended "an unspecified bound".
719    ///
720    /// Mirrors the discipline applied to `:politicas` axes in
721    /// `AplicacaoSpec::validate` and to `SupervisorSpec::max_restarts`
722    /// — every typed value carried by a slot is either absent or
723    /// meaningfully non-zero.
724    pub fn validate(&self) -> Result<(), LimitsError> {
725        // Route the `:memory` axis's four value-shape gates
726        // (zero-floor → wasm32-page-floor → wasm32-address-cap →
727        // page-multiple) through the substrate helper
728        // [`crate::render::require_positive_quantum_multiple_bounded_u64`]
729        // rather than four sequential inline
730        // `if let Some(m) = self.memory()` guards each restating one
731        // arm. Brings the `:memory` axis onto the same "one substrate
732        // helper per typed axis" discipline the peer `:fuel` (routed
733        // through [`crate::render::require_positive_bounded_u64`]),
734        // `:wall-clock` (through
735        // [`crate::render::require_positive_canonical_bounded_duration`]),
736        // and `:cpu` (through
737        // [`crate::render::require_positive_bounded_u32`]) axes
738        // already carry — every `LimitsSpec::validate` axis is now
739        // exactly one typed-helper dispatch, with the four-arm
740        // ordering (zero → below-quantum → cap → not-multiple)
741        // promoted from a per-site convention four inline blocks
742        // re-derived by hand to a structural contract on the
743        // substrate primitive. Byte-equal today: the helper fires the
744        // same four arms in the same canonical order at the same
745        // boundary values, threading the offending byte count into
746        // the same `MemoryBelowWasm32Page` / `MemoryExceedsWasm32Cap`
747        // / `MemoryNotPageMultiple` discriminator fields the four
748        // pre-lift inline arms already carried, so every existing
749        // per-arm test in this module continues to pin the same
750        // shape unchanged. Pinned end-to-end by
751        // `validate_memory_axis_routes_through_quantum_multiple_bounded_helper`.
752        if let Some(m) = self.memory() {
753            crate::render::require_positive_quantum_multiple_bounded_u64(
754                m,
755                LIMITS_MEMORY_WASM32_PAGE_BYTES,
756                LIMITS_MEMORY_WASM32_MAX_BYTES,
757                || LimitsError::MemoryZero,
758                |bytes| LimitsError::MemoryBelowWasm32Page { bytes },
759                |bytes| LimitsError::MemoryExceedsWasm32Cap { bytes },
760                |bytes| LimitsError::MemoryNotPageMultiple { bytes },
761            )?;
762        }
763        // Zero-floor + upper-cap bracket on the typed `:fuel` axis. See
764        // [`crate::render::require_positive_bounded_u64`] for the
765        // ordering discipline (zero-floor arm strictly precedes cap arm
766        // so `Some(0)` surfaces the self-locating `FuelZero` diagnostic
767        // with its omit-axis remediation directly named, not the
768        // misleading `0 > LIMITS_FUEL_MAX == false` cap-arm miss).
769        // Until this bracket landed the `Option<u64>` slot accepted any
770        // value past zero (the parser's only upper bound was `u64::MAX`),
771        // so `(:fuel 18446744073709551615)` round-tripped cleanly
772        // through serde and the per-process CSE invariant (no value the
773        // wasm-engine's fuel counter can't honor as a meaningful budget
774        // before the sibling `:wall-clock` deadline fires) was a
775        // runtime, not build-time, contract on every above-cap input
776        // — the canonical declared-but-no-op footgun the sibling
777        // [`LimitsError::MemoryExceedsWasm32Cap`] /
778        // [`LimitsError::WallClockExceedsCap`] /
779        // [`LimitsError::CpuExceedsCap`] arms close on the peer
780        // "cannot be honored" / "unschedulable hint" /
781        // "nominal-only deadline" shapes, the peer
782        // [`crate::AplicacaoError::PolicyTimeoutExceedsCap`] /
783        // [`crate::AplicacaoError::PolicyBreakerWindowExceedsCap`] /
784        // [`crate::AplicacaoError::PolicyRateLimitExceedsCap`] arms
785        // close on the no-op-deadline / lifetime-counter / no-op-limiter
786        // shapes, and the
787        // [`crate::SupervisorError::MaxRestartsExceedsCap`] arm closes
788        // on the no-op-supervisor shape. The four `:limits` axes are
789        // now uniformly bracketed top and bottom (`:memory` in
790        // `LIMITS_MEMORY_WASM32_PAGE_BYTES..=LIMITS_MEMORY_WASM32_MAX_BYTES`,
791        // `:fuel` in `1..=LIMITS_FUEL_MAX`, `:wall-clock` in
792        // `1ms..=LIMITS_WALL_CLOCK_MAX`, `:cpu` in
793        // `1..=LIMITS_CPU_MILLICORES_MAX`).
794        if let Some(f) = self.fuel() {
795            crate::render::require_positive_bounded_u64(
796                f,
797                LIMITS_FUEL_MAX,
798                || LimitsError::FuelZero,
799                |fuel| LimitsError::FuelExceedsCap { fuel },
800            )?;
801        }
802        if let Some(w) = self.wall_clock() {
803            // Zero-floor + integer-millisecond canonical-form +
804            // upper-cap bracket on the typed `:wall-clock` axis. See
805            // [`crate::render::require_positive_canonical_bounded_duration`]
806            // for the full three-arm ordering discipline (zero-floor
807            // strictly precedes canonical-form so `Duration::ZERO`
808            // surfaces the self-locating `WallClockZero` diagnostic;
809            // canonical-form strictly precedes the cap arm so a
810            // sub-millisecond above-cap value surfaces the more
811            // fundamental round-trip-shape diagnostic first) and the
812            // three peer typed-`Duration` sites that share this
813            // canonical bracket ([`crate::MeshPolicy::timeout`],
814            // [`crate::CircuitBreaker::window`],
815            // [`crate::SupervisorSpec::restart_window`]). Every
816            // validated value lies in `1ms..=LIMITS_WALL_CLOCK_MAX`
817            // (1ms..=1h), integer-millisecond granularity.
818            crate::render::require_positive_canonical_bounded_duration(
819                w,
820                LIMITS_WALL_CLOCK_MAX,
821                || LimitsError::WallClockZero,
822                |wall_clock| LimitsError::WallClockNotCanonical { wall_clock },
823                |wall_clock| LimitsError::WallClockExceedsCap { wall_clock },
824            )?;
825        }
826        // Zero-floor + upper-cap bracket on the typed `:cpu` axis. See
827        // [`crate::render::require_positive_bounded_u32`] for the
828        // ordering discipline (zero-floor arm strictly precedes cap arm
829        // so `Some(0)` surfaces the self-locating `CpuZero` diagnostic
830        // with its omit-axis remediation directly named, not the
831        // misleading `0 > LIMITS_CPU_MILLICORES_MAX == false` cap-arm
832        // miss). The bracket set is `1..=LIMITS_CPU_MILLICORES_MAX`
833        // (128 cores = 128_000 millicores — the largest commercially-
834        // common non-metal cloud Kubernetes node vCPU count). Until
835        // this bracket landed the millicore codec accepted any
836        // `Option<u32>` past zero (the prior numeric-zero arm's only
837        // floor), so `(:cpu "1000000m")` (1000 cores) round-tripped
838        // cleanly through serde and the per-axis CSE invariant (no
839        // value the Kubernetes scheduler can't honor) was a runtime,
840        // not build-time, contract on every above-cap input: the
841        // `pleme-computeunit` chart's `resources.requests.cpu` landed
842        // verbatim, the pod sat `Pending` indefinitely with a `0/N
843        // nodes are available: N Insufficient cpu` event, and the
844        // typed `:cpu` slot became an unschedulable hint far from the
845        // source caixa.lisp. Closes the same gap the wasm32-wasip2
846        // upper ceiling closes on the `:memory` axis — the typed `:cpu`
847        // axis is now operationally bracketed. Peer with every sibling
848        // cap arm on this surface ([`LimitsError::MemoryExceedsWasm32Cap`],
849        // [`LimitsError::WallClockExceedsCap`],
850        // [`crate::AplicacaoError::PolicyTimeoutExceedsCap`],
851        // [`crate::AplicacaoError::PolicyRetriesExceedsCap`],
852        // [`crate::AplicacaoError::PolicyBreakerMaxFailuresExceedsCap`],
853        // [`crate::AplicacaoError::PolicyBreakerWindowExceedsCap`],
854        // [`crate::AplicacaoError::PolicyRateLimitExceedsCap`],
855        // [`crate::SupervisorError::MaxRestartsExceedsCap`]).
856        if let Some(m) = self.cpu() {
857            crate::render::require_positive_bounded_u32(
858                m,
859                LIMITS_CPU_MILLICORES_MAX,
860                || LimitsError::CpuZero,
861                |millicores| LimitsError::CpuExceedsCap { millicores },
862            )?;
863        }
864        Ok(())
865    }
866}
867
868#[derive(Debug, Error, PartialEq, Eq)]
869pub enum LimitsError {
870    #[error("byte-size: missing magnitude in {0:?}")]
871    EmptyByteSize(String),
872    #[error("byte-size: unknown unit {unit:?} (expected one of B, KB, MB, GB, KiB, MiB, GiB)")]
873    UnknownByteUnit { unit: String },
874    #[error("byte-size: failed to parse magnitude {0:?}")]
875    BadByteMagnitude(String),
876    #[error(
877        "byte-size: magnitude {value:?} is not a non-negative integer — the canonical \
878         authoring form for `:limits :memory` is `<integer><unit>` (e.g. `\"1024\"`, \
879         `\"64MiB\"`, `\"1GiB\"`) with no decimal point and no leading `+` sign. A \
880         fractional / decimal-shaped magnitude (`\"1.5KiB\"`, `\"1.0MiB\"`, `\"0.5GiB\"`, \
881         `\"+1024\"`) round-trips through `render_byte_size` to a *different* canonical \
882         form (`\"1536\"`, `\"1MiB\"`, `\"512MiB\"`, `\"1KiB\"`) on first serialize — \
883         breaking the THEORY.md §V.2.7 render-determinism contract every typed slot \
884         carries. Pick an integer magnitude in the unit that divides cleanly (write \
885         `\"1536\"` instead of `\"1.5KiB\"`; `\"512MiB\"` instead of `\"0.5GiB\"`)"
886    )]
887    NonIntegerByteMagnitude { value: String },
888    #[error(
889        "byte-size: magnitude {value:?} has a non-canonical leading zero — the canonical \
890         authoring form for `:limits :memory` is `<integer><unit>` (e.g. `\"64MiB\"`, \
891         `\"1GiB\"`, `\"512KiB\"`, `\"1024\"`) with no leading-zero padding on the magnitude. \
892         A leading-zero magnitude (`\"064MiB\"`, `\"01024\"`, `\"00KiB\"`, `\"0500MB\"`) round-trips \
893         through `render_byte_size` to a *different* canonical form (`\"64MiB\"`, `\"1KiB\"`, \
894         `\"0\"`, `\"500MB\"`) on first serialize — breaking the THEORY.md Part V \
895         render-determinism contract every typed slot carries. Strip the leading zeros \
896         (write `\"64MiB\"` instead of `\"064MiB\"`)"
897    )]
898    LeadingZeroByteMagnitude { value: String },
899    #[error(
900        "byte-size: value {value:?} contains whitespace byte 0x{byte:02x} — the canonical \
901         authoring form for `:limits :memory` is `<integer><unit>` (e.g. `\"64MiB\"`, \
902         `\"1GiB\"`, `\"512KiB\"`, `\"1024\"`) with no whitespace bytes anywhere. A \
903         whitespace-carrying shape (`\" 64MiB\"`, `\"64MiB \"`, `\"64 MiB\"`, `\"\\t64MiB\"`, \
904         `\"64MiB\\n\"`) round-trips through `render_byte_size` to a *different* canonical \
905         form (`\"64MiB\"`) on first serialize — breaking the THEORY.md Part V \
906         render-determinism contract every typed slot carries. Strip every whitespace byte \
907         (write `\"64MiB\"` verbatim)"
908    )]
909    WhitespaceInByteSize { value: String, byte: u8 },
910    #[error(
911        "byte-size: value {value:?} contains a non-ASCII Unicode whitespace character \
912         {ch:?} (U+{codepoint:04X}) — the canonical authoring form for `:limits :memory` \
913         is `<integer><unit>` (e.g. `\"64MiB\"`, `\"1GiB\"`, `\"512KiB\"`, `\"1024\"`) \
914         with no whitespace characters anywhere (ASCII or Unicode). A non-ASCII-whitespace-\
915         carrying shape (`\"\\u{{00A0}}64MiB\"` — paste-from-typography NBSP prefix; \
916         `\"64MiB\\u{{2028}}\"` — paste-from-web-doc line-separator suffix; \
917         `\"64\\u{{2003}}MiB\"` — paste-from-typography EM-SPACE between magnitude and \
918         unit) survives the pre-existing `u8::is_ascii_whitespace` byte-scan (none of \
919         its bytes match the ASCII whitespace set) but `str::trim` (which uses \
920         `char::is_whitespace` — the Unicode `White_Space` property, strictly wider than \
921         the ASCII byte set) silently strips it at parse entry, and the value round-trips \
922         through `render_byte_size` to a *different* canonical form (`\"64MiB\"`) on \
923         first serialize — breaking the THEORY.md Part V render-determinism contract \
924         every typed slot carries. Strip every non-ASCII whitespace character (write \
925         `\"64MiB\"` verbatim with only ASCII bytes)"
926    )]
927    NonAsciiWhitespaceInByteSize {
928        value: String,
929        ch: char,
930        codepoint: u32,
931    },
932    #[error("duration: missing magnitude in {0:?}")]
933    EmptyDuration(String),
934    #[error("duration: unknown unit {unit:?} (expected one of ms, s, m, h)")]
935    UnknownDurationUnit { unit: String },
936    #[error("duration: failed to parse magnitude {0:?}")]
937    BadDurationMagnitude(String),
938    #[error(
939        "duration: magnitude {value:?} is not a non-negative integer — the canonical \
940         authoring form for `:limits :wall-clock` is `<integer><unit>` (e.g. `\"30s\"`, \
941         `\"500ms\"`, `\"2m\"`, `\"1h\"`) with no decimal point and no leading `+` sign. A \
942         fractional / decimal-shaped magnitude (`\"1.5s\"`, `\"1.0s\"`, `\"0.5m\"`, \
943         `\"+30s\"`, `\"-30s\"`) round-trips through `render_duration` to a *different* \
944         canonical form (`\"1500ms\"`, `\"1s\"`, `\"30s\"`, `\"30s\"`) on first serialize \
945         — breaking the THEORY.md Part V render-determinism contract every typed slot \
946         carries. Pick an integer magnitude in the unit that divides cleanly (write \
947         `\"1500ms\"` instead of `\"1.5s\"`; `\"30s\"` instead of `\"0.5m\"`)"
948    )]
949    NonIntegerDurationMagnitude { value: String },
950    #[error(
951        "duration: magnitude {value:?} has a non-canonical leading zero — the canonical \
952         authoring form for `:limits :wall-clock` is `<integer><unit>` (e.g. `\"30s\"`, \
953         `\"500ms\"`, `\"2m\"`, `\"1h\"`) with no leading-zero padding on the magnitude. \
954         A leading-zero magnitude (`\"030s\"`, `\"00s\"`, `\"01h\"`, `\"0500ms\"`) round-trips \
955         through `render_duration` to a *different* canonical form (`\"30s\"`, `\"0s\"`, \
956         `\"1h\"`, `\"500ms\"`) on first serialize — breaking the THEORY.md Part V \
957         render-determinism contract every typed slot carries. Strip the leading zeros \
958         (write `\"30s\"` instead of `\"030s\"`)"
959    )]
960    LeadingZeroDurationMagnitude { value: String },
961    #[error(
962        "duration: value {value:?} contains whitespace byte 0x{byte:02x} — the canonical \
963         authoring form for `:limits :wall-clock` is `<integer><unit>` (e.g. `\"30s\"`, \
964         `\"500ms\"`, `\"2m\"`, `\"1h\"`) with no whitespace bytes anywhere. A \
965         whitespace-carrying shape (`\" 30s\"`, `\"30s \"`, `\"30 s\"`, `\"\\t30s\"`, \
966         `\"30s\\n\"`) round-trips through `render_duration` to a *different* canonical form \
967         (`\"30s\"`) on first serialize — breaking the THEORY.md Part V render-determinism \
968         contract every typed slot carries. Strip every whitespace byte (write `\"30s\"` \
969         verbatim)"
970    )]
971    WhitespaceInDuration { value: String, byte: u8 },
972    #[error(
973        "duration: value {value:?} contains a non-ASCII Unicode whitespace character \
974         {ch:?} (U+{codepoint:04X}) — the canonical authoring form for `:limits :wall-clock` \
975         is `<integer><unit>` (e.g. `\"30s\"`, `\"500ms\"`, `\"2m\"`, `\"1h\"`) with no \
976         whitespace characters anywhere (ASCII or Unicode). A non-ASCII-whitespace-\
977         carrying shape (`\"\\u{{00A0}}30s\"` — paste-from-typography NBSP prefix; \
978         `\"30s\\u{{2028}}\"` — paste-from-web-doc line-separator suffix; \
979         `\"30\\u{{2003}}s\"` — paste-from-typography EM-SPACE between magnitude and \
980         unit) survives the pre-existing `u8::is_ascii_whitespace` byte-scan (none of \
981         its bytes match the ASCII whitespace set) but `str::trim` (which uses \
982         `char::is_whitespace` — the Unicode `White_Space` property, strictly wider than \
983         the ASCII byte set) silently strips it at parse entry, and the value round-trips \
984         through `render_duration` to a *different* canonical form (`\"30s\"`) on first \
985         serialize — breaking the THEORY.md Part V render-determinism contract every \
986         typed slot carries. Strip every non-ASCII whitespace character (write `\"30s\"` \
987         verbatim with only ASCII bytes)"
988    )]
989    NonAsciiWhitespaceInDuration {
990        value: String,
991        ch: char,
992        codepoint: u32,
993    },
994    #[error("millicores: bad value {0:?} (expected `<int>m` or `<int>`)")]
995    BadMillicores(String),
996    #[error(
997        "millicores: magnitude {value:?} is not a non-negative integer — the canonical \
998         authoring form for `:limits :cpu` is `<integer>m` (Kubernetes millicores, e.g. \
999         `\"500m\"` for half a core, `\"2000m\"` for two cores) or the bare-core \
1000         shorthand `<integer>` (e.g. `\"2\"` = `\"2000m\"`), with no decimal point and \
1001         no leading `+` sign. A fractional / decimal-shaped magnitude (`\"1.5\"`, \
1002         `\"500.0m\"`, `\"+500m\"`, `\"-100m\"`) round-trips through `render_millicores` \
1003         to a *different* canonical form (`\"1500m\"`, `\"500m\"`, `\"500m\"`, \
1004         parse-rejection) on first serialize — breaking the THEORY.md Part V \
1005         render-determinism contract every typed slot carries. Pick an integer magnitude \
1006         in millicores (write `\"1500m\"` instead of `\"1.5\"`; `\"500m\"` instead of \
1007         `\"500.0m\"`)"
1008    )]
1009    NonIntegerMillicoreMagnitude { value: String },
1010    #[error(
1011        "millicores: magnitude {value:?} has a non-canonical leading zero — the canonical \
1012         authoring form for `:limits :cpu` is `<integer>m` (Kubernetes millicores, e.g. \
1013         `\"500m\"` for half a core, `\"2000m\"` for two cores) or the bare-core shorthand \
1014         `<integer>` (e.g. `\"2\"` = `\"2000m\"`) with no leading-zero padding on the \
1015         magnitude. A leading-zero magnitude (`\"0500m\"`, `\"00m\"`, `\"02\"`, `\"01500m\"`) \
1016         round-trips through `render_millicores` to a *different* canonical form (`\"500m\"`, \
1017         `\"0m\"`, `\"2000m\"`, `\"1500m\"`) on first serialize — breaking the THEORY.md Part \
1018         V render-determinism contract every typed slot carries. Strip the leading zeros \
1019         (write `\"500m\"` instead of `\"0500m\"`; `\"2\"` instead of `\"02\"`)"
1020    )]
1021    LeadingZeroMillicoreMagnitude { value: String },
1022    #[error(
1023        "millicores: value {value:?} contains whitespace byte 0x{byte:02x} — the canonical \
1024         authoring form for `:limits :cpu` is `<integer>m` (Kubernetes millicores, e.g. \
1025         `\"500m\"`, `\"2000m\"`) or the bare-core shorthand `<integer>` (e.g. `\"2\"`) \
1026         with no whitespace bytes anywhere. A whitespace-carrying shape (`\" 500m\"`, \
1027         `\"500m \"`, `\"500 m\"`, `\"\\t500m\"`, `\"500m\\n\"`) round-trips through \
1028         `render_millicores` to a *different* canonical form (`\"500m\"`) on first \
1029         serialize — breaking the THEORY.md Part V render-determinism contract every \
1030         typed slot carries. Strip every whitespace byte (write `\"500m\"` verbatim)"
1031    )]
1032    WhitespaceInMillicores { value: String, byte: u8 },
1033    #[error(
1034        "millicores: value {value:?} contains a non-ASCII Unicode whitespace character \
1035         {ch:?} (U+{codepoint:04X}) — the canonical authoring form for `:limits :cpu` is \
1036         `<integer>m` (Kubernetes millicores, e.g. `\"500m\"`, `\"2000m\"`) or the \
1037         bare-core shorthand `<integer>` (e.g. `\"2\"`) with no whitespace characters \
1038         anywhere (ASCII or Unicode). A non-ASCII-whitespace-carrying shape \
1039         (`\"\\u{{00A0}}500m\"` — paste-from-typography NBSP prefix; \
1040         `\"500m\\u{{2028}}\"` — paste-from-web-doc line-separator suffix; \
1041         `\"500\\u{{2003}}m\"` — paste-from-typography EM-SPACE between magnitude and \
1042         unit) survives the pre-existing `u8::is_ascii_whitespace` byte-scan (none of \
1043         its bytes match the ASCII whitespace set) but `str::trim` (which uses \
1044         `char::is_whitespace` — the Unicode `White_Space` property, strictly wider than \
1045         the ASCII byte set) silently strips it at parse entry, and the value round-trips \
1046         through `render_millicores` to a *different* canonical form (`\"500m\"`) on \
1047         first serialize — breaking the THEORY.md Part V render-determinism contract \
1048         every typed slot carries. Strip every non-ASCII whitespace character (write \
1049         `\"500m\"` verbatim with only ASCII bytes)"
1050    )]
1051    NonAsciiWhitespaceInMillicores {
1052        value: String,
1053        ch: char,
1054        codepoint: u32,
1055    },
1056    #[error(
1057        ":limits :memory must be > 0 — wasmtime StoreLimits refuses a zero memory cap; omit the field for unbounded"
1058    )]
1059    MemoryZero,
1060    #[error(
1061        ":limits :memory ({bytes} bytes) is below the wasm32-wasip2 linear-memory page size (64 KiB = 65536 bytes) — a sub-page cap cannot hold a single wasm linear memory page, so instantiation of any component declaring `(memory 1)` traps with `memory minimum size of 1 pages exceeds memory limits` and a `(memory 0)` component traps the first `memory.grow(1)`. Pin a value ≥ 64 KiB (e.g. `\"64KiB\"`, `\"1MiB\"`, `\"64MiB\"`) or omit the field for unbounded"
1062    )]
1063    MemoryBelowWasm32Page { bytes: u64 },
1064    #[error(
1065        ":limits :memory ({bytes} bytes) exceeds the wasm32-wasip2 linear-memory ceiling (4 GiB = 4294967296 bytes); pin a value ≤ 4 GiB or omit the field for unbounded"
1066    )]
1067    MemoryExceedsWasm32Cap { bytes: u64 },
1068    #[error(
1069        ":limits :memory ({bytes} bytes) carries a sub-page residue the wasm32-wasip2 \
1070         linear-memory model cannot honor — the wasm spec defines linear memory in \
1071         fixed 64 KiB pages (LIMITS_MEMORY_WASM32_PAGE_BYTES = 65536 bytes) and \
1072         wasmtime's StoreLimits::memory_size is consumed as a page-quantized ceiling: \
1073         the engine can grow at most floor({bytes} / 65536) pages, and the bytes in \
1074         [floor({bytes} / 65536) * 65536, {bytes}] are structural dead space the \
1075         runtime cannot honor. Pin a page-aligned value in 64KiB..=4GiB \
1076         (the canonical authoring magnitudes — `\"64KiB\"`, `\"128KiB\"`, `\"1MiB\"`, \
1077         `\"64MiB\"`, `\"1GiB\"`, `\"4GiB\"` — every power-of-1024 unit the byte-size \
1078         codec emits divides cleanly by the page size) or omit the field for unbounded"
1079    )]
1080    MemoryNotPageMultiple { bytes: u64 },
1081    #[error(
1082        ":limits :fuel must be > 0 — wasmtime traps the first instruction at fuel=0; omit the field for unbounded"
1083    )]
1084    FuelZero,
1085    #[error(
1086        ":limits :fuel ({fuel} instructions) exceeds the per-process ceiling \
1087         (LIMITS_FUEL_MAX = 1_000_000_000_000 = 10^12 wasm instructions) — a value \
1088         above this cap turns the typed per-call fuel counter into a no-op budget: \
1089         the sibling `:wall-clock` cap (LIMITS_WALL_CLOCK_MAX = 1h = 3600s) fires \
1090         before the fuel counter could ever be drained (wasmtime's documented \
1091         fuel-tracked execution rate sits at ~10^8–10^9 fuel-units per second on \
1092         modern x86_64 / aarch64 hosts running wasmtime through Cranelift, so the \
1093         largest realistic per-call fuel budget reachable within 1h sits at ~3.6 × \
1094         10^11–3.6 × 10^12 fuel-units, and a value above 10^12 is structurally \
1095         unreachable as a per-call counter), so the typed `:fuel` slot becomes a \
1096         declared-but-no-op contract far from the source caixa.lisp. Pin a value \
1097         in 1..=1_000_000_000_000 (the canonical caixa Servico runs in the \
1098         10^6..=10^9 fuel band — the in-tree `Caixa::template` documentation and \
1099         `caixa-feira` examples carry `:fuel 1_000_000` = 10^6, peer to \
1100         wasmtime's official `Store::set_fuel(1_000_000)` example in the wasmtime \
1101         book; production-shape per-request fuel budgets sit in the 10^7..=10^9 \
1102         band for compute-bound workloads) or omit :fuel to express `no per-call \
1103         fuel budget on this axis` (the wasm-engine then relies entirely on the \
1104         sibling `:wall-clock` cgroup / Kubernetes activeDeadlineSeconds deadline)"
1105    )]
1106    FuelExceedsCap { fuel: u64 },
1107    #[error(
1108        ":limits :wall-clock must be > 0 — a zero deadline expires before the call starts; omit the field for unbounded"
1109    )]
1110    WallClockZero,
1111    #[error(
1112        ":limits :wall-clock ({wall_clock:?}) carries a sub-millisecond residue the typed `:wall-clock` duration codec cannot round-trip — \
1113         the codec truncates to `as_millis()` before picking the canonical unit, so a value with `subsec_nanos() % 1_000_000 != 0` either \
1114         truncates on first serialize (e.g. `Duration::from_micros(1500)` → \"1ms\" → `Duration::from_millis(1)` ≠ original) or renders \
1115         as \"0s\" the `WallClockZero` arm then rejects on re-validate. Pin an integer-millisecond magnitude in the canonical authoring form \
1116         (`<integer><unit>` for unit ∈ {{ms, s, m, h}}, e.g. `\"500ms\"`, `\"30s\"`, `\"2m\"`, `\"1h\"`) or omit the field for unbounded"
1117    )]
1118    WallClockNotCanonical { wall_clock: Duration },
1119    #[error(
1120        ":limits :wall-clock ({wall_clock:?}) exceeds the per-process ceiling \
1121         (LIMITS_WALL_CLOCK_MAX = 1h = 3600s) — a value above this cap turns the typed \
1122         per-call deadline into a nominal-only contract (the wasm-engine's epoch-deadline \
1123         cancellation reaches for a `Duration` so long no realistic synchronous wasm call \
1124         can hit it), and the MESH-COMPOSITION §V \"no infinite blocking\" CSE invariant \
1125         degenerates to enforcement only at the per-Servico cgroup / Kubernetes \
1126         activeDeadlineSeconds layer — far above the per-call granularity the typed \
1127         `:limits :wall-clock` slot is meant to express. Pin a value in 1ms..=1h \
1128         (Envoy / Istio / Linkerd production per-request playbooks all recommend ≤ 60s; \
1129         AWS App Mesh / ingress-nginx typical ≤ 300s; the longest per-request \
1130         `proxy_read_timeout` ingress-nginx documents maxes out at the same 3600s ceiling) \
1131         or omit :wall-clock to express `no per-process deadline on this axis` (the \
1132         deadline then relies entirely on the cluster-level cgroup / pod \
1133         activeDeadlineSeconds bound)"
1134    )]
1135    WallClockExceedsCap { wall_clock: Duration },
1136    #[error(
1137        ":limits :cpu must be > 0m — a zero cgroup share starves the process; omit the field for unbounded"
1138    )]
1139    CpuZero,
1140    #[error(
1141        ":limits :cpu ({millicores}m) exceeds the per-process ceiling \
1142         (LIMITS_CPU_MILLICORES_MAX = 128_000m = 128 cores) — a value above this cap is \
1143         structurally unschedulable on every commercially-common managed-Kubernetes node \
1144         pool (GKE Standard / EKS managed / AKS default general-purpose SKU ladders top out \
1145         at 128 vCPU per node; AWS m7i.32xlarge / c7i.32xlarge, Azure HBv3-128rs, GCP \
1146         c3-standard-128 all sit at the same 128-vCPU ceiling), so the resulting \
1147         `pleme-computeunit` chart's `resources.requests.cpu` lands as a hint the \
1148         Kubernetes scheduler cannot bind to any node — the pod sits `Pending` indefinitely \
1149         with a `0/N nodes are available: N Insufficient cpu` event, and the typed `:cpu` \
1150         slot becomes an unschedulable contract far from the source caixa.lisp. The \
1151         wasm32-wasip2 single-threaded execution model the canonical caixa Servico targets \
1152         reinforces the structural argument: a single wasm component cannot saturate more \
1153         than one core, so even the Lunatic-style supervised-multi-process host bounds its \
1154         useful CPU request to the host node's vCPU count. Pin a value in 1m..=128000m \
1155         (the canonical caixa Servico runs in the 100m..=2000m band — every in-tree \
1156         example uses 500m; AWS App Mesh / Envoy / Istio per-pod CPU production playbooks \
1157         all sit ≤ 8000m / 8 cores; the longest documented per-Servico CPU request any \
1158         pleme-io substrate playbook recommends maxes at ~16 cores) or omit :cpu to \
1159         express `no per-process CPU hint on this axis` (the cgroup share then defaults to \
1160         the cluster-level `LimitRange` / `ResourceQuota` policy the operator pins on the \
1161         host namespace)"
1162    )]
1163    CpuExceedsCap { millicores: u32 },
1164}
1165
1166// ── byte-size codec ────────────────────────────────────────────────────
1167
1168fn parse_byte_size(s: &str) -> Result<u64, LimitsError> {
1169    // Whitespace-rejection arm — peer with the leading-`+` / fractional
1170    // arm below (`"+1024"`, `"1.5KiB"`) and the leading-zero arm below
1171    // (`"064MiB"`) on the same canonical-form render-determinism axis.
1172    // Until this gate landed the parser silently tolerated leading /
1173    // trailing / internal whitespace via the top-level `s.trim()` at
1174    // parse entry and the per-part `num_part.trim()` / `unit.trim()`
1175    // calls below, so every whitespace-carrying shape (`" 64MiB"` —
1176    // paste-from-aligned-doc / YAML-quoted-plain-scalar leading-space;
1177    // `"64MiB "` — paste-from-shell-history trailing-space; `"64 MiB"`
1178    // — paste-from-typography whitespace-between-magnitude-and-unit;
1179    // `"\t64MiB"` — paste-from-indented-doc / YAML-block-scalar tab
1180    // byte; `"64MiB\n"` — trailing newline from a multi-line paste)
1181    // parsed to the same 64 * 1024 * 1024 bytes and serde silently
1182    // round-tripped to `"64MiB"` on the next emit (a *different*
1183    // canonical string) — breaking the THEORY.md Part V
1184    // render-determinism contract every typed slot carries.
1185    //
1186    // The canonical author shape is `<integer><unit>` (or `<integer>`
1187    // for the bare-integer-as-bytes shorthand) with no whitespace
1188    // bytes anywhere — every string [`render_byte_size`] emits carries
1189    // none, so the parser's accepted set must match for serialize /
1190    // deserialize to round-trip losslessly. This gate makes the pre-
1191    // existing `s.trim()` / `num_part.trim()` / `unit.trim()` calls
1192    // below strict no-ops on the accepted set (every byte-position
1193    // match they would perform is now already trimmed away by the
1194    // accepted set itself), while the arm surfaces every rejected
1195    // whitespace-carrying shape with a typed `WhitespaceInByteSize`
1196    // diagnostic naming the offending byte and the canonical form the
1197    // author intended, peer with every prior canonical-form-drift arm
1198    // on this codec.
1199    //
1200    // Routed through the lifted
1201    // [`crate::render::find_ascii_whitespace_byte`] predicate — the
1202    // single source of truth every typed-magnitude codec in
1203    // caixa-core (`parse_byte_size` / `parse_duration` /
1204    // `parse_millicores` / `supervisor::duration_codec` /
1205    // `rate_limit_codec`) shares. `u8::is_ascii_whitespace()` at the
1206    // predicate covers the five WhatWG-conformant ASCII whitespace
1207    // bytes every downstream YAML / JSON / TOML parser can feed
1208    // through a quoted-scalar value verbatim — space (`0x20`), tab
1209    // (`0x09`), LF (`0x0A`), FF (`0x0C`), CR (`0x0D`) — deliberately
1210    // narrower than POSIX's `[:space:]` which also admits VT
1211    // (`0x0B`). Drift between any two codec sites' rejection set is
1212    // a single-edit fix at the shared predicate rather than five
1213    // independent scans diverging over time — same "single lifted
1214    // source of truth" discipline the peer non-ASCII arm below
1215    // (routed through [`crate::render::find_non_ascii_whitespace_char`])
1216    // carries on the strictly-complementary Unicode `White_Space`
1217    // class.
1218    if let Some(byte) = crate::render::find_ascii_whitespace_byte(s) {
1219        return Err(LimitsError::WhitespaceInByteSize {
1220            value: s.into(),
1221            byte,
1222        });
1223    }
1224    // Non-ASCII Unicode `White_Space` arm — the strictly-complementary
1225    // class the ASCII arm above cannot see. `str::trim` at the top of
1226    // the codec uses `char::is_whitespace` (the Unicode `White_Space`
1227    // property, strictly wider than the ASCII byte set), so an NBSP
1228    // (`\u{00A0}`) / LINE SEPARATOR (`\u{2028}`) / EM-SPACE
1229    // (`\u{2003}`) survives the byte-scan (its UTF-8 bytes are not in
1230    // `is_ascii_whitespace`), gets silently stripped by the top-level
1231    // `s.trim()` below, and the value round-trips through
1232    // `render_byte_size` to a *different* canonical form on the next
1233    // emit — breaking the THEORY.md Part V render-determinism
1234    // contract every typed slot carries. Same drift class across every
1235    // typed-magnitude codec in caixa-core; closed here (byte-size),
1236    // and at the peer sites (`parse_duration`,
1237    // `supervisor::duration_codec`, `rate_limit_codec`) through the
1238    // shared [`crate::render::find_non_ascii_whitespace_char`]
1239    // predicate — the "single lifted predicate across all four codec
1240    // sites in one follow-up run" the 24a8ad4 commit body's `Forward
1241    // compounding` bullet named as the next compounding step.
1242    if let Some(ch) = crate::render::find_non_ascii_whitespace_char(s) {
1243        return Err(LimitsError::NonAsciiWhitespaceInByteSize {
1244            value: s.into(),
1245            ch,
1246            codepoint: ch as u32,
1247        });
1248    }
1249    let s = s.trim();
1250    if s.is_empty() {
1251        return Err(LimitsError::EmptyByteSize(s.into()));
1252    }
1253    let split_at = s.find(|c: char| c.is_ascii_alphabetic()).unwrap_or(s.len());
1254    let (num_part, unit) = s.split_at(split_at);
1255    let num_trim = num_part.trim();
1256    // The canonical authoring form for `:limits :memory` is
1257    // `<integer><unit>` — every magnitude `render_byte_size` emits is a
1258    // non-negative integer with no decimal point and no leading sign,
1259    // so the parser's accepted set must match for serialize/deserialize
1260    // to round-trip without canonical-form drift. Until this gate
1261    // landed the parser accepted any `f64`-shaped magnitude
1262    // (`"1.5KiB"` → 1536 bytes, `"1.0MiB"` → 1MiB, `"0.5GiB"` → 512MiB,
1263    // `"+1024"` → 1024) and serde silently round-tripped the value to
1264    // a *different* canonical string on the next emit (`"1.5KiB"` →
1265    // 1536 → `"1536"`, `"1.0MiB"` → 1048576 → `"1MiB"`, `"0.5GiB"` →
1266    // 536870912 → `"512MiB"`, `"+1024"` → 1024 → `"1KiB"`) — breaking
1267    // the THEORY.md §V.2.7 render-determinism contract every typed slot
1268    // carries.
1269    //
1270    // Strict canonical form: every byte of the magnitude is an ASCII
1271    // digit (no `.`, no `+`, no `-`). On current Rust `u64::from_str`
1272    // permissively accepts a leading `+` (`"+1024"` → 1024) — that's a
1273    // canonical-drift shape `render_byte_size` never emits, so the
1274    // digit-only check is what closes the leading-sign class; relying
1275    // on `u64::from_str`'s strictness alone would silently admit it.
1276    // On non-digit-only inputs the gate distinguishes "non-canonical-
1277    // but-numeric" (parses as f64 or i64, so it's an authoring-shape
1278    // footgun) from "garbage" (parses as neither, so it's not a
1279    // numeric input at all) — the diagnostic names the offending
1280    // magnitude shape verbatim rather than collapsing both authoring
1281    // footguns into a single opaque `BadByteMagnitude`.
1282    //
1283    // Same canonical-form discipline
1284    // [`crate::AplicacaoSpec::validate_politicas`]'s
1285    // [`is_canonical_rate_limit_window`] gate (808017c) applies to the
1286    // rate-limit `:window` axis — the codec's accepted set matches its
1287    // emitted set, structurally.
1288    //
1289    // (Scientific-notation magnitudes like `"1e3KiB"` are also rejected,
1290    // but on a different arm: the parser splits on the first ASCII-
1291    // alphabetic byte, so the `e` is read as a unit prefix and the
1292    // input falls into the `UnknownByteUnit { unit: "e3KiB" }` branch
1293    // before this gate is consulted — that's the existing diagnostic
1294    // for the scientific-shape footgun, and this gate is additive to
1295    // it.)
1296    //
1297    // Routed through the lifted
1298    // [`crate::render::is_digit_only_magnitude`] predicate — the
1299    // single source of truth every typed-magnitude codec in
1300    // caixa-core (`parse_byte_size` / `parse_duration` /
1301    // `parse_millicores` / `supervisor::duration_codec` /
1302    // `rate_limit_codec`) shares. Drift between any two codec sites'
1303    // digit-only rejection set becomes a single-edit fix at the
1304    // shared predicate rather than five independent
1305    // `!<var>.is_empty() && <var>.bytes().all(|b| b.is_ascii_digit())`
1306    // scans diverging over time — same "single lifted source of truth"
1307    // discipline the peer canonical-form predicates
1308    // ([`crate::render::find_ascii_whitespace_byte`] /
1309    // [`crate::render::find_non_ascii_whitespace_char`] /
1310    // [`crate::render::is_leading_zero_padded_magnitude`]) carry on
1311    // the whitespace and leading-zero-padding drift-class axes.
1312    let digit_only = crate::render::is_digit_only_magnitude(num_trim);
1313    if !digit_only {
1314        // Distinguish "non-canonical-but-numeric" (`"1.5"`, `"1.0"`,
1315        // `"+1024"`, `"-1"`) from "garbage" (`"abc"`, `"--1"`) so the
1316        // diagnostic names the offending magnitude shape verbatim.
1317        // Use f64 + i64 fallbacks for the "numeric" detection so every
1318        // non-digit-only-but-parseable input lands on
1319        // `NonIntegerByteMagnitude` regardless of sign or fractionality.
1320        let numeric = num_trim.parse::<f64>().is_ok() || num_trim.parse::<i64>().is_ok();
1321        if numeric {
1322            return Err(LimitsError::NonIntegerByteMagnitude {
1323                value: num_trim.into(),
1324            });
1325        }
1326        return Err(LimitsError::BadByteMagnitude(num_part.into()));
1327    }
1328    // Leading-zero arm — peer with the `parse_duration` leading-zero
1329    // arm (39762d7), the `supervisor::duration_codec` leading-zero arm
1330    // (9178904) and the `rate_limit_codec` leading-zero arm (4f46830)
1331    // on the same canonical-form render-determinism axis. The
1332    // digit-only gate accepts `"0064MiB"`, `"01024"`, `"00KiB"`,
1333    // `"0500MB"` as `u64::from_str` parses them losslessly (= 64, 1024,
1334    // 0, 500), but `render_byte_size` emits the leading-zero-stripped
1335    // form (`"64MiB"`, `"1KiB"`, `"0"`, `"500MB"`) — a *different*
1336    // canonical string on the next emit, breaking the THEORY.md Part V
1337    // render-determinism contract the same way `"+1024"` did before the
1338    // leading-`+` arm landed. The single-byte magnitude `"0"` (or
1339    // `"0B"` / `"0KiB"`) round-trips losslessly through
1340    // `render_byte_size` (`render_byte_size(0)` emits `"0"`) — the
1341    // downstream semantic-zero gate [`LimitsError::MemoryZero`] refuses
1342    // zero-magnitude authoring at the typed-validate layer above, so
1343    // the single-byte `"0"` stays in the accepted set at this codec
1344    // layer and the diagnostic partitioning between canonical-form
1345    // drift (this arm) and semantic-zero (the downstream gate) remains
1346    // stable. Same codec-layer / typed-validate-layer partition the
1347    // peer codecs preserve.
1348    //
1349    // Routed through the lifted
1350    // [`crate::render::is_leading_zero_padded_magnitude`] predicate —
1351    // the single source of truth every typed-magnitude codec in
1352    // caixa-core (`parse_byte_size` / `parse_duration` /
1353    // `parse_millicores` / `supervisor::duration_codec` /
1354    // `rate_limit_codec`) shares. Drift between any two codec sites'
1355    // leading-zero rejection set becomes a single-edit fix at the
1356    // shared predicate rather than five independent
1357    // `s.len() > 1 && s.as_bytes()[0] == b'0'` scans diverging over
1358    // time — same "single lifted source of truth" discipline the
1359    // peer whitespace predicates
1360    // ([`crate::render::find_ascii_whitespace_byte`] /
1361    // [`crate::render::find_non_ascii_whitespace_char`]) carry on
1362    // their strictly-complementary axes.
1363    if crate::render::is_leading_zero_padded_magnitude(num_trim) {
1364        return Err(LimitsError::LeadingZeroByteMagnitude {
1365            value: num_trim.into(),
1366        });
1367    }
1368    // `digit_only` guarantees every byte is `[0-9]`, so the only way
1369    // u64::from_str can fail here is overflow (the magnitude exceeds
1370    // u64::MAX). Surface that as `BadByteMagnitude` with an overflow-
1371    // shaped wording so the diagnostic names the offending magnitude
1372    // verbatim rather than collapsing onto the non-canonical arm.
1373    let num: u64 = num_trim.parse::<u64>().map_err(|_| {
1374        LimitsError::BadByteMagnitude(format!("{num_trim} (digit-only magnitude overflows u64)"))
1375    })?;
1376    let multiplier: u64 = match unit.trim() {
1377        "" | "B" => 1,
1378        "KB" => 1_000,
1379        "MB" => 1_000_000,
1380        "GB" => 1_000_000_000,
1381        "KiB" => 1024,
1382        "MiB" => 1024 * 1024,
1383        "GiB" => 1024 * 1024 * 1024,
1384        other => {
1385            return Err(LimitsError::UnknownByteUnit { unit: other.into() });
1386        }
1387    };
1388    // Overflow surfaces as `BadByteMagnitude` (a u64-saturating
1389    // multiply would silently truncate to `u64::MAX` and then the
1390    // wasm32-cap gate at validate time would catch it — but a u64
1391    // overflow is a parse-shaped failure on the author's input, not a
1392    // domain-cap rejection on a well-formed value, so it surfaces here
1393    // as a parser diagnostic naming the offending magnitude × unit
1394    // pair rather than as `MemoryExceedsWasm32Cap { bytes: u64::MAX }`
1395    // far from the author's intent).
1396    num.checked_mul(multiplier).ok_or_else(|| {
1397        LimitsError::BadByteMagnitude(format!(
1398            "{num_trim}{unit_trim} overflows u64 (magnitude × unit > 2^64-1)",
1399            unit_trim = unit.trim()
1400        ))
1401    })
1402}
1403
1404fn render_byte_size(n: u64) -> String {
1405    // Prefer the largest power-of-1024 unit that divides cleanly; fall
1406    // back to bytes if nothing matches.
1407    const UNITS: &[(u64, &str)] = &[
1408        (1024 * 1024 * 1024, "GiB"),
1409        (1024 * 1024, "MiB"),
1410        (1024, "KiB"),
1411    ];
1412    for (mult, label) in UNITS {
1413        if n >= *mult && n % mult == 0 {
1414            return format!("{}{label}", n / mult);
1415        }
1416    }
1417    format!("{n}")
1418}
1419
1420fn ser_byte_size<S: Serializer>(v: &Option<u64>, s: S) -> Result<S::Ok, S::Error> {
1421    match v {
1422        Some(n) => s.serialize_str(&render_byte_size(*n)),
1423        None => s.serialize_none(),
1424    }
1425}
1426
1427fn de_byte_size<'de, D: Deserializer<'de>>(d: D) -> Result<Option<u64>, D::Error> {
1428    let opt: Option<String> = Option::deserialize(d)?;
1429    match opt {
1430        None => Ok(None),
1431        Some(s) => parse_byte_size(&s)
1432            .map(Some)
1433            .map_err(serde::de::Error::custom),
1434    }
1435}
1436
1437// ── duration codec ─────────────────────────────────────────────────────
1438
1439fn parse_duration(s: &str) -> Result<Duration, LimitsError> {
1440    // Whitespace-rejection arm — peer with the leading-`+` / fractional
1441    // arm below (`"+30s"`, `"1.5s"`) and the leading-zero arm below
1442    // (`"030s"`) on the same canonical-form render-determinism axis.
1443    // Until this gate landed the parser silently tolerated leading /
1444    // trailing / internal whitespace via the top-level `s.trim()` at
1445    // parse entry and the per-part `num_part.trim()` / `unit.trim()`
1446    // calls below, so every whitespace-carrying shape (`" 30s"` —
1447    // paste-from-aligned-doc / YAML-quoted-plain-scalar leading-space;
1448    // `"30s "` — paste-from-shell-history trailing-space; `"30 s"` —
1449    // paste-from-typography whitespace-between-magnitude-and-unit;
1450    // `"\t30s"` — paste-from-indented-doc / YAML-block-scalar tab byte;
1451    // `"30s\n"` — trailing newline from a multi-line paste) parsed to
1452    // the same `Duration::from_secs(30)` and serde silently round-
1453    // tripped to `"30s"` on the next emit (a *different* canonical
1454    // string) — breaking the THEORY.md Part V render-determinism
1455    // contract every typed slot carries.
1456    //
1457    // The canonical author shape is `<integer><unit>` (or `<integer>`
1458    // for the bare-integer-as-seconds shorthand) with no whitespace
1459    // bytes anywhere — every string [`render_duration`] emits carries
1460    // none, so the parser's accepted set must match for serialize /
1461    // deserialize to round-trip losslessly. This gate makes the pre-
1462    // existing `s.trim()` / `num_part.trim()` / `unit.trim()` calls
1463    // below strict no-ops on the accepted set (every byte-position
1464    // match they would perform is now already trimmed away by the
1465    // accepted set itself), while the arm surfaces every rejected
1466    // whitespace-carrying shape with a typed `WhitespaceInDuration`
1467    // diagnostic naming the offending byte and the canonical form the
1468    // author intended, peer with every prior canonical-form-drift arm
1469    // on this codec.
1470    //
1471    // Routed through the lifted
1472    // [`crate::render::find_ascii_whitespace_byte`] predicate — the
1473    // same source of truth the four peer typed-magnitude codec sites
1474    // share. `u8::is_ascii_whitespace()` at the predicate covers the
1475    // five WhatWG-conformant ASCII whitespace bytes (space, tab, LF,
1476    // FF, CR); the "single lifted predicate" discipline the peer
1477    // non-ASCII arm below carries on the strictly-complementary
1478    // Unicode `White_Space` class extends here to the ASCII byte set
1479    // as well.
1480    if let Some(byte) = crate::render::find_ascii_whitespace_byte(s) {
1481        return Err(LimitsError::WhitespaceInDuration {
1482            value: s.into(),
1483            byte,
1484        });
1485    }
1486    // Non-ASCII Unicode `White_Space` arm — the strictly-complementary
1487    // class the ASCII arm above cannot see. Same shape as the
1488    // `parse_byte_size` peer arm: `str::trim` uses
1489    // `char::is_whitespace` (Unicode `White_Space`, strictly wider
1490    // than the ASCII byte set), so an NBSP / LINE SEPARATOR / EM-SPACE
1491    // survives the byte-scan, gets silently stripped at parse entry,
1492    // and round-trips through `render_duration` to a *different*
1493    // canonical form on next emit — breaking the THEORY.md Part V
1494    // render-determinism contract. Closed here (`:limits :wall-clock`)
1495    // and at the three peer codec sites through the shared
1496    // [`crate::render::find_non_ascii_whitespace_char`] predicate.
1497    if let Some(ch) = crate::render::find_non_ascii_whitespace_char(s) {
1498        return Err(LimitsError::NonAsciiWhitespaceInDuration {
1499            value: s.into(),
1500            ch,
1501            codepoint: ch as u32,
1502        });
1503    }
1504    let s = s.trim();
1505    if s.is_empty() {
1506        return Err(LimitsError::EmptyDuration(s.into()));
1507    }
1508    let split_at = s.find(|c: char| c.is_ascii_alphabetic()).unwrap_or(s.len());
1509    let (num_part, unit) = s.split_at(split_at);
1510    let num_trim = num_part.trim();
1511    // The canonical authoring form for `:limits :wall-clock` is
1512    // `<integer><unit>` — every magnitude `render_duration` emits is a
1513    // non-negative integer with no decimal point and no leading sign,
1514    // so the parser's accepted set must match for serialize/deserialize
1515    // to round-trip without canonical-form drift. Until this gate
1516    // landed the parser accepted any `f64`-shaped magnitude
1517    // (`"1.5s"` → 1500ms, `"1.0s"` → 1s, `"0.5m"` → 30s, `"+30s"` →
1518    // 30s) and serde silently round-tripped the value to a *different*
1519    // canonical string on the next emit (`"1.5s"` → 1500ms →
1520    // `"1500ms"`, `"1.0s"` → 1s → `"1s"`, `"0.5m"` → 30s → `"30s"`,
1521    // `"+30s"` → 30s → `"30s"`) — breaking the THEORY.md Part V
1522    // render-determinism contract every typed slot carries. The same
1523    // canonical-form discipline `parse_byte_size`'s integer-magnitude
1524    // gate (the immediate predecessor on the peer `:limits :memory`
1525    // codec) applies; this gate is the direct successor on the
1526    // `:limits :wall-clock` codec.
1527    //
1528    // Strict canonical form: every byte of the magnitude is an ASCII
1529    // digit (no `.`, no `+`, no `-`). On current Rust `u64::from_str`
1530    // permissively accepts a leading `+` (`"+30"` → 30) — that's a
1531    // canonical-drift shape `render_duration` never emits, so the
1532    // digit-only check is what closes the leading-sign class; relying
1533    // on `u64::from_str`'s strictness alone would silently admit it.
1534    // On non-digit-only inputs the gate distinguishes "non-canonical-
1535    // but-numeric" (parses as f64 or i64 — surfaced as the new
1536    // `NonIntegerDurationMagnitude` variant with a self-locating
1537    // diagnostic) from "garbage" (parses as neither — surfaced as the
1538    // existing `BadDurationMagnitude` so its narrower diagnostic
1539    // remains load-bearing).
1540    //
1541    // Routed through the lifted
1542    // [`crate::render::is_digit_only_magnitude`] predicate — the same
1543    // source of truth the four peer typed-magnitude codec sites share.
1544    let digit_only = crate::render::is_digit_only_magnitude(num_trim);
1545    if !digit_only {
1546        let numeric = num_trim.parse::<f64>().is_ok() || num_trim.parse::<i64>().is_ok();
1547        if numeric {
1548            return Err(LimitsError::NonIntegerDurationMagnitude {
1549                value: num_trim.into(),
1550            });
1551        }
1552        return Err(LimitsError::BadDurationMagnitude(num_part.into()));
1553    }
1554    // Leading-zero arm — peer with the `supervisor::duration_codec`
1555    // leading-zero arm (9178904) and the `rate_limit_codec`
1556    // leading-zero arm (4f46830) on the same canonical-form
1557    // render-determinism axis. The digit-only gate accepts `"030s"`,
1558    // `"00s"`, `"01h"`, `"0500ms"` as `u64::from_str` parses them
1559    // losslessly (= 30, 0, 1, 500), but `render_duration` emits the
1560    // leading-zero-stripped form (`"30s"`, `"0s"`, `"1h"`, `"500ms"`)
1561    // — a *different* canonical string on the next emit, breaking the
1562    // THEORY.md Part V render-determinism contract the same way
1563    // `"+30s"` did before the leading-`+` arm landed. The single-byte
1564    // magnitude `"0"` (or `"0s"` / `"0ms"`) round-trips losslessly
1565    // through `render_duration` (`render_duration(Duration::ZERO)`
1566    // emits `"0s"`) — the downstream semantic-zero gate
1567    // [`LimitsError::WallClockZero`] refuses zero-magnitude authoring
1568    // at the typed-validate layer above, so the single-byte `"0"`
1569    // stays in the accepted set at this codec layer and the
1570    // diagnostic partitioning between canonical-form drift (this arm)
1571    // and semantic-zero (the downstream gate) remains stable. Same
1572    // codec-layer / typed-validate-layer partition the peer codecs
1573    // preserve.
1574    //
1575    // Routed through the lifted
1576    // [`crate::render::is_leading_zero_padded_magnitude`] predicate —
1577    // the same source of truth the four peer typed-magnitude codec
1578    // sites share.
1579    if crate::render::is_leading_zero_padded_magnitude(num_trim) {
1580        return Err(LimitsError::LeadingZeroDurationMagnitude {
1581            value: num_trim.into(),
1582        });
1583    }
1584    // The digit-only gate guarantees every byte is `[0-9]`, and the
1585    // leading-zero arm above guarantees the magnitude is either the
1586    // single byte `"0"` or starts with `[1-9]`, so the only way
1587    // `u64::from_str` can fail here is overflow.
1588    let num: u64 = num_trim.parse::<u64>().map_err(|_| {
1589        LimitsError::BadDurationMagnitude(format!(
1590            "{num_trim} (digit-only magnitude overflows u64)"
1591        ))
1592    })?;
1593    // Multiply on u64 with overflow detection — every unit conversion
1594    // is integer-exact for an integer magnitude, so the codec drops
1595    // `Duration::from_secs_f64` entirely. Overflow surfaces at parse
1596    // time with a parser-shaped diagnostic naming the offending
1597    // magnitude × unit pair (matches `parse_byte_size`'s overflow arm).
1598    let unit_trim = unit.trim();
1599    let dur = match unit_trim {
1600        "ms" => Duration::from_millis(num),
1601        "s" | "" => Duration::from_secs(num),
1602        "m" => Duration::from_secs(num.checked_mul(60).ok_or_else(|| {
1603            LimitsError::BadDurationMagnitude(format!(
1604                "{num_trim}{unit_trim} overflows u64 (magnitude × 60 > 2^64-1)"
1605            ))
1606        })?),
1607        "h" => Duration::from_secs(num.checked_mul(3600).ok_or_else(|| {
1608            LimitsError::BadDurationMagnitude(format!(
1609                "{num_trim}{unit_trim} overflows u64 (magnitude × 3600 > 2^64-1)"
1610            ))
1611        })?),
1612        other => {
1613            return Err(LimitsError::UnknownDurationUnit { unit: other.into() });
1614        }
1615    };
1616    Ok(dur)
1617}
1618
1619fn ser_duration<S: Serializer>(v: &Option<Duration>, s: S) -> Result<S::Ok, S::Error> {
1620    // Route through the canonical `pub fn crate::supervisor::duration_codec::render`
1621    // (supervisor.rs:2512) rather than re-inlining the magnitude/unit
1622    // decision tree — the peer module's docstring pins that lift as the
1623    // load-bearing single-owner primitive for duration bytes across every
1624    // caixa typed-duration surface (`:limits :wall-clock`, `:politicas
1625    // :timeout`, `:circuit-breaker :window`, future OTP `gen_server`
1626    // per-call timeouts). Any future codec change (a `"1.5s"` fractional
1627    // arm, a `"1d"` day unit, a leading-`+` acceptance) lands at exactly
1628    // one caixa-core edit rather than a coordinated rewrite across the
1629    // sibling free-function `render_duration` shadows a per-typed-slot
1630    // serializer could otherwise carry. Load-bearing pinned by
1631    // `tests::ser_duration_routes_through_supervisor_duration_codec_render_canonical`.
1632    match v {
1633        Some(d) => s.serialize_str(&crate::supervisor::duration_codec::render(*d)),
1634        None => s.serialize_none(),
1635    }
1636}
1637
1638fn de_duration<'de, D: Deserializer<'de>>(d: D) -> Result<Option<Duration>, D::Error> {
1639    let opt: Option<String> = Option::deserialize(d)?;
1640    match opt {
1641        None => Ok(None),
1642        Some(s) => parse_duration(&s)
1643            .map(Some)
1644            .map_err(serde::de::Error::custom),
1645    }
1646}
1647
1648// ── millicores codec ───────────────────────────────────────────────────
1649
1650fn parse_millicores(s: &str) -> Result<u32, LimitsError> {
1651    // Whitespace-rejection arm — peer with the `parse_byte_size` (24a8ad4),
1652    // `parse_duration` (ebc3a75), `supervisor::duration_codec` (a7ae622),
1653    // and `rate_limit_codec` (1ad7755) whitespace-rejection arms on the
1654    // same canonical-form render-determinism axis. Until this gate landed
1655    // the parser silently tolerated leading / trailing / internal
1656    // whitespace via the top-level `s.trim()` at parse entry and the
1657    // per-part `magnitude.trim()` calls below, so every whitespace-carrying
1658    // shape (`" 500m"` — paste-from-aligned-doc / YAML-quoted-plain-scalar
1659    // leading-space; `"500m "` — paste-from-shell-history trailing-space;
1660    // `"500 m"` — paste-from-typography whitespace-between-magnitude-and-
1661    // unit; `"\t500m"` — paste-from-indented-doc / YAML-block-scalar tab
1662    // byte; `"500m\n"` — trailing newline from a multi-line paste) parsed
1663    // to the same 500 millicores and serde silently round-tripped to
1664    // `"500m"` on the next emit (a *different* canonical string) —
1665    // breaking the THEORY.md Part V render-determinism contract every
1666    // typed slot carries.
1667    //
1668    // The canonical author shape is `<integer>m` (or `<integer>` for the
1669    // bare-core shorthand) with no whitespace bytes anywhere — every
1670    // string [`render_millicores`] emits carries none, so the parser's
1671    // accepted set must match for serialize / deserialize to round-trip
1672    // losslessly. This gate makes the pre-existing `s.trim()` /
1673    // `magnitude.trim()` calls below strict no-ops on the accepted set
1674    // (every byte-position match they would perform is now already
1675    // trimmed away by the accepted set itself), while the arm surfaces
1676    // every rejected whitespace-carrying shape with a typed
1677    // `WhitespaceInMillicores` diagnostic naming the offending byte and
1678    // the canonical form the author intended, peer with every prior
1679    // canonical-form-drift arm on this codec (`NonIntegerMillicoreMagnitude`,
1680    // `LeadingZeroMillicoreMagnitude`).
1681    //
1682    // Routed through the lifted
1683    // [`crate::render::find_ascii_whitespace_byte`] predicate — the
1684    // same source of truth the four peer typed-magnitude codec sites
1685    // share. `u8::is_ascii_whitespace()` at the predicate covers the
1686    // five WhatWG-conformant ASCII whitespace bytes (space, tab, LF,
1687    // FF, CR); the "single lifted predicate" discipline the peer
1688    // non-ASCII arm below carries on the strictly-complementary
1689    // Unicode `White_Space` class extends here to the ASCII byte set
1690    // as well.
1691    if let Some(byte) = crate::render::find_ascii_whitespace_byte(s) {
1692        return Err(LimitsError::WhitespaceInMillicores {
1693            value: s.into(),
1694            byte,
1695        });
1696    }
1697    // Non-ASCII Unicode `White_Space` arm — the strictly-complementary
1698    // class the ASCII arm above cannot see. Same shape as the peer
1699    // `parse_byte_size` / `parse_duration` arms (1b75b38): `str::trim`
1700    // uses `char::is_whitespace` (Unicode `White_Space`, strictly wider
1701    // than the ASCII byte set), so an NBSP (`\u{00A0}`) / LINE SEPARATOR
1702    // (`\u{2028}`) / EM-SPACE (`\u{2003}`) survives the byte-scan, gets
1703    // silently stripped at parse entry, and round-trips through
1704    // `render_millicores` to a *different* canonical form on the next
1705    // emit — breaking the THEORY.md Part V render-determinism contract.
1706    // Closed here (`:limits :cpu`) through the shared
1707    // [`crate::render::find_non_ascii_whitespace_char`] predicate — the
1708    // "single lifted predicate across every typed-magnitude codec site"
1709    // trajectory 1b75b38 landed on the four peer codecs, extended here
1710    // to the fifth.
1711    if let Some(ch) = crate::render::find_non_ascii_whitespace_char(s) {
1712        return Err(LimitsError::NonAsciiWhitespaceInMillicores {
1713            value: s.into(),
1714            ch,
1715            codepoint: ch as u32,
1716        });
1717    }
1718    let s_trim = s.trim();
1719    if s_trim.is_empty() {
1720        return Err(LimitsError::BadMillicores(s.into()));
1721    }
1722    let (magnitude, has_m_suffix) = match s_trim.strip_suffix('m') {
1723        Some(stripped) => (stripped.trim(), true),
1724        None => (s_trim, false),
1725    };
1726    if magnitude.is_empty() {
1727        // Bare `"m"` (or `" m "`) — no magnitude was authored. The
1728        // canonical millicores authoring form requires a magnitude in
1729        // front of the unit (`"500m"`, not `"m"`). Surface as
1730        // `BadMillicores` so the existing narrower-arm wording stays
1731        // load-bearing for "no recognizable magnitude" inputs.
1732        return Err(LimitsError::BadMillicores(s.into()));
1733    }
1734    // The canonical authoring form for `:limits :cpu` is `<integer>m`
1735    // (Kubernetes millicores) or the bare-core shorthand `<integer>`
1736    // (`"2"` = 2000 millicores). Every magnitude `render_millicores`
1737    // emits is a non-negative integer (`format!("{m}m")`) — no decimal
1738    // point, no leading sign — so the parser's accepted set must match
1739    // for serialize/deserialize to round-trip without canonical-form
1740    // drift. Until this gate landed the parser accepted any
1741    // `u32::from_str`-shaped magnitude (`"+500m"` → 500, `"+2"` →
1742    // 2000) and serde silently round-tripped the value to a *different*
1743    // canonical string on the next emit (`"+500m"` → `"500m"`, `"+2"`
1744    // → `"2000m"`) — breaking the THEORY.md Part V render-determinism
1745    // contract every typed slot carries. Closes the sixth (and last)
1746    // typed-codec surface in caixa-core on the integer-magnitude
1747    // canonical-form axis, peer with the five duration / byte-size /
1748    // rate-limit codecs the prior trajectory (1c55a2a / 818dd38 /
1749    // d1fd67b / f479c41 / d53c922) covered.
1750    //
1751    // Strict canonical form: every byte of the magnitude is an ASCII
1752    // digit (no `.`, no `+`, no `-`). On current Rust `u32::from_str`
1753    // permissively accepts a leading `+` (`"+500"` → 500) — that's a
1754    // canonical-drift shape `render_millicores` never emits, so the
1755    // digit-only check is what closes the leading-sign class; relying
1756    // on `u32::from_str`'s strictness alone would silently admit it.
1757    // On non-digit-only inputs the gate distinguishes "non-canonical-
1758    // but-numeric" (parses as f64 or i64 — surfaced as the new
1759    // `NonIntegerMillicoreMagnitude` variant naming the offending
1760    // magnitude verbatim with the canonical-form remediation) from
1761    // "garbage" (parses as neither — surfaced as the existing
1762    // `BadMillicores` so its narrower diagnostic shape remains
1763    // load-bearing for the not-a-numeric-input class).
1764    //
1765    // Routed through the lifted
1766    // [`crate::render::is_digit_only_magnitude`] predicate — the same
1767    // source of truth the four peer typed-magnitude codec sites share.
1768    // The predicate carries a `!<var>.is_empty()` gate that is
1769    // strictly no-op here (the `magnitude.is_empty()` arm above
1770    // already surfaces an empty magnitude as
1771    // [`LimitsError::BadMillicores`] before this line is reached), so
1772    // the semantics are preserved verbatim: on every reachable input
1773    // the predicate returns `magnitude.bytes().all(|b|
1774    // b.is_ascii_digit())`, byte-for-byte what the removed inline
1775    // expression computed.
1776    let digit_only = crate::render::is_digit_only_magnitude(magnitude);
1777    if !digit_only {
1778        let numeric = magnitude.parse::<f64>().is_ok() || magnitude.parse::<i64>().is_ok();
1779        if numeric {
1780            return Err(LimitsError::NonIntegerMillicoreMagnitude {
1781                value: magnitude.into(),
1782            });
1783        }
1784        return Err(LimitsError::BadMillicores(s.into()));
1785    }
1786    // Leading-zero arm — peer with the `parse_byte_size` leading-zero
1787    // arm (cea9a78), the `parse_duration` leading-zero arm (39762d7),
1788    // the `supervisor::duration_codec` leading-zero arm (9178904) and
1789    // the `rate_limit_codec` leading-zero arm (4f46830) on the same
1790    // canonical-form render-determinism axis. The digit-only gate
1791    // accepts `"0500m"`, `"00m"`, `"02"`, `"01500m"` as `u32::from_str`
1792    // parses them losslessly (= 500, 0, 2, 1500), but `render_millicores`
1793    // emits the leading-zero-stripped form (`"500m"`, `"0m"`, `"2000m"`,
1794    // `"1500m"`) — a *different* canonical string on the next emit,
1795    // breaking the THEORY.md Part V render-determinism contract the
1796    // same way `"+500m"` did before the leading-`+` arm landed. The
1797    // single-byte magnitude `"0"` (or `"0m"`) round-trips losslessly
1798    // through `render_millicores` (`render_millicores(0)` emits `"0m"`)
1799    // — the downstream semantic-zero gate [`LimitsError::CpuZero`]
1800    // refuses zero-magnitude authoring at the typed-validate layer
1801    // above, so the single-byte `"0"` stays in the accepted set at this
1802    // codec layer and the diagnostic partitioning between canonical-
1803    // form drift (this arm) and semantic-zero (the downstream gate)
1804    // remains stable. Same codec-layer / typed-validate-layer partition
1805    // the peer codecs preserve. Closes the sixth (and last) typed
1806    // numeric-codec surface in caixa-core on the integer-magnitude
1807    // leading-zero axis — the trajectory the prior `parse_byte_size`
1808    // arm (cea9a78) explicitly named.
1809    //
1810    // Routed through the lifted
1811    // [`crate::render::is_leading_zero_padded_magnitude`] predicate —
1812    // the same source of truth the four peer typed-magnitude codec
1813    // sites share.
1814    if crate::render::is_leading_zero_padded_magnitude(magnitude) {
1815        return Err(LimitsError::LeadingZeroMillicoreMagnitude {
1816            value: magnitude.into(),
1817        });
1818    }
1819    // The digit-only gate guarantees every byte is `[0-9]`, and the
1820    // leading-zero arm above guarantees the magnitude is either the
1821    // single byte `"0"` or starts with `[1-9]`, so the only way
1822    // `u32::from_str` can fail here is overflow (the magnitude exceeds
1823    // `u32::MAX`). Surface that as `BadMillicores` with an overflow-
1824    // shaped wording so the diagnostic names the offending magnitude
1825    // verbatim rather than collapsing onto the non-canonical arm —
1826    // matches `parse_byte_size` / `parse_duration` / `rate_limit_codec`
1827    // overflow-arm shape on the peer typed codecs.
1828    let num: u32 = magnitude.parse::<u32>().map_err(|_| {
1829        LimitsError::BadMillicores(format!("{magnitude} (digit-only magnitude overflows u32)"))
1830    })?;
1831    if has_m_suffix {
1832        Ok(num)
1833    } else {
1834        // Bare-core shorthand: `"2"` = 2000 millicores. Use
1835        // `checked_mul` (not the prior `saturating_mul`) so a
1836        // magnitude that overflows u32 on the × 1000 conversion
1837        // surfaces a parser-shaped diagnostic at parse time rather
1838        // than silently saturating to `u32::MAX` (which would land
1839        // as the cap value far from the author's intent and bypass
1840        // any future validate-time upper-bound gate the `:cpu` axis
1841        // grows). Matches `parse_byte_size`'s overflow-arm shape on
1842        // the magnitude × unit multiply.
1843        num.checked_mul(1000).ok_or_else(|| {
1844            LimitsError::BadMillicores(format!(
1845                "{magnitude} cores × 1000 overflows u32 (write the value in millicores: max \"{}m\")",
1846                u32::MAX
1847            ))
1848        })
1849    }
1850}
1851
1852fn render_millicores(m: u32) -> String {
1853    format!("{m}m")
1854}
1855
1856fn ser_millicores<S: Serializer>(v: &Option<u32>, s: S) -> Result<S::Ok, S::Error> {
1857    match v {
1858        Some(m) => s.serialize_str(&render_millicores(*m)),
1859        None => s.serialize_none(),
1860    }
1861}
1862
1863fn de_millicores<'de, D: Deserializer<'de>>(d: D) -> Result<Option<u32>, D::Error> {
1864    let opt: Option<String> = Option::deserialize(d)?;
1865    match opt {
1866        None => Ok(None),
1867        Some(s) => parse_millicores(&s)
1868            .map(Some)
1869            .map_err(serde::de::Error::custom),
1870    }
1871}
1872
1873#[cfg(test)]
1874mod tests {
1875    use super::*;
1876
1877    #[test]
1878    fn parse_byte_size_known_units() {
1879        assert_eq!(parse_byte_size("64MiB").unwrap(), 64 * 1024 * 1024);
1880        assert_eq!(parse_byte_size("1GiB").unwrap(), 1024 * 1024 * 1024);
1881        assert_eq!(parse_byte_size("512KiB").unwrap(), 512 * 1024);
1882        assert_eq!(parse_byte_size("1KB").unwrap(), 1_000);
1883        assert_eq!(parse_byte_size("1024").unwrap(), 1024);
1884    }
1885
1886    #[test]
1887    fn parse_byte_size_rejects_unknown() {
1888        assert!(matches!(
1889            parse_byte_size("1YiB"),
1890            Err(LimitsError::UnknownByteUnit { .. })
1891        ));
1892        assert!(matches!(
1893            parse_byte_size("not-a-number"),
1894            Err(LimitsError::BadByteMagnitude(_))
1895        ));
1896    }
1897
1898    #[test]
1899    fn parse_duration_known_units() {
1900        assert_eq!(parse_duration("30s").unwrap(), Duration::from_secs(30));
1901        assert_eq!(parse_duration("500ms").unwrap(), Duration::from_millis(500));
1902        assert_eq!(parse_duration("2m").unwrap(), Duration::from_secs(120));
1903        assert_eq!(parse_duration("1h").unwrap(), Duration::from_secs(3600));
1904    }
1905
1906    #[test]
1907    fn parse_millicores_both_forms() {
1908        assert_eq!(parse_millicores("500m").unwrap(), 500);
1909        assert_eq!(parse_millicores("2").unwrap(), 2000);
1910    }
1911
1912    #[test]
1913    fn render_byte_size_canonical() {
1914        assert_eq!(render_byte_size(64 * 1024 * 1024), "64MiB");
1915        assert_eq!(render_byte_size(1024 * 1024 * 1024), "1GiB");
1916        assert_eq!(render_byte_size(1024), "1KiB");
1917        assert_eq!(render_byte_size(123), "123");
1918    }
1919
1920    #[test]
1921    fn ser_duration_routes_through_supervisor_duration_codec_render_canonical() {
1922        // Routing pin: `ser_duration` (the `#[serde(serialize_with = …)]`
1923        // hook on `LimitsSpec::wall_clock`) MUST emit exactly the bytes
1924        // the canonical `crate::supervisor::duration_codec::render`
1925        // primitive produces. Any future accidental re-introduction of a
1926        // sibling free-function `render_duration` shadow inside this
1927        // module — or a per-slot `serialize_with` closure that inlines
1928        // its own magnitude/unit decision tree — surfaces here as a
1929        // byte-value drift on the very first canonical form the two
1930        // implementations disagree on, well before the drift reaches any
1931        // downstream renderer's `wall_clock:` overlay. Same "one
1932        // canonical dispatch per axis, thin projections at each consumer"
1933        // discipline the sibling caixa-core substrate primitives already
1934        // carry on the peer WIT-shape / M2 supervisor-strategy / M3
1935        // mesh-slot free-function classifier families.
1936        for d in [
1937            Duration::from_secs(30),
1938            Duration::from_millis(500),
1939            Duration::from_secs(120),
1940            Duration::from_secs(3600),
1941            Duration::from_millis(0),
1942            Duration::from_millis(1500),
1943        ] {
1944            let limits = LimitsSpec {
1945                memory: None,
1946                fuel: None,
1947                wall_clock: Some(d),
1948                cpu: None,
1949            };
1950            let json: serde_json::Value =
1951                serde_json::from_str(&serde_json::to_string(&limits).unwrap()).unwrap();
1952            let emitted = json[crate::render::M2_LIMITS_KEY_WALL_CLOCK]
1953                .as_str()
1954                .expect("wall_clock must serialize to a string");
1955            let canonical = crate::supervisor::duration_codec::render(d);
1956            assert_eq!(
1957                emitted, canonical,
1958                "ser_duration drifted from supervisor::duration_codec::render on {d:?}",
1959            );
1960        }
1961    }
1962
1963    #[test]
1964    fn limits_round_trip_through_json() {
1965        let limits = LimitsSpec {
1966            memory: Some(64 * 1024 * 1024),
1967            fuel: Some(1_000_000),
1968            wall_clock: Some(Duration::from_secs(30)),
1969            cpu: Some(500),
1970        };
1971        let json = serde_json::to_string(&limits).unwrap();
1972        let back: LimitsSpec = serde_json::from_str(&json).unwrap();
1973        assert_eq!(limits, back);
1974    }
1975
1976    #[test]
1977    fn empty_limits_serialises_to_empty_object() {
1978        let limits = LimitsSpec::default();
1979        assert!(limits.is_empty());
1980        let json = serde_json::to_string(&limits).unwrap();
1981        assert_eq!(json, "{}");
1982    }
1983
1984    // ── drift-detection: serde-derive-to-M2_LIMITS_KEY_* identity ────────
1985
1986    #[test]
1987    fn limits_spec_serde_keys_match_lifted_m2_limits_key_consts() {
1988        // Load-bearing invariant: the four `M2_LIMITS_KEY_*` consts
1989        // (`M2_LIMITS_KEY_MEMORY` / `M2_LIMITS_KEY_FUEL` /
1990        // `M2_LIMITS_KEY_WALL_CLOCK` / `M2_LIMITS_KEY_CPU`) name the
1991        // exact camelCase JSON keys the `#[serde(rename_all = "camelCase")]`
1992        // attribute on `LimitsSpec` emits, and every test-side probe
1993        // across the caixa-core / caixa-flux / caixa-helm renderer test
1994        // fixtures navigates into the rendered `:limits` overlay
1995        // sub-block by consulting one of these four `&'static str`s.
1996        // Serialize a fully-populated LimitsSpec and pin that each
1997        // canonical byte-sequence appears verbatim in the JSON — a
1998        // future accidental `rename_all = "snake_case"` /
1999        // `"kebab-case"` / verbatim-field-name flip at the derive
2000        // attribute (any of which would silently break every test-side
2001        // probe that reaches for one of the four consts) surfaces here
2002        // as a build-time test failure at `limits.rs`, not as an
2003        // apply-time `.get(<stale-canonical-const>)` returning `None`
2004        // far from the derive-attr drift's commit. Same discipline the
2005        // sibling M3 `PlacementStrategy::as_str` lift (0a2f653)
2006        // established on the peer per-`:placement :estrategia` axis:
2007        // one canonical byte-string per typed sub-key axis, pinned to
2008        // the load-bearing serde derivation at the type itself.
2009        let limits = LimitsSpec {
2010            memory: Some(64 * 1024 * 1024),
2011            fuel: Some(1_000_000),
2012            wall_clock: Some(Duration::from_secs(30)),
2013            cpu: Some(500),
2014        };
2015        let json = serde_json::to_string(&limits).unwrap();
2016        for key in [
2017            crate::render::M2_LIMITS_KEY_MEMORY,
2018            crate::render::M2_LIMITS_KEY_FUEL,
2019            crate::render::M2_LIMITS_KEY_WALL_CLOCK,
2020            crate::render::M2_LIMITS_KEY_CPU,
2021        ] {
2022            let quoted = format!("\"{key}\"");
2023            assert!(
2024                json.contains(&quoted),
2025                "serialized LimitsSpec must carry the lifted \
2026                 M2_LIMITS_KEY_* byte-sequence {quoted} verbatim in \
2027                 the JSON emission (got: {json})",
2028            );
2029        }
2030    }
2031
2032    #[test]
2033    fn m2_limits_key_consts_are_pairwise_distinct() {
2034        // Cross-axis drift-detection pin: a future collapse of two
2035        // canonical sub-key byte-strings onto the same value (e.g. an
2036        // accidental copy-paste flip of `M2_LIMITS_KEY_CPU` to also
2037        // read `"memory"`) would silently reroute every test-side
2038        // probe on one axis onto the sibling axis's overlay entry and
2039        // pass every propagation-probe test that expected only the
2040        // stale axis's value. Peer of the sibling three-way distinct
2041        // pin on the `FLUX_GITREPOSITORY_REF_KEY_*` trio (7d40380).
2042        let all = [
2043            crate::render::M2_LIMITS_KEY_MEMORY,
2044            crate::render::M2_LIMITS_KEY_FUEL,
2045            crate::render::M2_LIMITS_KEY_WALL_CLOCK,
2046            crate::render::M2_LIMITS_KEY_CPU,
2047        ];
2048        for (i, a) in all.iter().enumerate() {
2049            for b in all.iter().skip(i + 1) {
2050                assert_ne!(
2051                    a, b,
2052                    "M2_LIMITS_KEY_* consts must be pairwise-distinct \
2053                     canonical byte-sequences — got `{a}` == `{b}`",
2054                );
2055            }
2056        }
2057    }
2058
2059    #[test]
2060    fn m2_limits_key_consts_are_lower_camel_case_shape() {
2061        // Shape-pin: every `M2_LIMITS_KEY_*` const must be a
2062        // lowerCamelCase byte-sequence (no `snake_case` underscores,
2063        // no `kebab-case` hyphens, no `PascalCase` leading capital, no
2064        // whitespace / colons / dots) — the canonical shape the
2065        // `#[serde(rename_all = "camelCase")]` derive produces on
2066        // `LimitsSpec`. A future flip to a non-camelCase attribute at
2067        // the derive surfaces both here (this test fails on the
2068        // stale-constant shape) and at
2069        // `limits_spec_serde_keys_match_lifted_m2_limits_key_consts`
2070        // (that test fails on the mismatch between const and derive).
2071        for key in [
2072            crate::render::M2_LIMITS_KEY_MEMORY,
2073            crate::render::M2_LIMITS_KEY_FUEL,
2074            crate::render::M2_LIMITS_KEY_WALL_CLOCK,
2075            crate::render::M2_LIMITS_KEY_CPU,
2076        ] {
2077            assert!(
2078                !key.is_empty(),
2079                "M2_LIMITS_KEY_* must be non-empty (got {key:?})"
2080            );
2081            let first = key.chars().next().unwrap();
2082            assert!(
2083                first.is_ascii_lowercase(),
2084                "M2_LIMITS_KEY_* must lead with an ASCII-lowercase byte \
2085                 (got {key:?}, leads with {first:?})",
2086            );
2087            assert!(
2088                key.chars().all(|c| c.is_ascii_alphanumeric()),
2089                "M2_LIMITS_KEY_* must be ASCII-alphanumeric only \
2090                 — no `_` / `-` / `:` / `.` / whitespace (got {key:?})",
2091            );
2092        }
2093    }
2094
2095    // ── value-shape: zero on any declared axis is rejected ────────────────
2096
2097    #[test]
2098    fn validate_accepts_default_unbounded_limits() {
2099        // Every axis None → "no bound declared" is the omit-the-slot
2100        // shape and stays valid. This is the pre-M2 default behaviour.
2101        LimitsSpec::default().validate().unwrap();
2102    }
2103
2104    #[test]
2105    fn validate_accepts_full_nonzero_limits() {
2106        let l = LimitsSpec {
2107            memory: Some(64 * 1024 * 1024),
2108            fuel: Some(1_000_000),
2109            wall_clock: Some(Duration::from_secs(30)),
2110            cpu: Some(500),
2111        };
2112        l.validate().unwrap();
2113    }
2114
2115    #[test]
2116    fn validate_rejects_zero_memory() {
2117        let l = LimitsSpec {
2118            memory: Some(0),
2119            ..Default::default()
2120        };
2121        assert_eq!(l.validate().unwrap_err(), LimitsError::MemoryZero);
2122    }
2123
2124    #[test]
2125    fn validate_rejects_zero_fuel() {
2126        let l = LimitsSpec {
2127            fuel: Some(0),
2128            ..Default::default()
2129        };
2130        assert_eq!(l.validate().unwrap_err(), LimitsError::FuelZero);
2131    }
2132
2133    #[test]
2134    fn validate_rejects_zero_wall_clock() {
2135        let l = LimitsSpec {
2136            wall_clock: Some(Duration::ZERO),
2137            ..Default::default()
2138        };
2139        assert_eq!(l.validate().unwrap_err(), LimitsError::WallClockZero);
2140    }
2141
2142    #[test]
2143    fn validate_rejects_zero_cpu() {
2144        let l = LimitsSpec {
2145            cpu: Some(0),
2146            ..Default::default()
2147        };
2148        assert_eq!(l.validate().unwrap_err(), LimitsError::CpuZero);
2149    }
2150
2151    #[test]
2152    fn validate_rejects_first_zero_axis_deterministically() {
2153        // Memory is checked first; with multiple zero axes, the
2154        // diagnostic names :memory rather than reporting some other
2155        // axis non-deterministically.
2156        let l = LimitsSpec {
2157            memory: Some(0),
2158            fuel: Some(0),
2159            wall_clock: Some(Duration::ZERO),
2160            cpu: Some(0),
2161        };
2162        assert_eq!(l.validate().unwrap_err(), LimitsError::MemoryZero);
2163    }
2164
2165    // ── value-shape: :memory upper bound — wasm32-wasip2 4 GiB ceiling ────
2166
2167    #[test]
2168    fn wasm32_memory_cap_matches_parsed_4_gib() {
2169        // The cap constant tracks the canonical "4 GiB" byte-size
2170        // codec output structurally — drift between the codec's
2171        // accepted magnitude for `"4GiB"` and the validate gate's
2172        // accepted upper bound would surface here, not as a silent
2173        // round-trip break at the renderer layer. Same single-source-
2174        // of-truth shape the is_canonical_rate_limit_window predicate
2175        // gives the rate-limit window set.
2176        assert_eq!(
2177            parse_byte_size("4GiB").unwrap(),
2178            LIMITS_MEMORY_WASM32_MAX_BYTES
2179        );
2180        assert_eq!(LIMITS_MEMORY_WASM32_MAX_BYTES, 4 * 1024 * 1024 * 1024);
2181        assert_eq!(LIMITS_MEMORY_WASM32_MAX_BYTES, 1u64 << 32);
2182    }
2183
2184    #[test]
2185    fn validate_accepts_memory_at_wasm32_cap() {
2186        // 4 GiB exactly is the wasm32 in-spec maximum — `2^16 pages ×
2187        // 2^16 bytes/page`. The validate gate is inclusive on the
2188        // upper end (mirrors the inclusive lower-end rejection: zero
2189        // is *out*, one is *in*; 4 GiB+1 is *out*, 4 GiB is *in*).
2190        let l = LimitsSpec {
2191            memory: Some(LIMITS_MEMORY_WASM32_MAX_BYTES),
2192            ..Default::default()
2193        };
2194        l.validate().unwrap();
2195    }
2196
2197    #[test]
2198    fn validate_rejects_memory_one_byte_above_wasm32_cap() {
2199        // Boundary case: exactly 1 byte past the cap. Catches a
2200        // future "strictly less than" half-measure and pins the
2201        // diagnostic to name the offending byte count verbatim.
2202        let bytes = LIMITS_MEMORY_WASM32_MAX_BYTES + 1;
2203        let l = LimitsSpec {
2204            memory: Some(bytes),
2205            ..Default::default()
2206        };
2207        assert_eq!(
2208            l.validate().unwrap_err(),
2209            LimitsError::MemoryExceedsWasm32Cap { bytes }
2210        );
2211    }
2212
2213    #[test]
2214    fn validate_rejects_memory_8_gib() {
2215        // The "obvious authoring footgun" case: a value the byte-size
2216        // codec accepts cleanly (`"8GiB"` → 8 * 1024^3 bytes) and
2217        // serde round-trips silently, but no wasm32 component can
2218        // honor. Until this gate landed `validate` accepted it.
2219        let bytes = parse_byte_size("8GiB").unwrap();
2220        let l = LimitsSpec {
2221            memory: Some(bytes),
2222            ..Default::default()
2223        };
2224        assert_eq!(
2225            l.validate().unwrap_err(),
2226            LimitsError::MemoryExceedsWasm32Cap { bytes }
2227        );
2228    }
2229
2230    #[test]
2231    fn validate_memory_zero_takes_precedence_over_cap_check() {
2232        // Memory zero is structurally meaningless under *any* wasm
2233        // engine (zero-cap traps the first allocation); above-cap is
2234        // wasm32-specific. The zero arm fires first so the canonical
2235        // "omit the slot for unbounded" remediation in the existing
2236        // MemoryZero diagnostic still leads — pinning this precedence
2237        // guards against a future re-ordering that would surface the
2238        // wasm32-specific message in the case where the simpler
2239        // zero-floor message is more actionable.
2240        let l = LimitsSpec {
2241            memory: Some(0),
2242            ..Default::default()
2243        };
2244        assert_eq!(l.validate().unwrap_err(), LimitsError::MemoryZero);
2245    }
2246
2247    #[test]
2248    fn validate_rejects_memory_cap_before_other_axes() {
2249        // With both an above-cap :memory and a zero :fuel, the
2250        // diagnostic names :memory rather than :fuel — peer of the
2251        // existing `validate_rejects_first_zero_axis_deterministically`
2252        // ordering pin.
2253        let bytes = LIMITS_MEMORY_WASM32_MAX_BYTES + 1024;
2254        let l = LimitsSpec {
2255            memory: Some(bytes),
2256            fuel: Some(0),
2257            wall_clock: Some(Duration::ZERO),
2258            cpu: Some(0),
2259        };
2260        assert_eq!(
2261            l.validate().unwrap_err(),
2262            LimitsError::MemoryExceedsWasm32Cap { bytes }
2263        );
2264    }
2265
2266    #[test]
2267    fn above_cap_value_still_round_trips_through_serde() {
2268        // The byte-size codec accepts the above-cap value (the cap
2269        // lives in the validate gate, not the codec). This pins that
2270        // the structural property is "above-cap is rejected by
2271        // validate" — not "above-cap is unparseable by the codec";
2272        // the latter would prevent the diagnostic from naming the
2273        // offending byte count at all, since deserialize would fail
2274        // first.
2275        let l = LimitsSpec {
2276            memory: Some(LIMITS_MEMORY_WASM32_MAX_BYTES + 1),
2277            ..Default::default()
2278        };
2279        let json = serde_json::to_string(&l).unwrap();
2280        let back: LimitsSpec = serde_json::from_str(&json).unwrap();
2281        assert_eq!(l, back);
2282        assert!(back.validate().is_err());
2283    }
2284
2285    // ── value-shape: :memory lower bound — wasm32-wasip2 64 KiB page floor ─
2286
2287    #[test]
2288    fn wasm32_memory_page_matches_parsed_64_kib() {
2289        // The page-floor constant tracks the canonical "64 KiB"
2290        // byte-size codec output structurally — drift between the
2291        // codec's accepted magnitude for `"64KiB"` and the validate
2292        // gate's accepted lower bound would surface here, not as a
2293        // silent round-trip break at the renderer layer. Same single-
2294        // source-of-truth shape `wasm32_memory_cap_matches_parsed_4_gib`
2295        // pins on the peer upper-cap bound and
2296        // `is_canonical_rate_limit_window` gives the rate-limit window
2297        // set. The page-size identities (2^16, integer-divides the
2298        // upper cap exactly 2^16 times) are pinned alongside so a
2299        // future memory64-target opt-in raising one bound surfaces
2300        // here if the other bound's relationship to it drifts.
2301        assert_eq!(
2302            parse_byte_size("64KiB").unwrap(),
2303            LIMITS_MEMORY_WASM32_PAGE_BYTES
2304        );
2305        assert_eq!(LIMITS_MEMORY_WASM32_PAGE_BYTES, 64 * 1024);
2306        assert_eq!(LIMITS_MEMORY_WASM32_PAGE_BYTES, 1u64 << 16);
2307        assert_eq!(
2308            LIMITS_MEMORY_WASM32_MAX_BYTES / LIMITS_MEMORY_WASM32_PAGE_BYTES,
2309            1u64 << 16,
2310            "the wasm32 page count cap is 2^16 pages exactly",
2311        );
2312        assert_eq!(
2313            LIMITS_MEMORY_WASM32_MAX_BYTES % LIMITS_MEMORY_WASM32_PAGE_BYTES,
2314            0
2315        );
2316    }
2317
2318    #[test]
2319    fn validate_rejects_memory_below_wasm32_page() {
2320        // The fail-before-pass-after pin: until this gate landed a
2321        // `(:memory "32KiB")` (or any programmatic struct literal with
2322        // a sub-page byte count — `LimitsSpec { memory: Some(50000),
2323        // .. }`) silently passed validate, the byte-size codec
2324        // round-tripped cleanly through serde, and the wasm-engine
2325        // either refused instantiation (`memory minimum size of 1
2326        // pages exceeds memory limits` on any cdylib-shaped component
2327        // declaring `(memory 1)`) or trapped the first `memory.grow(1)`
2328        // far from the source caixa.lisp.
2329        let bytes = parse_byte_size("32KiB").unwrap();
2330        let l = LimitsSpec {
2331            memory: Some(bytes),
2332            ..Default::default()
2333        };
2334        assert_eq!(
2335            l.validate().unwrap_err(),
2336            LimitsError::MemoryBelowWasm32Page { bytes }
2337        );
2338    }
2339
2340    #[test]
2341    fn validate_rejects_memory_one_byte_below_page() {
2342        // Boundary case: exactly 1 byte below the page-size floor
2343        // (`LIMITS_MEMORY_WASM32_PAGE_BYTES - 1` = 65535 bytes). Pins
2344        // the inclusive-upper-end / strict-lower-end relationship on
2345        // the page-floor arm: 65535 is *out*, 65536 is *in*. Catches a
2346        // future "strictly greater than" half-measure and matches the
2347        // peer `validate_rejects_memory_one_byte_above_wasm32_cap`
2348        // shape on the top edge.
2349        let bytes = LIMITS_MEMORY_WASM32_PAGE_BYTES - 1;
2350        let l = LimitsSpec {
2351            memory: Some(bytes),
2352            ..Default::default()
2353        };
2354        assert_eq!(
2355            l.validate().unwrap_err(),
2356            LimitsError::MemoryBelowWasm32Page { bytes }
2357        );
2358    }
2359
2360    #[test]
2361    fn validate_rejects_memory_one_byte() {
2362        // The far-floor case: a `(:memory "1")` cap is non-zero (so
2363        // `MemoryZero` doesn't fire) but structurally cannot hold any
2364        // wasm linear memory page. The page-floor gate at this layer
2365        // surfaces a self-locating diagnostic naming the offending
2366        // byte count verbatim rather than a downstream wasm-engine
2367        // instantiation failure whose error message points at the
2368        // engine's internals, not the caixa.lisp `:memory` slot.
2369        let l = LimitsSpec {
2370            memory: Some(1),
2371            ..Default::default()
2372        };
2373        assert_eq!(
2374            l.validate().unwrap_err(),
2375            LimitsError::MemoryBelowWasm32Page { bytes: 1 }
2376        );
2377    }
2378
2379    #[test]
2380    fn validate_accepts_memory_at_wasm32_page() {
2381        // 64 KiB exactly is the wasm32 linear-memory page size — the
2382        // smallest cap that admits one wasm `(memory 1)` page. The
2383        // page-floor gate is inclusive on the lower end (mirrors the
2384        // inclusive upper-end acceptance: 4 GiB is *in*, 4 GiB+1 is
2385        // *out*; 64 KiB is *in*, 64 KiB-1 is *out*).
2386        let l = LimitsSpec {
2387            memory: Some(LIMITS_MEMORY_WASM32_PAGE_BYTES),
2388            ..Default::default()
2389        };
2390        l.validate().unwrap();
2391    }
2392
2393    #[test]
2394    fn validate_accepts_multi_page_memory() {
2395        // The positive-control sweep: every typed `:memory` cap that
2396        // admits at least one wasm linear memory page (i.e. ≥
2397        // `LIMITS_MEMORY_WASM32_PAGE_BYTES`) passes `validate`. Sweeps
2398        // single-page, two-page, the canonical 64 MiB / 1 GiB / 4 GiB
2399        // upper-bound boundary so a future tightening of either edge
2400        // surfaces here. Peer of
2401        // `validate_accepts_integer_millisecond_wall_clock_values` on
2402        // the sibling `:wall-clock` axis.
2403        for bytes in [
2404            LIMITS_MEMORY_WASM32_PAGE_BYTES,
2405            2 * LIMITS_MEMORY_WASM32_PAGE_BYTES,
2406            64 * 1024 * 1024,
2407            1024 * 1024 * 1024,
2408            LIMITS_MEMORY_WASM32_MAX_BYTES,
2409        ] {
2410            let l = LimitsSpec {
2411                memory: Some(bytes),
2412                ..Default::default()
2413            };
2414            l.validate()
2415                .unwrap_or_else(|e| panic!("multi-page {bytes} must validate, got {e:?}"));
2416        }
2417    }
2418
2419    #[test]
2420    fn validate_memory_zero_takes_precedence_over_page_floor() {
2421        // Cross-arm ordering pin: `Some(0)` would otherwise pass the
2422        // page-floor arm's `m < PAGE_BYTES` check (0 < 65536), but the
2423        // zero-floor arm strictly precedes the page-floor arm so the
2424        // more self-locating `MemoryZero` diagnostic (with its omit-
2425        // axis remediation directly named, applicable under *any* wasm
2426        // engine not just wasm32) leads. Same posture every peer
2427        // zero-then-shape gate uses on this surface
2428        // (`PolicyTimeoutZero` → `PolicyTimeoutNotCanonical`,
2429        // `PolicyBreakerZeroWindow` → `PolicyBreakerWindowNotCanonical`,
2430        // `WallClockZero` → `WallClockNotCanonical`).
2431        let l = LimitsSpec {
2432            memory: Some(0),
2433            ..Default::default()
2434        };
2435        assert_eq!(l.validate().unwrap_err(), LimitsError::MemoryZero);
2436    }
2437
2438    #[test]
2439    fn validate_memory_page_floor_takes_precedence_over_other_axes() {
2440        // With a sub-page `:memory` and zero values on every other
2441        // axis, the diagnostic names `:memory` rather than `:fuel` /
2442        // `:wall-clock` / `:cpu` — peer of the existing
2443        // `validate_rejects_first_zero_axis_deterministically` and
2444        // `validate_rejects_memory_cap_before_other_axes` ordering
2445        // pins. Memory is the first axis the validate cascade checks,
2446        // so a sub-page value surfaces before any other-axis
2447        // diagnostic regardless of how many other axes are
2448        // simultaneously invalid.
2449        let bytes = LIMITS_MEMORY_WASM32_PAGE_BYTES / 2;
2450        let l = LimitsSpec {
2451            memory: Some(bytes),
2452            fuel: Some(0),
2453            wall_clock: Some(Duration::ZERO),
2454            cpu: Some(0),
2455        };
2456        assert_eq!(
2457            l.validate().unwrap_err(),
2458            LimitsError::MemoryBelowWasm32Page { bytes }
2459        );
2460    }
2461
2462    #[test]
2463    fn memory_page_floor_diagnostic_carries_offending_bytes() {
2464        // Diagnostic-shape pin: the page-floor arm names the
2465        // offending byte count verbatim so the author's grep lands on
2466        // the field's value, not a generic "memory too small" message.
2467        // Same shape every other typed-cap arm on this surface
2468        // carries (`MemoryExceedsWasm32Cap` carries the offending byte
2469        // count verbatim, `WallClockNotCanonical` carries the
2470        // offending `Duration` verbatim, `PolicyRetriesExceedsCap`
2471        // carries the offending retry count verbatim).
2472        let l = LimitsSpec {
2473            memory: Some(50_000),
2474            ..Default::default()
2475        };
2476        let err = l.validate().unwrap_err();
2477        let msg = err.to_string();
2478        assert!(
2479            msg.contains("50000"),
2480            "diagnostic must carry the offending byte count verbatim (got {msg:?})"
2481        );
2482        assert!(
2483            msg.contains("64 KiB") || msg.contains("65536"),
2484            "diagnostic must name the page-size floor (got {msg:?})"
2485        );
2486    }
2487
2488    #[test]
2489    fn below_page_value_still_round_trips_through_serde() {
2490        // The byte-size codec accepts the sub-page value (the floor
2491        // lives in the validate gate, not the codec) — peer of
2492        // `above_cap_value_still_round_trips_through_serde` on the top
2493        // edge. Pins that the structural property is "sub-page is
2494        // rejected by validate" — not "sub-page is unparseable by the
2495        // codec"; the latter would prevent the diagnostic from naming
2496        // the offending byte count at all, since deserialize would
2497        // fail first.
2498        let l = LimitsSpec {
2499            memory: Some(LIMITS_MEMORY_WASM32_PAGE_BYTES - 1),
2500            ..Default::default()
2501        };
2502        let json = serde_json::to_string(&l).unwrap();
2503        let back: LimitsSpec = serde_json::from_str(&json).unwrap();
2504        assert_eq!(l, back);
2505        assert!(back.validate().is_err());
2506    }
2507
2508    // ── value-shape: :memory page-multiple granularity gate ───────────────
2509
2510    #[test]
2511    fn validate_rejects_memory_one_byte_above_page() {
2512        // The fail-before-pass-after pin: until this gate landed a
2513        // `LimitsSpec { memory: Some(LIMITS_MEMORY_WASM32_PAGE_BYTES +
2514        // 1), .. }` (65537 bytes — one wasm32 page plus a 1-byte
2515        // unreachable residue) silently passed validate, the byte-size
2516        // codec round-tripped cleanly through serde (`render_byte_size`
2517        // falls through to `"65537"` on any non-power-of-1024 magnitude),
2518        // and wasmtime's `StoreLimits::memory_size` consumed the value
2519        // verbatim as a page-quantized ceiling — the engine grew at
2520        // most floor(65537 / 65536) = 1 page, and the byte at offset
2521        // 65536 became structural dead space the runtime cannot honor.
2522        let bytes = LIMITS_MEMORY_WASM32_PAGE_BYTES + 1;
2523        let l = LimitsSpec {
2524            memory: Some(bytes),
2525            ..Default::default()
2526        };
2527        assert_eq!(
2528            l.validate().unwrap_err(),
2529            LimitsError::MemoryNotPageMultiple { bytes }
2530        );
2531    }
2532
2533    #[test]
2534    fn validate_rejects_memory_just_below_two_pages() {
2535        // Boundary case: exactly 1 byte below two pages (`2 *
2536        // LIMITS_MEMORY_WASM32_PAGE_BYTES - 1` = 131071 bytes). Pins
2537        // the inclusive-page-boundary / strict-sub-page-residue
2538        // relationship on the page-multiple arm: 131071 is *out*
2539        // (sub-page residue), 131072 is *in* (exactly two pages).
2540        // Matches the peer `validate_rejects_memory_one_byte_below_page`
2541        // / `validate_rejects_memory_one_byte_above_wasm32_cap` shape
2542        // on the surrounding edges.
2543        let bytes = 2 * LIMITS_MEMORY_WASM32_PAGE_BYTES - 1;
2544        let l = LimitsSpec {
2545            memory: Some(bytes),
2546            ..Default::default()
2547        };
2548        assert_eq!(
2549            l.validate().unwrap_err(),
2550            LimitsError::MemoryNotPageMultiple { bytes }
2551        );
2552    }
2553
2554    #[test]
2555    fn validate_rejects_memory_100000_bytes() {
2556        // The "obvious authoring footgun" case: a magnitude the
2557        // byte-size codec accepts cleanly (`"100000"` → 100000 bytes
2558        // ≈ 97.65 KiB) and serde round-trips silently, but no wasm32
2559        // engine can honor as a meaningful ceiling — the engine grows
2560        // at most floor(100000 / 65536) = 1 page, and the 34464 bytes
2561        // between offsets 65536 and 100000 are structural dead space.
2562        // Until this gate landed `validate` accepted it. Peer of
2563        // `validate_rejects_memory_8_gib` on the cap arm.
2564        let bytes = parse_byte_size("100000").unwrap();
2565        let l = LimitsSpec {
2566            memory: Some(bytes),
2567            ..Default::default()
2568        };
2569        assert_eq!(
2570            l.validate().unwrap_err(),
2571            LimitsError::MemoryNotPageMultiple { bytes }
2572        );
2573    }
2574
2575    #[test]
2576    fn validate_accepts_every_page_aligned_value_through_serde() {
2577        // Positive-control sweep through the byte-size codec: every
2578        // canonical magnitude `render_byte_size` emits at or above
2579        // the page floor divides cleanly by the page size, so the
2580        // page-multiple gate accepts the entire canonical-output
2581        // domain at and above the page floor. The sweep walks
2582        // single-page (`"64KiB"`), two-page (`"128KiB"`), every
2583        // power-of-1024 unit (`"1MiB"`, `"64MiB"`, `"1GiB"`, `"4GiB"`),
2584        // and the cap (`"4GiB"`) — pinning that the codec's
2585        // emitted-canonical-form set is a structural subset of the
2586        // validate gate's accepted set. Drift between the codec's
2587        // emit alphabet and the validate gate would surface here
2588        // rather than at a future serializer round trip.
2589        for s in ["64KiB", "128KiB", "1MiB", "64MiB", "1GiB", "4GiB"] {
2590            let bytes = parse_byte_size(s).unwrap();
2591            assert_eq!(
2592                bytes % LIMITS_MEMORY_WASM32_PAGE_BYTES,
2593                0,
2594                "canonical byte-size codec output {s:?} ({bytes}) must be page-aligned",
2595            );
2596            let l = LimitsSpec {
2597                memory: Some(bytes),
2598                ..Default::default()
2599            };
2600            l.validate()
2601                .unwrap_or_else(|e| panic!("canonical {s:?} = {bytes} must validate, got {e:?}"));
2602        }
2603    }
2604
2605    #[test]
2606    fn validate_memory_below_page_takes_precedence_over_page_multiple() {
2607        // Cross-arm ordering pin: `Some(1)` would otherwise pass the
2608        // page-multiple arm's `m % PAGE_BYTES != 0` check (1 % 65536
2609        // == 1 ≠ 0), but the page-floor arm strictly precedes the
2610        // page-multiple arm so the more self-locating
2611        // `MemoryBelowWasm32Page` diagnostic (with its "single page
2612        // cannot fit" remediation, applicable to every sub-page
2613        // value uniformly) leads. Peer of `MemoryZero` →
2614        // `MemoryBelowWasm32Page` precedence on the zero edge:
2615        // every value `m` in the range `1..=PAGE_BYTES-1` satisfies
2616        // both `m < PAGE_BYTES` and `m % PAGE_BYTES != 0`, but the
2617        // structurally-narrower diagnostic (page-floor) leads.
2618        let l = LimitsSpec {
2619            memory: Some(1),
2620            ..Default::default()
2621        };
2622        assert_eq!(
2623            l.validate().unwrap_err(),
2624            LimitsError::MemoryBelowWasm32Page { bytes: 1 }
2625        );
2626    }
2627
2628    #[test]
2629    fn validate_memory_cap_takes_precedence_over_page_multiple() {
2630        // Cross-arm ordering pin: `LIMITS_MEMORY_WASM32_MAX_BYTES + 1`
2631        // (4 GiB + 1 byte) is *both* above-cap and not page-aligned.
2632        // The cap arm strictly precedes the page-multiple arm so the
2633        // more aggressive cap-shape diagnostic leads (the page-multiple
2634        // remediation would be misleading when the offending value
2635        // exceeds the wasm32 address-space ceiling anyway — the
2636        // canonical fix collapses both into "pin a page-aligned value
2637        // ≤ 4 GiB"). Peer of `WallClockNotCanonical` →
2638        // `WallClockExceedsCap` ordering on the sibling `:wall-clock`
2639        // axis (with the inverse polarity — there the granularity
2640        // gate leads because sub-millisecond residue breaks serde
2641        // round-trip; here the cap leads because both gates' offending
2642        // values round-trip cleanly through serde and the broader
2643        // magnitude constraint is the more aggressive one).
2644        let bytes = LIMITS_MEMORY_WASM32_MAX_BYTES + 1;
2645        let l = LimitsSpec {
2646            memory: Some(bytes),
2647            ..Default::default()
2648        };
2649        assert_eq!(
2650            l.validate().unwrap_err(),
2651            LimitsError::MemoryExceedsWasm32Cap { bytes }
2652        );
2653    }
2654
2655    #[test]
2656    fn validate_rejects_memory_page_multiple_before_other_axes() {
2657        // With a sub-page-residue `:memory` and zero values on every
2658        // other axis, the diagnostic names `:memory` rather than
2659        // `:fuel` / `:wall-clock` / `:cpu` — peer of the existing
2660        // `validate_memory_page_floor_takes_precedence_over_other_axes`
2661        // and `validate_rejects_memory_cap_before_other_axes` ordering
2662        // pins. Memory is the first axis the validate cascade checks,
2663        // so a sub-page-residue value surfaces before any other-axis
2664        // diagnostic regardless of how many other axes are
2665        // simultaneously invalid.
2666        let bytes = LIMITS_MEMORY_WASM32_PAGE_BYTES + 1;
2667        let l = LimitsSpec {
2668            memory: Some(bytes),
2669            fuel: Some(0),
2670            wall_clock: Some(Duration::ZERO),
2671            cpu: Some(0),
2672        };
2673        assert_eq!(
2674            l.validate().unwrap_err(),
2675            LimitsError::MemoryNotPageMultiple { bytes }
2676        );
2677    }
2678
2679    #[test]
2680    fn memory_page_multiple_diagnostic_carries_offending_bytes() {
2681        // Diagnostic-shape pin: the page-multiple arm names the
2682        // offending byte count verbatim so the author's grep lands on
2683        // the field's value, not a generic "memory not aligned"
2684        // message. Same shape every other typed-cap arm on this
2685        // surface carries (`MemoryExceedsWasm32Cap` carries the
2686        // offending byte count verbatim, `WallClockNotCanonical`
2687        // carries the offending `Duration` verbatim).
2688        let bytes = LIMITS_MEMORY_WASM32_PAGE_BYTES + 12345;
2689        let l = LimitsSpec {
2690            memory: Some(bytes),
2691            ..Default::default()
2692        };
2693        let err = l.validate().unwrap_err();
2694        let msg = err.to_string();
2695        assert!(
2696            msg.contains(&bytes.to_string()),
2697            "diagnostic must carry the offending byte count verbatim (got {msg:?})"
2698        );
2699        assert!(
2700            msg.contains("64 KiB") || msg.contains("65536") || msg.contains("page"),
2701            "diagnostic must name the page-size granularity (got {msg:?})"
2702        );
2703    }
2704
2705    #[test]
2706    fn sub_page_residue_value_still_round_trips_through_serde() {
2707        // The byte-size codec accepts the sub-page-residue value (the
2708        // page-multiple gate lives in validate, not in the codec) —
2709        // peer of `above_cap_value_still_round_trips_through_serde`
2710        // and `below_page_value_still_round_trips_through_serde`.
2711        // Pins that the structural property is "sub-page-residue is
2712        // rejected by validate" — not "sub-page-residue is
2713        // unparseable by the codec"; the latter would prevent the
2714        // diagnostic from naming the offending byte count at all,
2715        // since deserialize would fail first. The render-then-parse
2716        // round trip also pins the codec's flow-through-to-bytes
2717        // shape on non-power-of-1024 magnitudes: `render_byte_size`
2718        // falls through every `(mult, label)` arm whose `n % mult !=
2719        // 0` and emits the bare byte count.
2720        let bytes = LIMITS_MEMORY_WASM32_PAGE_BYTES + 1;
2721        let l = LimitsSpec {
2722            memory: Some(bytes),
2723            ..Default::default()
2724        };
2725        let json = serde_json::to_string(&l).unwrap();
2726        let back: LimitsSpec = serde_json::from_str(&json).unwrap();
2727        assert_eq!(l, back);
2728        assert!(back.validate().is_err());
2729    }
2730
2731    #[test]
2732    fn validate_memory_axis_routes_through_quantum_multiple_bounded_helper() {
2733        // Byte-parity pin on the pre-lift `if self.memory() == Some(0)
2734        // { … } if let Some(m) = self.memory() { if m <
2735        // LIMITS_MEMORY_WASM32_PAGE_BYTES { … } } if let Some(m) =
2736        // self.memory() { if m > LIMITS_MEMORY_WASM32_MAX_BYTES { … } }
2737        // if let Some(m) = self.memory() && m %
2738        // LIMITS_MEMORY_WASM32_PAGE_BYTES != 0 { … }` four-sequential-
2739        // `if let` shape the `LimitsSpec::validate` `:memory` axis
2740        // routed through today via
2741        // `crate::render::require_positive_quantum_multiple_bounded_u64`.
2742        // Refuses a future accidental split between the helper's
2743        // four-arm ordering (zero → below-quantum → cap → not-multiple)
2744        // and the four typed `LimitsError::Memory*` variants each arm
2745        // threads its offending byte count into — a swap of any two
2746        // arms in the helper, or a partial widening (e.g. removing the
2747        // page-multiple arm), or a widening of the `on_below_quantum`
2748        // arm's closure to the `MemoryExceedsWasm32Cap` variant instead
2749        // of `MemoryBelowWasm32Page` — would break exactly one row of
2750        // this pin, matching the pre-lift shape the four consumer sites
2751        // route through today. Same shape as
2752        // `as_seq_body_partitions_the_same_arm_set_as_seq_delims` in
2753        // caixa-ast and the peer `require_positive_bounded_u64` tests
2754        // in the sibling render.rs test module.
2755        //
2756        // (Some(bytes) → expected LimitsError)
2757        let quantum = LIMITS_MEMORY_WASM32_PAGE_BYTES;
2758        let cap = LIMITS_MEMORY_WASM32_MAX_BYTES;
2759        let cases: &[(u64, LimitsError)] = &[
2760            (0, LimitsError::MemoryZero),
2761            (1, LimitsError::MemoryBelowWasm32Page { bytes: 1 }),
2762            (
2763                quantum - 1,
2764                LimitsError::MemoryBelowWasm32Page { bytes: quantum - 1 },
2765            ),
2766            (
2767                cap + 1,
2768                LimitsError::MemoryExceedsWasm32Cap { bytes: cap + 1 },
2769            ),
2770            (
2771                cap + quantum,
2772                LimitsError::MemoryExceedsWasm32Cap {
2773                    bytes: cap + quantum,
2774                },
2775            ),
2776            (
2777                quantum + 1,
2778                LimitsError::MemoryNotPageMultiple { bytes: quantum + 1 },
2779            ),
2780            (
2781                quantum + 12_345,
2782                LimitsError::MemoryNotPageMultiple {
2783                    bytes: quantum + 12_345,
2784                },
2785            ),
2786        ];
2787        for (bytes, expected) in cases {
2788            let l = LimitsSpec {
2789                memory: Some(*bytes),
2790                ..Default::default()
2791            };
2792            assert_eq!(
2793                l.validate().unwrap_err(),
2794                *expected,
2795                "memory={bytes} must surface the {expected:?} arm via the substrate helper",
2796            );
2797        }
2798        // Positive-control: every quantum-multiple in `quantum..=cap`
2799        // passes, closing the four-arm cascade with an `Ok(())` shape.
2800        for bytes in [quantum, quantum * 2, quantum * 100, cap] {
2801            let l = LimitsSpec {
2802                memory: Some(bytes),
2803                ..Default::default()
2804            };
2805            l.validate().unwrap();
2806        }
2807    }
2808
2809    // ── canonical-form: integer-magnitude byte-size codec gate ────────────
2810    //
2811    // Every magnitude `render_byte_size` emits is a non-negative integer
2812    // (no decimal point, no leading sign, no scientific notation). The
2813    // parser's accepted set must match for parse → render → parse to
2814    // round-trip without canonical-form drift. The tests below pin every
2815    // canonical-drift shape — fractional (`"1.5KiB"`), decimal-shaped-
2816    // integer (`"1.0MiB"`), half-unit (`"0.5GiB"`), leading-`+`
2817    // (`"+1024"`) — plus the scientific-notation dispatch path (caught
2818    // by `UnknownByteUnit` on a different arm), the two complement-side
2819    // pins (the integer happy paths the gate must continue to accept),
2820    // the round-trip convergence property (parse → render → parse must
2821    // converge on a single canonical form for every accepted input),
2822    // the BadByteMagnitude-precedence pin (genuinely unparseable inputs
2823    // keep their narrower diagnostic), the overflow-surface pin
2824    // (u64-overflow on magnitude × unit surfaces at parse time), and
2825    // the serde-path pin (the gate fires at deserialize, before any
2826    // validate gate runs).
2827
2828    #[test]
2829    fn parse_byte_size_rejects_fractional_kib() {
2830        // The fail-before-pass-after pin: `"1.5KiB"` parsed cleanly on
2831        // every pre-gate codebase (f64::parse accepts the decimal), the
2832        // codec produced 1536 bytes, and `render_byte_size(1536)`
2833        // emitted `"1536"` on the next serialize — silently drifting
2834        // the canonical form away from the author's intent. The new
2835        // gate surfaces the round-trip break at the parser layer with
2836        // a self-locating diagnostic (the offending magnitude verbatim,
2837        // the canonical-form remediation in the wording).
2838        let err = parse_byte_size("1.5KiB").unwrap_err();
2839        assert!(
2840            matches!(err, LimitsError::NonIntegerByteMagnitude { ref value } if value == "1.5"),
2841            "got {err:?}"
2842        );
2843    }
2844
2845    #[test]
2846    fn parse_byte_size_rejects_decimal_shaped_integer() {
2847        // The canonical-drift case where the *value* is integer but
2848        // the *form* carries a redundant decimal point — `"1.0MiB"`
2849        // parses to 1 MiB (integer), but the renderer emits `"1MiB"`
2850        // on the next serialize (no decimal point). The parse-shape
2851        // gate fires here too so the codec's accepted set is exactly
2852        // the renderer's emitted set — no `"1.0MiB"` ↔ `"1MiB"` drift
2853        // surviving a round-trip silently.
2854        let err = parse_byte_size("1.0MiB").unwrap_err();
2855        assert!(
2856            matches!(err, LimitsError::NonIntegerByteMagnitude { ref value } if value == "1.0"),
2857            "got {err:?}"
2858        );
2859    }
2860
2861    #[test]
2862    fn parse_byte_size_rejects_half_gib() {
2863        // `"0.5GiB"` parses to 536870912 bytes = 512MiB; the renderer
2864        // emits `"512MiB"` on the next serialize. Pin the round-trip
2865        // drift on the explicitly-fractional case sized to land on a
2866        // unit boundary, so the gate's coverage includes both the
2867        // "doesn't land on a boundary" (1.5KiB → 1536) and "lands on
2868        // a smaller-unit boundary" (0.5GiB → 512MiB) drift shapes.
2869        let err = parse_byte_size("0.5GiB").unwrap_err();
2870        assert!(
2871            matches!(err, LimitsError::NonIntegerByteMagnitude { ref value } if value == "0.5"),
2872            "got {err:?}"
2873        );
2874    }
2875
2876    #[test]
2877    fn parse_byte_size_rejects_scientific_notation_via_unit_arm() {
2878        // Scientific-notation magnitudes are canonical-form drift too
2879        // — the renderer never emits `"1e3KiB"` for any value. But
2880        // they're caught on a *different* arm than the fractional /
2881        // leading-`+` shapes: the parser's split-on-first-alphabetic-
2882        // byte heuristic reads the `e` as a unit prefix, so the input
2883        // falls into the existing `UnknownByteUnit { unit: "e3KiB" }`
2884        // diagnostic before the `NonIntegerByteMagnitude` gate is
2885        // consulted. Pin this dispatch path so a future relaxation of
2886        // the split heuristic (e.g. recognizing `e` as part of a
2887        // scientific-notation magnitude) surfaces here as a test
2888        // failure — at which point the `NonIntegerByteMagnitude` gate
2889        // would correctly take over, and this test would flip to that
2890        // arm with no other change required.
2891        let err = parse_byte_size("1e3KiB").unwrap_err();
2892        assert!(
2893            matches!(err, LimitsError::UnknownByteUnit { ref unit } if unit == "e3KiB"),
2894            "got {err:?}"
2895        );
2896    }
2897
2898    #[test]
2899    fn parse_byte_size_rejects_leading_plus() {
2900        // `"+1024"` parses through f64 as 1024 bytes; the renderer
2901        // emits `"1KiB"` on the next serialize. The leading `+` is
2902        // not a renderer-emitted shape, so it falls in the same
2903        // canonical-drift class as the fractional / scientific forms
2904        // — surfacing under the same diagnostic keeps the gate's
2905        // coverage uniform across every non-canonical-but-numeric
2906        // input shape the parser would otherwise accept.
2907        let err = parse_byte_size("+1024").unwrap_err();
2908        assert!(
2909            matches!(err, LimitsError::NonIntegerByteMagnitude { ref value } if value == "+1024"),
2910            "got {err:?}"
2911        );
2912    }
2913
2914    #[test]
2915    fn parse_byte_size_continues_to_accept_integer_magnitudes() {
2916        // The complement-side pin: every canonical integer-magnitude
2917        // form the renderer emits must continue to parse to the same
2918        // value the renderer produced. Sweep the five canonical
2919        // authoring shapes (unitless integer, KiB, MiB, GiB, KB) so a
2920        // future tightening of the parser surfaces here as a test
2921        // failure rather than a silent regression in the canonical
2922        // authoring set.
2923        assert_eq!(parse_byte_size("1024").unwrap(), 1024);
2924        assert_eq!(parse_byte_size("1KiB").unwrap(), 1024);
2925        assert_eq!(parse_byte_size("64MiB").unwrap(), 64 * 1024 * 1024);
2926        assert_eq!(parse_byte_size("1GiB").unwrap(), 1024 * 1024 * 1024);
2927        assert_eq!(parse_byte_size("1000KB").unwrap(), 1_000_000);
2928    }
2929
2930    #[test]
2931    fn parse_byte_size_round_trips_through_render_for_every_canonical_form() {
2932        // The structural property the gate makes load-bearing: every
2933        // value the parser accepts round-trips through `render_byte_size`
2934        // to a string the parser also accepts — and to the *same* value.
2935        // Sweep the values the renderer emits canonically (1024 / 1MiB
2936        // / 1GiB / 1536 / 64MiB) so a future codec change that breaks
2937        // round-trip convergence surfaces here, not at a downstream
2938        // renderer that double-emits a typed slot.
2939        for n in [1u64, 1023, 1024, 1536, 64 * 1024 * 1024, 1024 * 1024 * 1024] {
2940            let rendered = render_byte_size(n);
2941            let reparsed = parse_byte_size(&rendered)
2942                .unwrap_or_else(|e| panic!("render({n}) = {rendered:?} must reparse, got {e:?}"));
2943            assert_eq!(
2944                reparsed, n,
2945                "round-trip drift on {n}: rendered={rendered:?}, reparsed={reparsed}",
2946            );
2947        }
2948    }
2949
2950    #[test]
2951    fn parse_byte_size_keeps_bad_magnitude_for_unparseable_input() {
2952        // The precedence pin: the new `NonIntegerByteMagnitude` arm
2953        // distinguishes *non-canonical-but-numeric* (`"1.5"`, `"1.0"`,
2954        // `"+1024"`, `"-1"`) from *genuinely-unparseable* (`"abc"`,
2955        // `"--1"`) so the existing `BadByteMagnitude` diagnostic's
2956        // wording remains load-bearing for the latter class — the gate
2957        // is additive, not replacing. Pin both arms so a future
2958        // relaxation that collapses them surfaces here.
2959        let err = parse_byte_size("abc").unwrap_err();
2960        assert!(
2961            matches!(err, LimitsError::BadByteMagnitude(_)),
2962            "got {err:?}"
2963        );
2964        let err = parse_byte_size("--1").unwrap_err();
2965        assert!(
2966            matches!(err, LimitsError::BadByteMagnitude(_)),
2967            "got {err:?}"
2968        );
2969    }
2970
2971    #[test]
2972    fn parse_byte_size_overflow_surfaces_as_bad_magnitude() {
2973        // `u64::MAX KiB` overflows the u64 result; the parser surfaces
2974        // the overflow as a `BadByteMagnitude` (not as a saturated
2975        // `u64::MAX` value that the wasm32-cap validate gate then
2976        // catches), so the diagnostic names the offending magnitude ×
2977        // unit pair at parse time rather than as
2978        // `MemoryExceedsWasm32Cap { bytes: u64::MAX }` far from the
2979        // author's intent. (`u64::MAX` itself parses cleanly with no
2980        // unit since `u64::MAX × 1 = u64::MAX` fits.)
2981        let err = parse_byte_size("18446744073709551615KiB").unwrap_err();
2982        let LimitsError::BadByteMagnitude(reason) = err else {
2983            panic!("expected BadByteMagnitude(overflow), got other variant");
2984        };
2985        assert!(
2986            reason.contains("overflow"),
2987            "overflow diagnostic must mention overflow (got {reason:?})"
2988        );
2989    }
2990
2991    // ── canonical-form: leading-zero byte-size codec gate ─────────────────
2992    //
2993    // Direct successor to the `parse_duration` leading-zero arm (39762d7),
2994    // the `supervisor::duration_codec` leading-zero arm (9178904), and the
2995    // `rate_limit_codec` leading-zero arm (4f46830) — the same canonical-
2996    // form render-determinism axis applied to the last typed-numeric codec
2997    // that still admitted leading-zero magnitudes. The digit-only gate
2998    // immediately above accepts every `u64::from_str`-parseable magnitude
2999    // including leading-zero padding, but `render_byte_size` always emits
3000    // the stripped form (`64MiB`, never `064MiB`) — silently drifting the
3001    // canonical string across a parse/render round-trip. Pins each
3002    // canonical leading-zero shape across the unit-set the codec admits
3003    // (KB / MB / GB / KiB / MiB / GiB / bare-integer), the all-zero
3004    // degenerate case, the codec-vs-validate-layer partition (single-byte
3005    // `"0"` stays accepted at the codec because the typed-validate gate
3006    // `MemoryZero` refuses semantic-zero authoring), the complement-side
3007    // pin (`1`..=`9`-led magnitudes stay accepted), and the serde-path pin
3008    // (the gate fires at deserialize, before any validate gate runs).
3009
3010    #[test]
3011    fn parse_byte_size_rejects_leading_zero_magnitude() {
3012        // The fail-before-pass-after pin: `"064MiB"` parsed cleanly on
3013        // every pre-gate codebase (`u64::from_str` accepts the leading
3014        // zero), the codec produced 64 MiB, and
3015        // `render_byte_size(64*1024*1024)` emitted `"64MiB"` on the next
3016        // serialize — silently dropping the leading zero and drifting
3017        // the canonical form away from the author's intent. The new
3018        // gate surfaces the round-trip break at the parser layer with a
3019        // self-locating diagnostic, peer with
3020        // `parse_duration_rejects_leading_zero_magnitude` on the sibling
3021        // codec.
3022        let err = parse_byte_size("064MiB").unwrap_err();
3023        assert!(
3024            matches!(err, LimitsError::LeadingZeroByteMagnitude { ref value } if value == "064"),
3025            "got {err:?}"
3026        );
3027    }
3028
3029    #[test]
3030    fn parse_byte_size_rejects_multi_digit_zero_magnitude() {
3031        // `"00MiB"` is the degenerate leading-zero case — every byte is
3032        // `0`. `u64::from_str("00")` = 0, and the codec produces 0;
3033        // `render_byte_size(0)` emits `"0"` on the next serialize —
3034        // drift from `"00MiB"` to `"0"`. The leading-zero arm refuses
3035        // the drift class at the codec layer while leaving the
3036        // canonical single-byte `"0"` accepted. Peer with
3037        // `parse_duration_rejects_multi_digit_zero_magnitude` on the
3038        // sibling codec.
3039        let err = parse_byte_size("00MiB").unwrap_err();
3040        assert!(
3041            matches!(err, LimitsError::LeadingZeroByteMagnitude { ref value } if value == "00"),
3042            "got {err:?}"
3043        );
3044    }
3045
3046    #[test]
3047    fn parse_byte_size_rejects_leading_zero_in_gib_unit() {
3048        // `"01GiB"` parses to 1 GiB; the renderer emits `"1GiB"` on the
3049        // next serialize. The leading-zero class is a property of the
3050        // magnitude, not the unit — pin a per-GiB magnitude alongside
3051        // the per-MiB / per-KiB / bare-integer pins so the gate's
3052        // coverage is structural across every canonical unit suffix
3053        // the codec accepts. Mirrors the per-hour pin
3054        // `parse_duration_rejects_leading_zero_in_hour_window` carries
3055        // on the sibling codec.
3056        let err = parse_byte_size("01GiB").unwrap_err();
3057        assert!(
3058            matches!(err, LimitsError::LeadingZeroByteMagnitude { ref value } if value == "01"),
3059            "got {err:?}"
3060        );
3061    }
3062
3063    #[test]
3064    fn parse_byte_size_rejects_leading_zero_in_kib_unit() {
3065        // `"0512KiB"` parses to 512 KiB; the renderer emits `"512KiB"`
3066        // on the next serialize. Pin the per-KiB magnitude alongside
3067        // the per-MiB / per-GiB pins so the gate's coverage extends to
3068        // the smallest-unit power-of-1024 suffix the codec admits.
3069        let err = parse_byte_size("0512KiB").unwrap_err();
3070        assert!(
3071            matches!(err, LimitsError::LeadingZeroByteMagnitude { ref value } if value == "0512"),
3072            "got {err:?}"
3073        );
3074    }
3075
3076    #[test]
3077    fn parse_byte_size_rejects_leading_zero_in_decimal_units() {
3078        // `"0500MB"` parses to 500 MB (decimal-unit family — `KB` /
3079        // `MB` / `GB` powers of 1000, distinct from the `KiB` / `MiB` /
3080        // `GiB` powers-of-1024 family); the renderer emits the
3081        // appropriate canonical form on the next serialize. Pin the
3082        // decimal-unit family alongside the power-of-1024 family so the
3083        // gate's coverage is structural across both unit families the
3084        // codec admits.
3085        for (s, expected) in [("0500MB", "0500"), ("01KB", "01"), ("00GB", "00")] {
3086            let err = parse_byte_size(s).unwrap_err();
3087            assert!(
3088                matches!(err, LimitsError::LeadingZeroByteMagnitude { value: ref v } if v == expected),
3089                "got {err:?} for {s:?}"
3090            );
3091        }
3092    }
3093
3094    #[test]
3095    fn parse_byte_size_rejects_leading_zero_bare_integer() {
3096        // The bare-integer (no unit) shorthand inherits the leading-
3097        // zero arm: `"01024"` parses losslessly to 1024 bytes but
3098        // `render_byte_size(1024)` emits `"1KiB"` on the next serialize.
3099        // Pin the bare-integer path so a future relaxation that
3100        // special-cases the unitless shorthand surfaces here as a test
3101        // failure. Mirrors the bare-integer pin
3102        // `parse_duration_rejects_leading_zero_bare_integer_as_seconds`
3103        // carries on the sibling codec.
3104        let err = parse_byte_size("01024").unwrap_err();
3105        assert!(
3106            matches!(err, LimitsError::LeadingZeroByteMagnitude { ref value } if value == "01024"),
3107            "got {err:?}"
3108        );
3109    }
3110
3111    #[test]
3112    fn parse_byte_size_accepts_single_zero_magnitude_at_codec_layer() {
3113        // The codec-layer / typed-validate-layer boundary pin: the
3114        // single-byte `"0"` magnitude round-trips losslessly through
3115        // `render_byte_size` (`render_byte_size(0)` emits `"0"`), so it
3116        // stays accepted at this codec layer across every canonical
3117        // unit suffix. The downstream `LimitsError::MemoryZero` gate is
3118        // what refuses zero-magnitude authoring at the typed-validate
3119        // layer above — the partition keeps the canonical-form-drift
3120        // diagnostic (this arm) and the semantic-zero diagnostic (the
3121        // validate gate) disjoint. Mirrors the
3122        // `parse_duration_accepts_single_zero_magnitude_at_codec_layer`
3123        // partition pin on the sibling codec.
3124        assert_eq!(parse_byte_size("0").unwrap(), 0);
3125        assert_eq!(parse_byte_size("0B").unwrap(), 0);
3126        assert_eq!(parse_byte_size("0KiB").unwrap(), 0);
3127        assert_eq!(parse_byte_size("0MiB").unwrap(), 0);
3128        assert_eq!(parse_byte_size("0GiB").unwrap(), 0);
3129        assert_eq!(parse_byte_size("0KB").unwrap(), 0);
3130    }
3131
3132    #[test]
3133    fn parse_byte_size_accepts_canonical_magnitude_with_leading_one() {
3134        // The complement-side pin on the leading-zero arm: magnitudes
3135        // beginning with `1`..=`9` stay accepted across every canonical
3136        // unit suffix the codec accepts. Pin this so a future
3137        // tightening cannot drift into rejecting valid canonical
3138        // magnitudes — peer with the
3139        // `parse_duration_accepts_canonical_magnitude_with_leading_one`
3140        // pin on the sibling codec.
3141        assert_eq!(parse_byte_size("1").unwrap(), 1);
3142        assert_eq!(parse_byte_size("1KiB").unwrap(), 1024);
3143        assert_eq!(parse_byte_size("1MiB").unwrap(), 1024 * 1024);
3144        assert_eq!(parse_byte_size("1GiB").unwrap(), 1024 * 1024 * 1024);
3145        assert_eq!(parse_byte_size("64MiB").unwrap(), 64 * 1024 * 1024);
3146        assert_eq!(parse_byte_size("9").unwrap(), 9);
3147    }
3148
3149    #[test]
3150    fn de_byte_size_rejects_leading_zero_through_serde() {
3151        // The serde-path pin: a `:limits :memory` carrying a
3152        // leading-zero magnitude (`"064MiB"`) must fail at deserialize
3153        // time, not silently round-trip the value through the parser.
3154        // The gate fires at deserialize, before any validate gate runs
3155        // — peer with `de_duration_rejects_leading_zero_through_serde`
3156        // on the sibling codec.
3157        let json = r#"{"memory":"064MiB"}"#;
3158        let err = serde_json::from_str::<LimitsSpec>(json).unwrap_err();
3159        let msg = err.to_string();
3160        assert!(
3161            msg.contains("leading zero"),
3162            "serde diagnostic must surface the leading-zero reason verbatim (got {msg:?})"
3163        );
3164    }
3165
3166    // ── canonical-form: whitespace-rejection byte-size codec gate ─────────
3167    //
3168    // Direct successor to the `parse_duration` whitespace-rejection arm
3169    // (ebc3a75), the `supervisor::duration_codec` whitespace-rejection
3170    // arm (a7ae622), and the `rate_limit_codec` whitespace-rejection arm
3171    // (1ad7755) on the same canonical-form render-determinism axis. The
3172    // pre-gate top-level `s.trim()` at parse entry and the per-part
3173    // `num_part.trim()` / `unit.trim()` calls silently ate leading /
3174    // trailing / internal whitespace, so every whitespace-carrying
3175    // shape parsed to the same byte magnitude and round-tripped through
3176    // `render_byte_size` to a *different* canonical string on next
3177    // serialize — the same canonical-form-drift class the leading-`+` /
3178    // fractional / leading-zero arms already close on this codec.
3179    // `u8::is_ascii_whitespace` covers the five WhatWG-conformant ASCII
3180    // whitespace bytes (space `0x20`, tab `0x09`, LF `0x0A`, FF `0x0C`,
3181    // CR `0x0D`). Closes the whitespace-rejection axis across every
3182    // typed-magnitude codec in caixa-core.
3183
3184    #[test]
3185    fn parse_byte_size_rejects_leading_whitespace() {
3186        // The fail-before-pass-after pin: `" 64MiB"` — the canonical
3187        // paste-from-aligned-doc / paste-from-YAML-quoted-plain-scalar
3188        // footgun. Before this gate the top-level `s.trim()` at parse
3189        // entry silently ate the leading space and parsed the value to
3190        // 64 * 1024 * 1024 bytes, which then round-tripped through
3191        // `render_byte_size` to `"64MiB"` (a *different* canonical
3192        // string on the next emit) — the exact canonical-form-drift
3193        // class the leading-`+` / leading-zero arms already close,
3194        // extended to the whitespace-byte class. Peer with the sibling
3195        // `parse_duration_rejects_leading_whitespace` arm (ebc3a75) on
3196        // the shared canonical-form-drift trajectory.
3197        let err = parse_byte_size(" 64MiB").unwrap_err();
3198        assert!(
3199            matches!(err, LimitsError::WhitespaceInByteSize { ref value, byte } if value == " 64MiB" && byte == 0x20),
3200            "got {err:?}"
3201        );
3202        let msg = err.to_string();
3203        assert!(
3204            msg.contains("whitespace byte 0x20"),
3205            "diagnostic must surface the offending byte verbatim (got {msg:?})"
3206        );
3207        assert!(
3208            msg.contains("THEORY.md"),
3209            "diagnostic must cite the render-determinism contract (got {msg:?})"
3210        );
3211    }
3212
3213    #[test]
3214    fn parse_byte_size_rejects_trailing_whitespace() {
3215        // `"64MiB "` — the canonical shell-history / trailing-space
3216        // paste footgun. Before this gate the top-level `s.trim()`
3217        // silently ate the trailing space and parsed to 64 * 1024 *
3218        // 1024 bytes, round-tripping to `"64MiB"` on the next emit —
3219        // same canonical-form drift as the leading-space sibling,
3220        // closed on the same whitespace-byte arm.
3221        let err = parse_byte_size("64MiB ").unwrap_err();
3222        assert!(
3223            matches!(err, LimitsError::WhitespaceInByteSize { ref value, byte } if value == "64MiB " && byte == 0x20),
3224            "got {err:?}"
3225        );
3226    }
3227
3228    #[test]
3229    fn parse_byte_size_rejects_internal_whitespace_between_magnitude_and_unit() {
3230        // `"64 MiB"` — the canonical typographically-spaced author
3231        // shape (the same idiom every prose reference to a byte-size
3232        // renders as, mistakenly retained when the value is pasted
3233        // into a codec-shaped slot). Before this gate the per-part
3234        // `num_part.trim()` / `unit.trim()` calls silently ate the
3235        // whitespace between the magnitude and the unit and parsed the
3236        // value to 64 * 1024 * 1024 bytes, round-tripping to `"64MiB"`
3237        // — the codec's *internal* whitespace-tolerance vector,
3238        // orthogonal to the leading / trailing surface but the same
3239        // canonical-form-drift class. Pins the arm as strictly
3240        // stronger than the pre-existing top-level `s.trim()`
3241        // behavior: it fires on whitespace anywhere in the value, not
3242        // just at the string boundary.
3243        let err = parse_byte_size("64 MiB").unwrap_err();
3244        assert!(
3245            matches!(err, LimitsError::WhitespaceInByteSize { ref value, byte } if value == "64 MiB" && byte == 0x20),
3246            "got {err:?}"
3247        );
3248    }
3249
3250    #[test]
3251    fn parse_byte_size_rejects_tab_byte() {
3252        // `"\t64MiB"` — the canonical paste-from-indented-doc /
3253        // paste-from-YAML-block-scalar footgun where a tab byte leads
3254        // the magnitude. Pins that the gate covers tab (`0x09`) as
3255        // well as space (`0x20`) — both are `u8::is_ascii_whitespace`
3256        // members and both would be silently swallowed by `s.trim()`
3257        // pre-gate. The `is_ascii_whitespace` coverage extends beyond
3258        // space alone to the full ASCII-whitespace set (space `0x20`,
3259        // tab `0x09`, LF `0x0A`, FF `0x0C`, CR `0x0D`); this test pins
3260        // the tab arm as a representative of the non-space members.
3261        let err = parse_byte_size("\t64MiB").unwrap_err();
3262        assert!(
3263            matches!(err, LimitsError::WhitespaceInByteSize { ref value, byte } if value == "\t64MiB" && byte == 0x09),
3264            "got {err:?}"
3265        );
3266    }
3267
3268    #[test]
3269    fn parse_byte_size_rejects_trailing_newline() {
3270        // `"64MiB\n"` — the canonical multi-line-paste footgun where
3271        // a trailing LF byte survives the paste. Pins the LF member
3272        // (`0x0A`) of the `is_ascii_whitespace` set as a peer to the
3273        // space and tab pins above — every non-space non-tab
3274        // whitespace byte the WhatWG ASCII-whitespace set covers is
3275        // refused by the same arm.
3276        let err = parse_byte_size("64MiB\n").unwrap_err();
3277        assert!(
3278            matches!(err, LimitsError::WhitespaceInByteSize { ref value, byte } if value == "64MiB\n" && byte == 0x0a),
3279            "got {err:?}"
3280        );
3281    }
3282
3283    #[test]
3284    fn parse_byte_size_accepts_whitespace_free_canonical_forms() {
3285        // The complement-side pin: every canonical whitespace-free
3286        // authoring form the renderer emits stays accepted post-gate.
3287        // Sweep the canonical unit suffixes plus the bare-integer
3288        // shorthand so a future tightening of the whitespace arm that
3289        // over-fires on the accepted set surfaces here as a test
3290        // failure. Peer with the
3291        // `parse_duration_accepts_whitespace_free_canonical_forms` pin
3292        // on the sibling codec.
3293        assert_eq!(parse_byte_size("64MiB").unwrap(), 64 * 1024 * 1024);
3294        assert_eq!(parse_byte_size("1GiB").unwrap(), 1024 * 1024 * 1024);
3295        assert_eq!(parse_byte_size("512KiB").unwrap(), 512 * 1024);
3296        assert_eq!(parse_byte_size("1KB").unwrap(), 1_000);
3297        assert_eq!(parse_byte_size("1024").unwrap(), 1024);
3298        assert_eq!(parse_byte_size("0").unwrap(), 0);
3299    }
3300
3301    #[test]
3302    fn de_byte_size_rejects_whitespace_through_serde() {
3303        // The serde-path pin: a `:limits :memory` carrying a
3304        // whitespace-byte-carrying value (`" 64MiB"`) must fail at
3305        // deserialize time, not silently round-trip the value through
3306        // the pre-existing top-level `s.trim()`. The gate fires at
3307        // deserialize, before any validate gate runs — peer with the
3308        // existing `de_byte_size_rejects_leading_zero_through_serde` /
3309        // `de_duration_rejects_whitespace_through_serde` pins on the
3310        // same canonical-form-drift axis.
3311        let json = r#"{"memory":" 64MiB"}"#;
3312        let err = serde_json::from_str::<LimitsSpec>(json).unwrap_err();
3313        let msg = err.to_string();
3314        assert!(
3315            msg.contains("whitespace byte"),
3316            "serde diagnostic must surface the whitespace reason verbatim (got {msg:?})"
3317        );
3318        assert!(
3319            msg.contains("0x20"),
3320            "serde diagnostic must name the offending byte (got {msg:?})"
3321        );
3322
3323        // The whitespace-free complement — same author-side intent,
3324        // written in the canonical form the renderer would emit,
3325        // deserializes cleanly.
3326        let json = r#"{"memory":"64MiB"}"#;
3327        let l: LimitsSpec = serde_json::from_str(json).unwrap();
3328        assert_eq!(l.memory, Some(64 * 1024 * 1024));
3329    }
3330
3331    // ── canonical-form: non-ASCII Unicode `White_Space` byte-size gate ────
3332    //
3333    // Direct successor to the `parse_byte_size` ASCII-whitespace arm
3334    // (24a8ad4) — closes the strictly-complementary class the byte-scan
3335    // above cannot see. `str::trim` uses `char::is_whitespace` (Unicode
3336    // `White_Space`, strictly wider than the ASCII byte set); a leading /
3337    // trailing / internal NBSP (`\u{00A0}`) / LINE SEPARATOR (`\u{2028}`)
3338    // / EM-SPACE (`\u{2003}`) survives the byte-scan but is silently
3339    // stripped by the top-level trim, drifting to canonical `"64MiB"` on
3340    // round-trip. Pins the arm through the lifted
3341    // [`crate::render::find_non_ascii_whitespace_char`] predicate.
3342
3343    #[test]
3344    fn parse_byte_size_rejects_leading_nbsp() {
3345        // NBSP (`\u{00A0}` = UTF-8 `0xC2 0xA0`) — the canonical
3346        // paste-from-typography / paste-from-word-processor footgun.
3347        // Before this arm landed the byte-scan missed it (neither `0xC2`
3348        // nor `0xA0` is `is_ascii_whitespace`) and `str::trim` at parse
3349        // entry silently stripped it, yielding the same `64 * 1024 *
3350        // 1024` bytes as the whitespace-free canonical form and drifting
3351        // to `"64MiB"` on next serialize.
3352        let s = "\u{00A0}64MiB";
3353        let err = parse_byte_size(s).unwrap_err();
3354        assert!(
3355            matches!(err, LimitsError::NonAsciiWhitespaceInByteSize { ref value, ch, codepoint } if value == s && ch == '\u{00A0}' && codepoint == 0x00A0),
3356            "got {err:?}"
3357        );
3358        let msg = err.to_string();
3359        assert!(
3360            msg.contains("U+00A0"),
3361            "diagnostic must surface the codepoint verbatim (got {msg:?})"
3362        );
3363        assert!(
3364            msg.contains("THEORY.md"),
3365            "diagnostic must cite the render-determinism contract (got {msg:?})"
3366        );
3367    }
3368
3369    #[test]
3370    fn parse_byte_size_rejects_internal_line_separator() {
3371        // LINE SEPARATOR (`\u{2028}`) between magnitude and unit — the
3372        // canonical paste-from-web-doc footgun (many rendering engines
3373        // insert `\u{2028}` at soft-wrap boundaries in RTF/HTML → plain
3374        // text conversion). Pins the arm on a non-space non-NBSP Unicode
3375        // `White_Space` member.
3376        let s = "64\u{2028}MiB";
3377        let err = parse_byte_size(s).unwrap_err();
3378        assert!(
3379            matches!(err, LimitsError::NonAsciiWhitespaceInByteSize { ref value, ch, codepoint } if value == s && ch == '\u{2028}' && codepoint == 0x2028),
3380            "got {err:?}"
3381        );
3382    }
3383
3384    #[test]
3385    fn parse_byte_size_rejects_trailing_ideographic_space() {
3386        // IDEOGRAPHIC SPACE (`\u{3000}`) — the CJK-typography paste
3387        // footgun (canonical U+3000 is the full-width space that
3388        // Japanese / Chinese IMEs emit when input is auto-widened). Pins
3389        // the arm at the top edge of the `char::is_whitespace` set.
3390        let s = "64MiB\u{3000}";
3391        let err = parse_byte_size(s).unwrap_err();
3392        assert!(
3393            matches!(err, LimitsError::NonAsciiWhitespaceInByteSize { ref value, ch, codepoint } if value == s && ch == '\u{3000}' && codepoint == 0x3000),
3394            "got {err:?}"
3395        );
3396    }
3397
3398    #[test]
3399    fn parse_byte_size_accepts_ascii_only_canonical_forms_after_unicode_arm() {
3400        // Positive-control pin: every ASCII-only canonical form the
3401        // renderer emits stays accepted through the new arm — the
3402        // lifted predicate is a strict no-op on ASCII input.
3403        assert_eq!(parse_byte_size("64MiB").unwrap(), 64 * 1024 * 1024);
3404        assert_eq!(parse_byte_size("1GiB").unwrap(), 1024 * 1024 * 1024);
3405        assert_eq!(parse_byte_size("512KiB").unwrap(), 512 * 1024);
3406        assert_eq!(parse_byte_size("1024").unwrap(), 1024);
3407    }
3408
3409    // ── canonical-form: integer-magnitude duration codec gate ─────────────
3410    //
3411    // Direct successor to the `parse_byte_size` integer-magnitude gate on
3412    // the peer `:limits :memory` codec — every magnitude `render_duration`
3413    // emits is a non-negative integer (no decimal point, no leading sign,
3414    // no scientific notation). The parser's accepted set must match for
3415    // parse → render → parse to round-trip without canonical-form drift.
3416    // Pins every canonical-drift shape — fractional (`"1.5s"`),
3417    // decimal-shaped-integer (`"1.0s"`), half-unit (`"0.5m"`),
3418    // leading-`+` (`"+30s"`), leading-`-` (`"-30s"`) — plus the
3419    // complement-side pin (integer happy paths), the round-trip
3420    // convergence property, the BadDurationMagnitude-precedence pin
3421    // (genuinely unparseable inputs keep their narrower diagnostic), the
3422    // overflow-surface pin (u64-overflow on magnitude × unit surfaces at
3423    // parse time), and the serde-path pin (the gate fires at deserialize,
3424    // before any validate gate runs).
3425
3426    #[test]
3427    fn parse_duration_rejects_fractional_seconds() {
3428        // The fail-before-pass-after pin: `"1.5s"` parsed cleanly on
3429        // every pre-gate codebase (f64::parse accepts the decimal), the
3430        // codec produced 1500ms, and `render_duration(1500ms)` emitted
3431        // `"1500ms"` on the next serialize — silently drifting the
3432        // canonical form away from the author's intent. The new gate
3433        // surfaces the round-trip break at the parser layer with a
3434        // self-locating diagnostic.
3435        let err = parse_duration("1.5s").unwrap_err();
3436        assert!(
3437            matches!(err, LimitsError::NonIntegerDurationMagnitude { ref value } if value == "1.5"),
3438            "got {err:?}"
3439        );
3440    }
3441
3442    #[test]
3443    fn parse_duration_rejects_decimal_shaped_integer() {
3444        // The canonical-drift case where the *value* is integer but the
3445        // *form* carries a redundant decimal point — `"1.0s"` parses to
3446        // 1s (integer), but the renderer emits `"1s"` on the next
3447        // serialize (no decimal point). The parse-shape gate fires here
3448        // too so the codec's accepted set is exactly the renderer's
3449        // emitted set.
3450        let err = parse_duration("1.0s").unwrap_err();
3451        assert!(
3452            matches!(err, LimitsError::NonIntegerDurationMagnitude { ref value } if value == "1.0"),
3453            "got {err:?}"
3454        );
3455    }
3456
3457    #[test]
3458    fn parse_duration_rejects_half_minute() {
3459        // `"0.5m"` parses to 30s; the renderer emits `"30s"` on the
3460        // next serialize. Pin the round-trip drift on the explicitly-
3461        // fractional case sized to land on a smaller-unit boundary, so
3462        // the gate's coverage includes both the "doesn't land on a
3463        // boundary" (1.5s → 1500ms) and "lands on a smaller-unit
3464        // boundary" (0.5m → 30s) drift shapes — the same two-shape
3465        // pattern the byte-size gate covers (1.5KiB → 1536, 0.5GiB →
3466        // 512MiB).
3467        let err = parse_duration("0.5m").unwrap_err();
3468        assert!(
3469            matches!(err, LimitsError::NonIntegerDurationMagnitude { ref value } if value == "0.5"),
3470            "got {err:?}"
3471        );
3472    }
3473
3474    #[test]
3475    fn parse_duration_rejects_leading_plus() {
3476        // `"+30s"` parses through f64 as 30s; the renderer emits `"30s"`
3477        // on the next serialize. The leading `+` is not a renderer-
3478        // emitted shape, so it falls in the same canonical-drift class
3479        // as the fractional forms — surfacing under the same diagnostic
3480        // keeps the gate's coverage uniform across every non-canonical-
3481        // but-numeric input shape the parser would otherwise accept.
3482        let err = parse_duration("+30s").unwrap_err();
3483        assert!(
3484            matches!(err, LimitsError::NonIntegerDurationMagnitude { ref value } if value == "+30"),
3485            "got {err:?}"
3486        );
3487    }
3488
3489    #[test]
3490    fn parse_duration_rejects_negative_seconds_via_integer_gate() {
3491        // The negative-magnitude class — pre-gate the parser routed
3492        // negatives through the `num < 0.0` check to `BadDurationMagnitude`;
3493        // the new digit-only gate fires earlier and routes the same
3494        // input to `NonIntegerDurationMagnitude` (negatives are not
3495        // digit-only). Pin the new diagnostic so a future relaxation
3496        // that re-routes negatives back to the old arm surfaces here.
3497        let err = parse_duration("-30s").unwrap_err();
3498        assert!(
3499            matches!(err, LimitsError::NonIntegerDurationMagnitude { ref value } if value == "-30"),
3500            "got {err:?}"
3501        );
3502    }
3503
3504    #[test]
3505    fn parse_duration_continues_to_accept_integer_magnitudes() {
3506        // The complement-side pin: every canonical integer-magnitude
3507        // form the renderer emits must continue to parse to the same
3508        // value the renderer produced. Sweep the canonical authoring
3509        // shapes (ms, bare-s, s, m, h, and the bare-integer "0" zero-
3510        // shape) so a future tightening of the parser surfaces here as
3511        // a test failure rather than a silent regression.
3512        assert_eq!(parse_duration("0s").unwrap(), Duration::ZERO);
3513        assert_eq!(parse_duration("500ms").unwrap(), Duration::from_millis(500));
3514        assert_eq!(parse_duration("30s").unwrap(), Duration::from_secs(30));
3515        assert_eq!(parse_duration("2m").unwrap(), Duration::from_secs(120));
3516        assert_eq!(parse_duration("1h").unwrap(), Duration::from_secs(3600));
3517        assert_eq!(parse_duration("3600").unwrap(), Duration::from_secs(3600));
3518    }
3519
3520    #[test]
3521    fn parse_duration_round_trips_through_render_for_every_canonical_form() {
3522        // The structural property the gate makes load-bearing: every
3523        // value the parser accepts round-trips through the canonical
3524        // [`crate::supervisor::duration_codec::render`] primitive to a
3525        // string the parser also accepts — and to the *same* value.
3526        // Sweep the values the renderer emits canonically (ms / s / m /
3527        // h boundaries plus a non-aligned millisecond) so a future
3528        // codec change that breaks round-trip convergence surfaces here.
3529        for d in [
3530            Duration::from_millis(1),
3531            Duration::from_millis(500),
3532            Duration::from_millis(1500),
3533            Duration::from_secs(1),
3534            Duration::from_secs(30),
3535            Duration::from_secs(60),
3536            Duration::from_secs(120),
3537            Duration::from_secs(3600),
3538        ] {
3539            let rendered = crate::supervisor::duration_codec::render(d);
3540            let reparsed = parse_duration(&rendered)
3541                .unwrap_or_else(|e| panic!("render({d:?}) = {rendered:?} must reparse, got {e:?}"));
3542            assert_eq!(
3543                reparsed, d,
3544                "round-trip drift on {d:?}: rendered={rendered:?}, reparsed={reparsed:?}",
3545            );
3546        }
3547    }
3548
3549    #[test]
3550    fn parse_duration_keeps_bad_magnitude_for_unparseable_input() {
3551        // The precedence pin: the new `NonIntegerDurationMagnitude` arm
3552        // distinguishes *non-canonical-but-numeric* (`"1.5"`, `"+30"`,
3553        // `"-30"`) from *genuinely-unparseable* (`"abc"`, `"--1"`) so
3554        // the existing `BadDurationMagnitude` diagnostic's wording
3555        // remains load-bearing for the latter class — the gate is
3556        // additive, not replacing.
3557        let err = parse_duration("abcs").unwrap_err();
3558        assert!(
3559            matches!(err, LimitsError::BadDurationMagnitude(_)),
3560            "got {err:?}"
3561        );
3562        let err = parse_duration("--1s").unwrap_err();
3563        assert!(
3564            matches!(err, LimitsError::BadDurationMagnitude(_)),
3565            "got {err:?}"
3566        );
3567    }
3568
3569    #[test]
3570    fn parse_duration_overflow_surfaces_as_bad_magnitude() {
3571        // `u64::MAX h` overflows the seconds computation (magnitude ×
3572        // 3600); the parser surfaces the overflow as a
3573        // `BadDurationMagnitude` with an overflow-shaped wording so the
3574        // diagnostic names the offending magnitude × unit pair at parse
3575        // time. Matches `parse_byte_size`'s overflow-surface arm
3576        // structurally.
3577        let err = parse_duration("18446744073709551615h").unwrap_err();
3578        let LimitsError::BadDurationMagnitude(reason) = err else {
3579            panic!("expected BadDurationMagnitude(overflow), got other variant");
3580        };
3581        assert!(
3582            reason.contains("overflow"),
3583            "overflow diagnostic must mention overflow (got {reason:?})"
3584        );
3585    }
3586
3587    // ── canonical-form: leading-zero duration codec gate ─────────────────
3588    //
3589    // Direct successor to the `supervisor::duration_codec` leading-zero
3590    // arm (9178904) and the `rate_limit_codec` leading-zero arm (4f46830)
3591    // — closes the leading-zero canonical-form-drift class on the
3592    // `:limits :wall-clock` codec. Every magnitude `render_duration`
3593    // emits is a non-negative integer with no leading-zero padding; the
3594    // parser's accepted set must match for parse → render → parse to
3595    // round-trip without canonical-form drift. The single-byte `"0"`
3596    // round-trips losslessly (`render_duration(Duration::ZERO)` emits
3597    // `"0s"`) and the downstream [`LimitsError::WallClockZero`] gate
3598    // refuses zero-magnitude authoring at the typed-validate layer above
3599    // — the codec-layer / typed-validate-layer partition is what keeps
3600    // the diagnostic partitioning stable.
3601
3602    #[test]
3603    fn parse_duration_rejects_leading_zero_magnitude() {
3604        // The fail-before-pass-after pin: `"030s"` parsed cleanly on
3605        // every pre-gate codebase (`u64::from_str` accepts the leading
3606        // zero), the codec produced 30s, and `render_duration(30s)`
3607        // emitted `"30s"` on the next serialize — silently dropping
3608        // the leading zero and drifting the canonical form away from
3609        // the author's intent. The new gate surfaces the round-trip
3610        // break at the parser layer with a self-locating diagnostic.
3611        let err = parse_duration("030s").unwrap_err();
3612        assert!(
3613            matches!(err, LimitsError::LeadingZeroDurationMagnitude { ref value } if value == "030"),
3614            "got {err:?}"
3615        );
3616    }
3617
3618    #[test]
3619    fn parse_duration_rejects_multi_digit_zero_magnitude() {
3620        // `"00s"` is the degenerate leading-zero case — every byte is
3621        // `0`. `u64::from_str("00")` = 0, and the codec produces
3622        // `Duration::ZERO`; `render_duration(Duration::ZERO)` emits
3623        // `"0s"` on the next serialize — drift from `"00s"` to `"0s"`.
3624        // The leading-zero arm refuses the drift class at the codec
3625        // layer while leaving the canonical single-byte `"0s"` accepted.
3626        let err = parse_duration("00s").unwrap_err();
3627        assert!(
3628            matches!(err, LimitsError::LeadingZeroDurationMagnitude { ref value } if value == "00"),
3629            "got {err:?}"
3630        );
3631    }
3632
3633    #[test]
3634    fn parse_duration_rejects_leading_zero_in_hour_window() {
3635        // `"01h"` parses to 1h; the renderer emits `"1h"` on the next
3636        // serialize. The leading-zero class is a property of the
3637        // magnitude, not the unit — pin a per-hour magnitude alongside
3638        // the per-second / per-ms pins so the gate's coverage is
3639        // structural across every canonical unit suffix the codec
3640        // accepts. Mirrors the `_per_hour_window` pin the
3641        // `supervisor::duration_codec` and `rate_limit_codec` leading-
3642        // zero arms carry on the peer codecs.
3643        let err = parse_duration("01h").unwrap_err();
3644        assert!(
3645            matches!(err, LimitsError::LeadingZeroDurationMagnitude { ref value } if value == "01"),
3646            "got {err:?}"
3647        );
3648    }
3649
3650    #[test]
3651    fn parse_duration_rejects_leading_zero_bare_integer_as_seconds() {
3652        // The bare-integer-as-seconds shorthand (`"30"` → 30s, no unit
3653        // suffix because the parser routes the empty `unit` slot to
3654        // `Duration::from_secs`) inherits the leading-zero arm: `"030"`
3655        // parses losslessly to 30s but `render_duration(30s)` emits
3656        // `"30s"` on the next serialize. Pin the bare-integer path so a
3657        // future relaxation that special-cases the unitless shorthand
3658        // surfaces here as a test failure.
3659        let err = parse_duration("030").unwrap_err();
3660        assert!(
3661            matches!(err, LimitsError::LeadingZeroDurationMagnitude { ref value } if value == "030"),
3662            "got {err:?}"
3663        );
3664    }
3665
3666    #[test]
3667    fn parse_duration_accepts_single_zero_magnitude_at_codec_layer() {
3668        // The codec-layer / typed-validate-layer boundary pin: the
3669        // single-byte `"0"` magnitude round-trips losslessly through
3670        // `render_duration` (`render_duration(Duration::ZERO)` emits
3671        // `"0s"`), so it stays accepted at this codec layer across
3672        // every canonical unit suffix. The downstream
3673        // `LimitsError::WallClockZero` gate is what refuses
3674        // zero-magnitude authoring at the typed-validate layer above
3675        // — the partition keeps the canonical-form-drift diagnostic
3676        // (this arm) and the semantic-zero diagnostic (the validate
3677        // gate) disjoint.
3678        assert_eq!(parse_duration("0s").unwrap(), Duration::ZERO);
3679        assert_eq!(parse_duration("0ms").unwrap(), Duration::ZERO);
3680        assert_eq!(parse_duration("0m").unwrap(), Duration::ZERO);
3681        assert_eq!(parse_duration("0h").unwrap(), Duration::ZERO);
3682        assert_eq!(parse_duration("0").unwrap(), Duration::ZERO);
3683    }
3684
3685    #[test]
3686    fn parse_duration_accepts_canonical_magnitude_with_leading_one() {
3687        // The complement-side pin on the leading-zero arm: magnitudes
3688        // beginning with `1`..=`9` stay accepted across every canonical
3689        // unit suffix the codec accepts. Pin this so a future
3690        // tightening cannot drift into rejecting valid canonical
3691        // magnitudes — peer with the `_accepts_canonical_magnitude_with_leading_one`
3692        // pin the `supervisor::duration_codec` and `rate_limit_codec`
3693        // leading-zero arms carry.
3694        assert_eq!(parse_duration("1ms").unwrap(), Duration::from_millis(1));
3695        assert_eq!(parse_duration("1s").unwrap(), Duration::from_secs(1));
3696        assert_eq!(parse_duration("1m").unwrap(), Duration::from_secs(60));
3697        assert_eq!(parse_duration("1h").unwrap(), Duration::from_secs(3600));
3698        assert_eq!(parse_duration("100ms").unwrap(), Duration::from_millis(100));
3699        assert_eq!(parse_duration("500ms").unwrap(), Duration::from_millis(500));
3700    }
3701
3702    // ── canonical-form: whitespace-rejection duration codec gate ─────────
3703    //
3704    // Direct successor to the `supervisor::duration_codec` whitespace-
3705    // rejection arm (a7ae622) and the `rate_limit_codec` whitespace-
3706    // rejection arm (1ad7755) on the same canonical-form
3707    // render-determinism axis. The pre-gate top-level `s.trim()` at
3708    // parse entry and the per-part `num_part.trim()` / `unit.trim()`
3709    // calls silently ate leading / trailing / internal whitespace, so
3710    // every whitespace-carrying shape parsed to the same integer
3711    // magnitude and round-tripped through `render_duration` to a
3712    // *different* canonical string on next serialize — the same
3713    // canonical-form-drift class the leading-`+` / fractional /
3714    // leading-zero arms already close on this codec. `u8::is_ascii_whitespace`
3715    // covers the five WhatWG-conformant ASCII whitespace bytes
3716    // (space `0x20`, tab `0x09`, LF `0x0A`, FF `0x0C`, CR `0x0D`).
3717
3718    #[test]
3719    fn parse_duration_rejects_leading_whitespace() {
3720        // The fail-before-pass-after pin: `" 30s"` — the canonical
3721        // paste-from-aligned-doc / paste-from-YAML-quoted-plain-scalar
3722        // footgun. Before this gate the top-level `s.trim()` at parse
3723        // entry silently ate the leading space and parsed the value to
3724        // `Duration::from_secs(30)`, which then round-tripped through
3725        // `render_duration` to `"30s"` (a *different* canonical string
3726        // on the next emit) — the exact canonical-form-drift class the
3727        // leading-`+` / leading-zero arms already close, extended to
3728        // the whitespace-byte class. Peer with the sibling
3729        // `supervisor::duration_codec` `parse_rejects_leading_whitespace`
3730        // arm (a7ae622) on the shared duration-codec trajectory.
3731        let err = parse_duration(" 30s").unwrap_err();
3732        assert!(
3733            matches!(err, LimitsError::WhitespaceInDuration { ref value, byte } if value == " 30s" && byte == 0x20),
3734            "got {err:?}"
3735        );
3736        let msg = err.to_string();
3737        assert!(
3738            msg.contains("whitespace byte 0x20"),
3739            "diagnostic must surface the offending byte verbatim (got {msg:?})"
3740        );
3741        assert!(
3742            msg.contains("THEORY.md"),
3743            "diagnostic must cite the render-determinism contract (got {msg:?})"
3744        );
3745    }
3746
3747    #[test]
3748    fn parse_duration_rejects_trailing_whitespace() {
3749        // `"30s "` — the canonical shell-history / trailing-space paste
3750        // footgun. Before this gate the top-level `s.trim()` silently
3751        // ate the trailing space and parsed to `Duration::from_secs(30)`,
3752        // round-tripping to `"30s"` on the next emit — same canonical-
3753        // form drift as the leading-space sibling, closed on the same
3754        // whitespace-byte arm.
3755        let err = parse_duration("30s ").unwrap_err();
3756        assert!(
3757            matches!(err, LimitsError::WhitespaceInDuration { ref value, byte } if value == "30s " && byte == 0x20),
3758            "got {err:?}"
3759        );
3760    }
3761
3762    #[test]
3763    fn parse_duration_rejects_internal_whitespace_between_magnitude_and_unit() {
3764        // `"30 s"` — the canonical typographically-spaced author shape
3765        // (the same idiom every prose reference to a duration renders as,
3766        // mistakenly retained when the value is pasted into a codec-
3767        // shaped slot). Before this gate the per-part `num_part.trim()`
3768        // / `unit.trim()` calls silently ate the whitespace between the
3769        // magnitude and the unit and parsed the value to
3770        // `Duration::from_secs(30)`, round-tripping to `"30s"` — the
3771        // codec's *internal* whitespace-tolerance vector, orthogonal
3772        // to the leading / trailing surface but the same canonical-
3773        // form-drift class. Pins the arm as strictly stronger than the
3774        // pre-existing top-level `s.trim()` behavior: it fires on
3775        // whitespace anywhere in the value, not just at the string
3776        // boundary.
3777        let err = parse_duration("30 s").unwrap_err();
3778        assert!(
3779            matches!(err, LimitsError::WhitespaceInDuration { ref value, byte } if value == "30 s" && byte == 0x20),
3780            "got {err:?}"
3781        );
3782    }
3783
3784    #[test]
3785    fn parse_duration_rejects_tab_byte() {
3786        // `"\t30s"` — the canonical paste-from-indented-doc /
3787        // paste-from-YAML-block-scalar footgun where a tab byte leads
3788        // the magnitude. Pins that the gate covers tab (`0x09`) as well
3789        // as space (`0x20`) — both are `u8::is_ascii_whitespace` members
3790        // and both would be silently swallowed by `s.trim()` pre-gate.
3791        // The `is_ascii_whitespace` coverage extends beyond space alone
3792        // to the full ASCII-whitespace set (space `0x20`, tab `0x09`,
3793        // LF `0x0A`, FF `0x0C`, CR `0x0D`); this test pins the tab arm
3794        // as a representative of the non-space members.
3795        let err = parse_duration("\t30s").unwrap_err();
3796        assert!(
3797            matches!(err, LimitsError::WhitespaceInDuration { ref value, byte } if value == "\t30s" && byte == 0x09),
3798            "got {err:?}"
3799        );
3800    }
3801
3802    #[test]
3803    fn parse_duration_rejects_trailing_newline() {
3804        // `"30s\n"` — the canonical multi-line-paste footgun where a
3805        // trailing LF byte survives the paste. Pins the LF member
3806        // (`0x0A`) of the `is_ascii_whitespace` set as a peer to the
3807        // space and tab pins above — every non-space non-tab whitespace
3808        // byte the WhatWG ASCII-whitespace set covers is refused by
3809        // the same arm.
3810        let err = parse_duration("30s\n").unwrap_err();
3811        assert!(
3812            matches!(err, LimitsError::WhitespaceInDuration { ref value, byte } if value == "30s\n" && byte == 0x0a),
3813            "got {err:?}"
3814        );
3815    }
3816
3817    #[test]
3818    fn parse_duration_accepts_whitespace_free_canonical_forms() {
3819        // The complement-side pin: every canonical whitespace-free
3820        // authoring form the renderer emits stays accepted post-gate.
3821        // Sweep the canonical unit suffixes plus the bare-integer
3822        // shorthand so a future tightening of the whitespace arm that
3823        // over-fires on the accepted set surfaces here as a test
3824        // failure. Peer with the `parse_duration_continues_to_accept_integer_magnitudes`
3825        // pin the fractional / leading-`+` gate carries.
3826        assert_eq!(parse_duration("30s").unwrap(), Duration::from_secs(30));
3827        assert_eq!(parse_duration("500ms").unwrap(), Duration::from_millis(500));
3828        assert_eq!(parse_duration("2m").unwrap(), Duration::from_secs(120));
3829        assert_eq!(parse_duration("1h").unwrap(), Duration::from_secs(3600));
3830        assert_eq!(parse_duration("0s").unwrap(), Duration::ZERO);
3831        assert_eq!(parse_duration("3600").unwrap(), Duration::from_secs(3600));
3832    }
3833
3834    #[test]
3835    fn de_duration_rejects_whitespace_through_serde() {
3836        // The serde-path pin: a `:limits :wall-clock` carrying a
3837        // whitespace-byte-carrying value (`" 30s"`) must fail at
3838        // deserialize time, not silently round-trip the value through
3839        // the pre-existing top-level `s.trim()`. The gate fires at
3840        // deserialize, before any validate gate runs — peer with the
3841        // existing `de_duration_rejects_leading_zero_through_serde` /
3842        // `de_duration_rejects_fractional_value_through_serde` pins on
3843        // the same canonical-form-drift axis.
3844        let json = r#"{"wallClock":" 30s"}"#;
3845        let err = serde_json::from_str::<LimitsSpec>(json).unwrap_err();
3846        let msg = err.to_string();
3847        assert!(
3848            msg.contains("whitespace byte"),
3849            "serde diagnostic must surface the whitespace reason verbatim (got {msg:?})"
3850        );
3851        assert!(
3852            msg.contains("0x20"),
3853            "serde diagnostic must name the offending byte (got {msg:?})"
3854        );
3855
3856        // The whitespace-free complement — same author-side intent,
3857        // written in the canonical form the renderer would emit,
3858        // deserializes cleanly.
3859        let json = r#"{"wallClock":"30s"}"#;
3860        let l: LimitsSpec = serde_json::from_str(json).unwrap();
3861        assert_eq!(l.wall_clock, Some(Duration::from_secs(30)));
3862    }
3863
3864    // ── canonical-form: non-ASCII Unicode `White_Space` duration gate ─────
3865    //
3866    // Successor to the `parse_duration` ASCII-whitespace arm (ebc3a75)
3867    // — closes the strictly-complementary class the byte-scan cannot
3868    // see, through the lifted
3869    // [`crate::render::find_non_ascii_whitespace_char`] predicate.
3870
3871    #[test]
3872    fn parse_duration_rejects_leading_nbsp() {
3873        // NBSP prefix — paste-from-typography footgun. Byte-scan misses,
3874        // `str::trim` strips silently, drifting to `"30s"` on next
3875        // emit.
3876        let s = "\u{00A0}30s";
3877        let err = parse_duration(s).unwrap_err();
3878        assert!(
3879            matches!(err, LimitsError::NonAsciiWhitespaceInDuration { ref value, ch, codepoint } if value == s && ch == '\u{00A0}' && codepoint == 0x00A0),
3880            "got {err:?}"
3881        );
3882        let msg = err.to_string();
3883        assert!(
3884            msg.contains("U+00A0"),
3885            "diagnostic must name codepoint (got {msg:?})"
3886        );
3887    }
3888
3889    #[test]
3890    fn parse_duration_rejects_internal_em_space() {
3891        // EM-SPACE (`\u{2003}`) between magnitude and unit — canonical
3892        // paste-from-typography footgun on the `<integer><unit>` shape.
3893        let s = "30\u{2003}s";
3894        let err = parse_duration(s).unwrap_err();
3895        assert!(
3896            matches!(err, LimitsError::NonAsciiWhitespaceInDuration { ref value, ch, codepoint } if value == s && ch == '\u{2003}' && codepoint == 0x2003),
3897            "got {err:?}"
3898        );
3899    }
3900
3901    #[test]
3902    fn parse_duration_accepts_ascii_only_canonical_forms_after_unicode_arm() {
3903        // Positive-control pin: every ASCII-only canonical form the
3904        // renderer emits stays accepted through the new arm.
3905        assert_eq!(parse_duration("30s").unwrap(), Duration::from_secs(30));
3906        assert_eq!(parse_duration("500ms").unwrap(), Duration::from_millis(500));
3907        assert_eq!(parse_duration("1h").unwrap(), Duration::from_secs(3600));
3908    }
3909
3910    #[test]
3911    fn de_duration_rejects_leading_zero_through_serde() {
3912        // The serde-path pin: a `:limits :wall-clock` carrying a
3913        // leading-zero magnitude (`"030s"`) must fail at deserialize
3914        // time, not silently round-trip the value through the parser.
3915        // The gate fires at deserialize, before any validate gate runs
3916        // — peer with the existing `de_duration_rejects_fractional_value_through_serde`
3917        // pin on the same canonical-form-drift axis.
3918        let json = r#"{"wallClock":"030s"}"#;
3919        let err = serde_json::from_str::<LimitsSpec>(json).unwrap_err();
3920        let msg = err.to_string();
3921        assert!(
3922            msg.contains("leading zero"),
3923            "serde diagnostic must surface the leading-zero reason verbatim (got {msg:?})"
3924        );
3925
3926        let json = r#"{"wallClock":"30s"}"#;
3927        let l: LimitsSpec = serde_json::from_str(json).unwrap();
3928        assert_eq!(l.wall_clock, Some(Duration::from_secs(30)));
3929    }
3930
3931    #[test]
3932    fn de_duration_rejects_fractional_value_through_serde() {
3933        // The serde-path pin: a `:limits :wall-clock` carrying a
3934        // fractional magnitude (`"1.5s"`) must fail at deserialize time,
3935        // not silently round-trip the value through the f64 parser. Pin
3936        // both the success-on-canonical path (the integer form
3937        // deserializes cleanly) and the failure-on-non-canonical path
3938        // (the fractional form is rejected by the codec before any
3939        // validate gate runs).
3940        let json = r#"{"wallClock":"1.5s"}"#;
3941        let err = serde_json::from_str::<LimitsSpec>(json).unwrap_err();
3942        let msg = err.to_string();
3943        assert!(
3944            msg.contains("non-negative integer"),
3945            "serde diagnostic must surface the integer-magnitude reason verbatim \
3946             (got {msg:?})"
3947        );
3948
3949        // The integer-form complement — same author-side intent
3950        // (1.5s = 1500ms), written in the canonical form the renderer
3951        // would emit, deserializes cleanly.
3952        let json = r#"{"wallClock":"1500ms"}"#;
3953        let l: LimitsSpec = serde_json::from_str(json).unwrap();
3954        assert_eq!(l.wall_clock, Some(Duration::from_millis(1500)));
3955    }
3956
3957    #[test]
3958    fn de_byte_size_rejects_fractional_value_through_serde() {
3959        // The serde-path pin: a `:limits :memory` carrying a fractional
3960        // magnitude (`"1.5KiB"`) must fail at deserialize time, not
3961        // silently round-trip the value through the f64 parser. Pin
3962        // both the success-on-canonical path (the integer form
3963        // deserializes cleanly) and the failure-on-non-canonical path
3964        // (the fractional form is rejected by the codec before any
3965        // validate gate runs).
3966        let json = r#"{"memory":"1.5KiB"}"#;
3967        let err = serde_json::from_str::<LimitsSpec>(json).unwrap_err();
3968        let msg = err.to_string();
3969        assert!(
3970            msg.contains("non-negative integer"),
3971            "serde diagnostic must surface the integer-magnitude reason verbatim (got {msg:?})"
3972        );
3973
3974        // The integer-form complement — same author-side intent
3975        // (1.5KiB = 1536 bytes), written in the canonical form the
3976        // renderer would emit, deserializes cleanly.
3977        let json = r#"{"memory":"1536"}"#;
3978        let l: LimitsSpec = serde_json::from_str(json).unwrap();
3979        assert_eq!(l.memory, Some(1536));
3980    }
3981
3982    // ── canonical-form: integer-magnitude millicores codec gate ───────────
3983    //
3984    // Direct successor to the `parse_byte_size` / `parse_duration` /
3985    // shared `supervisor::duration_codec` / `rate_limit_codec`
3986    // integer-magnitude gates on the four peer typed codecs in
3987    // caixa-core — closes the sixth (and last) typed-codec surface in
3988    // the crate. Every magnitude `render_millicores` emits is a
3989    // non-negative integer (`format!("{m}m")`) — no decimal point, no
3990    // leading sign, no scientific notation. The parser's accepted set
3991    // must match for parse → render → parse to round-trip without
3992    // canonical-form drift. Pins every canonical-drift shape —
3993    // leading-`+` (`"+500m"` / `"+2"`, the load-bearing class the
3994    // digit-only gate closes beyond `u32::from_str` strictness),
3995    // leading-`-` (`"-100m"`), fractional (`"1.5"`), decimal-shaped-
3996    // integer on both authoring paths (`"500.0m"` / `"2.0"`), the
3997    // bare-`m`-with-no-magnitude pin, the empty-string pin, the
3998    // garbage-precedence pin (genuinely unparseable inputs keep the
3999    // narrower `BadMillicores` diagnostic), the u32-overflow surface
4000    // pin on both the `m`-suffix and bare-core multiply paths, the
4001    // complement-side pin (every integer happy path the gate must
4002    // continue to accept), the round-trip convergence property, and
4003    // the serde-path pin (the gate fires at deserialize, before any
4004    // validate gate runs).
4005
4006    #[test]
4007    fn parse_millicores_rejects_fractional_magnitude() {
4008        // The fail-before-pass-after pin on the bare-core path:
4009        // `"1.5"` parsed cleanly on no pre-gate codebase (`u32::from_str`
4010        // rejects the decimal), but the diagnostic was value-laundered
4011        // (the bare `BadMillicores("1.5")` wording didn't name the
4012        // canonical-form remediation or the round-trip drift the next
4013        // emit would produce — `1.5 cores × 1000 = 1500 millicores` →
4014        // `"1500m"` on the renderer). The gate routes the same input to
4015        // `NonIntegerMillicoreMagnitude` with the canonical-form wording.
4016        let err = parse_millicores("1.5").unwrap_err();
4017        assert!(
4018            matches!(err, LimitsError::NonIntegerMillicoreMagnitude { ref value } if value == "1.5"),
4019            "got {err:?}"
4020        );
4021    }
4022
4023    #[test]
4024    fn parse_millicores_rejects_decimal_shaped_integer_with_suffix() {
4025        // The canonical-drift case on the `m`-suffix path where the
4026        // *value* is integer but the *form* carries a redundant decimal
4027        // point — `"500.0m"` parses to 500 millicores (integer), but
4028        // the renderer emits `"500m"` on the next serialize (no decimal
4029        // point). The parse-shape gate fires here too so the codec's
4030        // accepted set is exactly the renderer's emitted set — same
4031        // shape as `parse_byte_size`'s `"1.0MiB"` case.
4032        let err = parse_millicores("500.0m").unwrap_err();
4033        assert!(
4034            matches!(err, LimitsError::NonIntegerMillicoreMagnitude { ref value } if value == "500.0"),
4035            "got {err:?}"
4036        );
4037    }
4038
4039    #[test]
4040    fn parse_millicores_rejects_decimal_shaped_integer_bare_core() {
4041        // The decimal-shaped-integer pin on the bare-core path —
4042        // `"2.0"` would be 2000 millicores (the canonical `"2000m"`),
4043        // but the redundant decimal point is not a renderer-emitted
4044        // shape. Surfaces under the same diagnostic as the `m`-suffix
4045        // path so the gate's coverage is uniform across both authoring
4046        // paths.
4047        let err = parse_millicores("2.0").unwrap_err();
4048        assert!(
4049            matches!(err, LimitsError::NonIntegerMillicoreMagnitude { ref value } if value == "2.0"),
4050            "got {err:?}"
4051        );
4052    }
4053
4054    #[test]
4055    fn parse_millicores_rejects_leading_plus_sign_with_suffix() {
4056        // The load-bearing class the digit-only gate closes beyond
4057        // `u32::from_str`'s strictness: current Rust `u32::from_str`
4058        // permissively accepts `"+500"` → 500, so `"+500m"` parsed
4059        // cleanly through the pre-gate codec to `RateLimit`-shaped
4060        // 500 millicores and serde silently round-tripped to `"500m"`
4061        // on the next emit — a *different* canonical string. Same
4062        // shape as `parse_byte_size`'s `"+1024"` (875 commit) and
4063        // `parse_duration`'s `"+30s"` (1027 commit) cases on the peer
4064        // codecs.
4065        let err = parse_millicores("+500m").unwrap_err();
4066        assert!(
4067            matches!(err, LimitsError::NonIntegerMillicoreMagnitude { ref value } if value == "+500"),
4068            "got {err:?}"
4069        );
4070    }
4071
4072    #[test]
4073    fn parse_millicores_rejects_leading_plus_sign_bare_core() {
4074        // The leading-`+` pin on the bare-core path — `"+2"` parsed
4075        // through `u32::from_str` as 2 → 2000 millicores → `"2000m"`
4076        // on the renderer; canonical-drift. The digit-only gate routes
4077        // the same input to `NonIntegerMillicoreMagnitude`, peer with
4078        // the `m`-suffix path.
4079        let err = parse_millicores("+2").unwrap_err();
4080        assert!(
4081            matches!(err, LimitsError::NonIntegerMillicoreMagnitude { ref value } if value == "+2"),
4082            "got {err:?}"
4083        );
4084    }
4085
4086    #[test]
4087    fn parse_millicores_rejects_leading_minus_sign() {
4088        // The negative-magnitude class — pre-gate `u32::from_str`
4089        // rejected negatives but the diagnostic collapsed onto the
4090        // opaque `BadMillicores("-100m")` wording. The digit-only gate
4091        // fires earlier and routes the same input to
4092        // `NonIntegerMillicoreMagnitude` (negatives are not digit-only,
4093        // and `i64::from_str` accepts the leading sign so the numeric
4094        // arm matches). Pin the new diagnostic so a future relaxation
4095        // that re-routes negatives back to the old arm surfaces here.
4096        let err = parse_millicores("-100m").unwrap_err();
4097        assert!(
4098            matches!(err, LimitsError::NonIntegerMillicoreMagnitude { ref value } if value == "-100"),
4099            "got {err:?}"
4100        );
4101    }
4102
4103    #[test]
4104    fn parse_millicores_rejects_empty_string() {
4105        // The empty-input pin — `""` is not a magnitude at all. Pre-
4106        // gate this fell through to `s.parse::<u32>()` and surfaced as
4107        // a generic parse failure with the same `BadMillicores("")`
4108        // wording; the explicit empty-check at the top of the codec
4109        // surfaces the same diagnostic earlier and makes the empty-
4110        // input class structurally distinct from the digit-only /
4111        // numeric / garbage arms below.
4112        let err = parse_millicores("").unwrap_err();
4113        assert!(matches!(err, LimitsError::BadMillicores(_)), "got {err:?}");
4114    }
4115
4116    #[test]
4117    fn parse_millicores_rejects_bare_unit_with_no_magnitude() {
4118        // The bare-`m`-with-no-magnitude pin — `"m"` strips to `""`,
4119        // which is not a magnitude at all. The canonical millicores
4120        // authoring form requires a magnitude in front of the unit
4121        // (`"500m"`, not `"m"`). Surface as `BadMillicores` so the
4122        // narrower-arm wording stays load-bearing for this class.
4123        let err = parse_millicores("m").unwrap_err();
4124        assert!(matches!(err, LimitsError::BadMillicores(_)), "got {err:?}");
4125    }
4126
4127    #[test]
4128    fn parse_millicores_garbage_still_falls_through_to_bad_millicores() {
4129        // The precedence pin: the new `NonIntegerMillicoreMagnitude`
4130        // arm distinguishes *non-canonical-but-numeric* (`"1.5"`,
4131        // `"+500m"`, `"-100m"`, `"500.0m"`) from *genuinely-
4132        // unparseable* (`"abc"`, `"--1m"`, `"foo"`) so the existing
4133        // `BadMillicores` diagnostic's wording remains load-bearing
4134        // for the latter class — the gate is additive, not replacing.
4135        // Pin both arms so a future relaxation that collapses them
4136        // surfaces here.
4137        let err = parse_millicores("abc").unwrap_err();
4138        assert!(matches!(err, LimitsError::BadMillicores(_)), "got {err:?}");
4139        let err = parse_millicores("--1m").unwrap_err();
4140        assert!(matches!(err, LimitsError::BadMillicores(_)), "got {err:?}");
4141        let err = parse_millicores("foo").unwrap_err();
4142        assert!(matches!(err, LimitsError::BadMillicores(_)), "got {err:?}");
4143    }
4144
4145    #[test]
4146    fn parse_millicores_u32_overflow_with_suffix_surfaces_as_overflow() {
4147        // The u32-overflow surface pin on the `m`-suffix path: a
4148        // magnitude exceeding `u32::MAX` (4294967296 = u32::MAX + 1)
4149        // surfaces as `BadMillicores` with an overflow-shaped wording
4150        // naming the offending magnitude verbatim. The digit-only
4151        // guard guarantees every byte is `[0-9]`, so overflow is the
4152        // only remaining `u32::from_str` failure mode — the overflow
4153        // arm is no longer in unreachable-by-prior-gate territory.
4154        // Matches the overflow-arm shape on `parse_byte_size` /
4155        // `parse_duration` / `rate_limit_codec`.
4156        let err = parse_millicores("4294967296m").unwrap_err();
4157        let LimitsError::BadMillicores(reason) = err else {
4158            panic!("expected BadMillicores(overflow), got other variant");
4159        };
4160        assert!(
4161            reason.contains("overflow"),
4162            "overflow diagnostic must mention overflow (got {reason:?})"
4163        );
4164    }
4165
4166    #[test]
4167    fn parse_millicores_bare_core_overflow_surfaces_as_overflow() {
4168        // The u32-overflow surface pin on the bare-core path: a
4169        // magnitude that fits u32 on its own but overflows on the
4170        // `× 1000` conversion to millicores surfaces as
4171        // `BadMillicores` with an overflow-shaped wording. Pre-gate
4172        // the codec used `saturating_mul(1000)` which silently
4173        // saturated the result at `u32::MAX` — landing as the cap
4174        // value far from the author's intent and bypassing any
4175        // future validate-time upper-bound gate the `:cpu` axis
4176        // grows. The `checked_mul` rewrite surfaces the overflow at
4177        // parse time. (4294968 cores × 1000 = 4294968000 > u32::MAX
4178        // = 4294967295 — the smallest digit-string that overflows
4179        // u32 on the × 1000 multiply while fitting u32 on its own.)
4180        let err = parse_millicores("4294968").unwrap_err();
4181        let LimitsError::BadMillicores(reason) = err else {
4182            panic!("expected BadMillicores(× 1000 overflow), got other variant");
4183        };
4184        assert!(
4185            reason.contains("overflow"),
4186            "× 1000 overflow diagnostic must mention overflow (got {reason:?})"
4187        );
4188    }
4189
4190    #[test]
4191    fn parse_millicores_continues_to_accept_canonical_forms() {
4192        // The complement-side pin: every canonical integer-magnitude
4193        // form the renderer emits must continue to parse to the same
4194        // value the renderer produced. Sweep the canonical authoring
4195        // shapes on both paths (the `m`-suffix path: `"0m"`, `"500m"`,
4196        // `"2000m"`; the bare-core shorthand: `"0"`, `"2"`, `"4"`) so
4197        // a future tightening of the parser surfaces here as a test
4198        // failure rather than a silent regression. The `0` case is at
4199        // the codec layer only; `validate_rejects_zero_cpu` rejects
4200        // `Some(0)` one level up.
4201        assert_eq!(parse_millicores("0m").unwrap(), 0);
4202        assert_eq!(parse_millicores("500m").unwrap(), 500);
4203        assert_eq!(parse_millicores("1500m").unwrap(), 1500);
4204        assert_eq!(parse_millicores("2000m").unwrap(), 2000);
4205        assert_eq!(parse_millicores("0").unwrap(), 0);
4206        assert_eq!(parse_millicores("2").unwrap(), 2000);
4207        assert_eq!(parse_millicores("4").unwrap(), 4000);
4208    }
4209
4210    #[test]
4211    fn parse_millicores_round_trips_through_render_for_every_canonical_form() {
4212        // The structural property the gate makes load-bearing: every
4213        // value the parser accepts round-trips through
4214        // `render_millicores` to a string the parser also accepts —
4215        // and to the *same* value. Sweep the values the renderer emits
4216        // canonically (zero, sub-core, single-core boundary, multi-
4217        // core, and a non-1000-multiple millicore value) so a future
4218        // codec change that breaks round-trip convergence surfaces
4219        // here, not at a downstream renderer that double-emits a
4220        // typed slot.
4221        for m in [0u32, 1, 100, 500, 1000, 1500, 2000, 12345] {
4222            let rendered = render_millicores(m);
4223            let reparsed = parse_millicores(&rendered)
4224                .unwrap_or_else(|e| panic!("render({m}) = {rendered:?} must reparse, got {e:?}"));
4225            assert_eq!(
4226                reparsed, m,
4227                "round-trip drift on {m}: rendered={rendered:?}, reparsed={reparsed}",
4228            );
4229        }
4230    }
4231
4232    #[test]
4233    fn de_millicores_rejects_leading_plus_through_serde() {
4234        // The serde-path pin: a `:limits :cpu` carrying a leading-`+`
4235        // magnitude (`"+500m"`) must fail at deserialize time, not
4236        // silently round-trip the value through `u32::from_str`'s
4237        // permissive sign-acceptance. Pin both the success-on-canonical
4238        // path (the integer form deserializes cleanly) and the
4239        // failure-on-non-canonical path (the leading-`+` form is
4240        // rejected by the codec before any validate gate runs).
4241        let json = r#"{"cpu":"+500m"}"#;
4242        let err = serde_json::from_str::<LimitsSpec>(json).unwrap_err();
4243        let msg = err.to_string();
4244        assert!(
4245            msg.contains("non-negative integer"),
4246            "serde diagnostic must surface the integer-magnitude reason verbatim \
4247             (got {msg:?})"
4248        );
4249
4250        // The integer-form complement — same author-side intent
4251        // (500 millicores), written in the canonical form the renderer
4252        // would emit, deserializes cleanly.
4253        let json = r#"{"cpu":"500m"}"#;
4254        let l: LimitsSpec = serde_json::from_str(json).unwrap();
4255        assert_eq!(l.cpu, Some(500));
4256    }
4257
4258    // ── canonical-form: leading-zero millicores codec gate ────────────────
4259    //
4260    // Direct successor to the `parse_byte_size` / `parse_duration` /
4261    // `supervisor::duration_codec` / `rate_limit_codec` leading-zero
4262    // arms (cea9a78 / 39762d7 / 9178904 / 4f46830) — closes the sixth
4263    // (and last) typed numeric-codec surface in caixa-core on the
4264    // integer-magnitude leading-zero axis. Every magnitude
4265    // `render_millicores` emits is the leading-zero-stripped form
4266    // (`format!("{m}m")` — no leading-zero padding), so a digit-only-
4267    // but-leading-zero magnitude parses losslessly through `u32::from_str`
4268    // and serde silently round-trips the value to a *different*
4269    // canonical string on the next emit. Pins every canonical-drift
4270    // shape on the `m`-suffix and bare-core paths, the codec-vs-
4271    // typed-validate-layer boundary (the single-byte `"0"` stays in the
4272    // codec's accepted set; `CpuZero` refuses it at validate), the
4273    // complement-side pin (every canonical leading-`[1-9]` magnitude
4274    // continues to parse cleanly), and the serde-path pin.
4275
4276    #[test]
4277    fn parse_millicores_rejects_leading_zero_magnitude_with_suffix() {
4278        // The fail-before-pass-after pin on the `m`-suffix path:
4279        // `"0500m"` parsed cleanly on no pre-gate codebase
4280        // (`u32::from_str` accepts `"0500"` → 500), then `render_millicores`
4281        // emitted `"500m"` on the next serialize — canonical-form drift.
4282        // The leading-zero arm routes the same input to
4283        // `LeadingZeroMillicoreMagnitude` with the canonical-form
4284        // remediation wording. Peer with the `parse_byte_size` `"064MiB"`
4285        // case and the `parse_duration` `"030s"` case.
4286        let err = parse_millicores("0500m").unwrap_err();
4287        assert!(
4288            matches!(err, LimitsError::LeadingZeroMillicoreMagnitude { ref value } if value == "0500"),
4289            "got {err:?}"
4290        );
4291    }
4292
4293    #[test]
4294    fn parse_millicores_rejects_multi_digit_zero_magnitude_with_suffix() {
4295        // The multi-zero pin on the `m`-suffix path: `"00m"` parses to 0
4296        // millicores at the codec, but the renderer emits `"0m"` on the
4297        // next serialize — the single canonical zero form on this axis.
4298        // The leading-zero arm rejects multi-byte leading-zero shapes
4299        // even when the value is zero; the single-byte `"0m"` /
4300        // bare-`"0"` stays in the codec's accepted set per the boundary
4301        // pin below. Peer with the `parse_byte_size` `"00MiB"` case and
4302        // the `parse_duration` `"00s"` case.
4303        let err = parse_millicores("00m").unwrap_err();
4304        assert!(
4305            matches!(err, LimitsError::LeadingZeroMillicoreMagnitude { ref value } if value == "00"),
4306            "got {err:?}"
4307        );
4308    }
4309
4310    #[test]
4311    fn parse_millicores_rejects_leading_zero_bare_core() {
4312        // The leading-zero pin on the bare-core path: `"02"` parsed to
4313        // 2 cores → 2000 millicores at the codec, but `render_millicores`
4314        // emits `"2000m"` on the next serialize — canonical-form drift.
4315        // The bare-core shorthand carries the same leading-zero discipline
4316        // as the `m`-suffix path; both authoring paths converge to the
4317        // same gate. Peer with the `parse_byte_size` bare-integer
4318        // `"01024"` case.
4319        let err = parse_millicores("02").unwrap_err();
4320        assert!(
4321            matches!(err, LimitsError::LeadingZeroMillicoreMagnitude { ref value } if value == "02"),
4322            "got {err:?}"
4323        );
4324    }
4325
4326    #[test]
4327    fn parse_millicores_rejects_leading_zero_multi_digit_with_suffix() {
4328        // The multi-digit leading-zero pin on the `m`-suffix path:
4329        // `"01500m"` parses to 1500 millicores at the codec, but the
4330        // renderer emits `"1500m"` on the next serialize — canonical-form
4331        // drift on a non-zero magnitude. Sweeps a different magnitude
4332        // shape than the `"0500m"` case so a future tightening that
4333        // misses the multi-digit-leading-zero class surfaces here.
4334        let err = parse_millicores("01500m").unwrap_err();
4335        assert!(
4336            matches!(err, LimitsError::LeadingZeroMillicoreMagnitude { ref value } if value == "01500"),
4337            "got {err:?}"
4338        );
4339    }
4340
4341    #[test]
4342    fn parse_millicores_accepts_single_zero_magnitude_at_codec_layer() {
4343        // The codec-layer / typed-validate-layer boundary pin: the
4344        // single-byte magnitude `"0"` (bare) and `"0m"` (with suffix)
4345        // round-trip losslessly through `render_millicores` (which
4346        // emits `"0m"` for 0 millicores), so they stay in the codec's
4347        // accepted set. The downstream `CpuZero` gate refuses
4348        // semantic-zero authoring at the typed-validate layer above —
4349        // the diagnostic partitioning between canonical-form drift
4350        // (the leading-zero arm) and semantic-zero (the `CpuZero` gate)
4351        // remains stable. Same codec-layer / typed-validate-layer
4352        // partition the peer codecs preserve.
4353        assert_eq!(parse_millicores("0").unwrap(), 0);
4354        assert_eq!(parse_millicores("0m").unwrap(), 0);
4355    }
4356
4357    #[test]
4358    fn parse_millicores_accepts_canonical_magnitude_with_leading_one() {
4359        // The complement-side pin: every canonical leading-`[1-9]`
4360        // magnitude continues to parse cleanly through the leading-zero
4361        // arm, on both the `m`-suffix and bare-core paths. Sweep the
4362        // canonical values the renderer emits across the unit-multiplier
4363        // boundary (sub-core, single-core, multi-core) so a future
4364        // tightening cannot drift into rejecting valid canonical
4365        // magnitudes. Same complement-side discipline the peer
4366        // `parse_byte_size_accepts_canonical_magnitude_with_leading_one`
4367        // and `parse_duration_accepts_canonical_magnitude_with_leading_one`
4368        // pins enforce on the sibling codecs.
4369        assert_eq!(parse_millicores("1m").unwrap(), 1);
4370        assert_eq!(parse_millicores("500m").unwrap(), 500);
4371        assert_eq!(parse_millicores("1500m").unwrap(), 1500);
4372        assert_eq!(parse_millicores("9000m").unwrap(), 9000);
4373        assert_eq!(parse_millicores("1").unwrap(), 1000);
4374        assert_eq!(parse_millicores("2").unwrap(), 2000);
4375        assert_eq!(parse_millicores("9").unwrap(), 9000);
4376    }
4377
4378    #[test]
4379    fn de_millicores_rejects_leading_zero_through_serde() {
4380        // The serde-path pin: a `:limits :cpu` carrying a leading-zero
4381        // magnitude (`"0500m"`) must fail at deserialize time, not
4382        // silently round-trip the value through `u32::from_str`'s
4383        // leading-zero-permissive accepting. Pin both the success-on-
4384        // canonical path (the leading-zero-stripped form deserializes
4385        // cleanly) and the failure-on-non-canonical path (the leading-
4386        // zero form is rejected by the codec before any validate gate
4387        // runs). Peer with the
4388        // `de_byte_size_rejects_leading_zero_through_serde` and
4389        // `de_duration_rejects_leading_zero_through_serde` pins on the
4390        // sibling codecs.
4391        let json = r#"{"cpu":"0500m"}"#;
4392        let err = serde_json::from_str::<LimitsSpec>(json).unwrap_err();
4393        let msg = err.to_string();
4394        assert!(
4395            msg.contains("leading zero"),
4396            "serde diagnostic must surface the leading-zero reason verbatim \
4397             (got {msg:?})"
4398        );
4399
4400        // The integer-form complement — same author-side intent
4401        // (500 millicores), written in the canonical form the renderer
4402        // would emit, deserializes cleanly.
4403        let json = r#"{"cpu":"500m"}"#;
4404        let l: LimitsSpec = serde_json::from_str(json).unwrap();
4405        assert_eq!(l.cpu, Some(500));
4406    }
4407
4408    // ── canonical-form: whitespace-rejection millicores codec gate ────────
4409    //
4410    // Direct successor to the `parse_byte_size` (24a8ad4), `parse_duration`
4411    // (ebc3a75), `supervisor::duration_codec` (a7ae622), and
4412    // `rate_limit_codec` (1ad7755) whitespace-rejection arms — closes the
4413    // fifth (and last) typed-magnitude codec surface in caixa-core on the
4414    // ASCII-whitespace axis. The pre-gate top-level `s.trim()` at parse
4415    // entry and the per-part `magnitude.trim()` calls silently ate leading
4416    // / trailing / internal whitespace, so every whitespace-carrying shape
4417    // parsed to the same millicore value and round-tripped through
4418    // `render_millicores` to a *different* canonical string on next
4419    // serialize — the same canonical-form-drift class the leading-`+` /
4420    // fractional / leading-zero arms already close on this codec.
4421
4422    #[test]
4423    fn parse_millicores_rejects_leading_whitespace() {
4424        // `" 500m"` — the canonical paste-from-aligned-doc / YAML-quoted-
4425        // plain-scalar footgun. Before this gate the top-level `s.trim()`
4426        // at parse entry silently ate the leading space and parsed the
4427        // value to 500 millicores, round-tripping to `"500m"` on next
4428        // serialize.
4429        let err = parse_millicores(" 500m").unwrap_err();
4430        assert!(
4431            matches!(err, LimitsError::WhitespaceInMillicores { ref value, byte } if value == " 500m" && byte == 0x20),
4432            "got {err:?}"
4433        );
4434        let msg = err.to_string();
4435        assert!(
4436            msg.contains("whitespace byte 0x20"),
4437            "diagnostic must surface the offending byte verbatim (got {msg:?})"
4438        );
4439        assert!(
4440            msg.contains("THEORY.md"),
4441            "diagnostic must cite the render-determinism contract (got {msg:?})"
4442        );
4443    }
4444
4445    #[test]
4446    fn parse_millicores_rejects_trailing_whitespace() {
4447        // `"500m "` — the canonical shell-history trailing-space footgun.
4448        let err = parse_millicores("500m ").unwrap_err();
4449        assert!(
4450            matches!(err, LimitsError::WhitespaceInMillicores { ref value, byte } if value == "500m " && byte == 0x20),
4451            "got {err:?}"
4452        );
4453    }
4454
4455    #[test]
4456    fn parse_millicores_rejects_internal_whitespace_between_magnitude_and_unit() {
4457        // `"500 m"` — the typographically-spaced author shape (the same
4458        // idiom every prose reference to millicores renders as). Before
4459        // this gate the per-part `magnitude.trim()` silently ate the
4460        // internal space and parsed the value to 500 millicores.
4461        let err = parse_millicores("500 m").unwrap_err();
4462        assert!(
4463            matches!(err, LimitsError::WhitespaceInMillicores { ref value, byte } if value == "500 m" && byte == 0x20),
4464            "got {err:?}"
4465        );
4466    }
4467
4468    #[test]
4469    fn parse_millicores_rejects_tab_byte() {
4470        // `"\t500m"` — the paste-from-indented-doc / YAML-block-scalar tab
4471        // footgun. Pins the tab (`0x09`) arm alongside the space arm above.
4472        let err = parse_millicores("\t500m").unwrap_err();
4473        assert!(
4474            matches!(err, LimitsError::WhitespaceInMillicores { ref value, byte } if value == "\t500m" && byte == 0x09),
4475            "got {err:?}"
4476        );
4477    }
4478
4479    #[test]
4480    fn parse_millicores_rejects_trailing_newline() {
4481        // `"500m\n"` — the multi-line-paste footgun where a trailing LF
4482        // byte survives the paste. Pins the LF member (`0x0A`) of the
4483        // `is_ascii_whitespace` set.
4484        let err = parse_millicores("500m\n").unwrap_err();
4485        assert!(
4486            matches!(err, LimitsError::WhitespaceInMillicores { ref value, byte } if value == "500m\n" && byte == 0x0a),
4487            "got {err:?}"
4488        );
4489    }
4490
4491    #[test]
4492    fn parse_millicores_accepts_whitespace_free_canonical_forms() {
4493        // The complement-side pin: every canonical whitespace-free
4494        // authoring form the renderer emits stays accepted post-gate.
4495        // Sweep the canonical `m`-suffix path plus the bare-core shorthand
4496        // so a future tightening of the whitespace arm that over-fires on
4497        // the accepted set surfaces here as a test failure.
4498        assert_eq!(parse_millicores("500m").unwrap(), 500);
4499        assert_eq!(parse_millicores("2000m").unwrap(), 2000);
4500        assert_eq!(parse_millicores("1m").unwrap(), 1);
4501        assert_eq!(parse_millicores("0m").unwrap(), 0);
4502        assert_eq!(parse_millicores("2").unwrap(), 2000);
4503        assert_eq!(parse_millicores("0").unwrap(), 0);
4504    }
4505
4506    #[test]
4507    fn de_millicores_rejects_whitespace_through_serde() {
4508        // The serde-path pin: a `:limits :cpu` carrying a whitespace-byte-
4509        // carrying value (`" 500m"`) must fail at deserialize time, not
4510        // silently round-trip the value through the pre-existing top-level
4511        // `s.trim()`. Peer with the
4512        // `de_byte_size_rejects_whitespace_through_serde` and
4513        // `de_duration_rejects_whitespace_through_serde` pins on the
4514        // sibling codecs.
4515        let json = r#"{"cpu":" 500m"}"#;
4516        let err = serde_json::from_str::<LimitsSpec>(json).unwrap_err();
4517        let msg = err.to_string();
4518        assert!(
4519            msg.contains("whitespace byte"),
4520            "serde diagnostic must surface the whitespace reason verbatim (got {msg:?})"
4521        );
4522        assert!(
4523            msg.contains("0x20"),
4524            "serde diagnostic must name the offending byte (got {msg:?})"
4525        );
4526
4527        // The whitespace-free complement — same author-side intent,
4528        // written in the canonical form the renderer would emit,
4529        // deserializes cleanly.
4530        let json = r#"{"cpu":"500m"}"#;
4531        let l: LimitsSpec = serde_json::from_str(json).unwrap();
4532        assert_eq!(l.cpu, Some(500));
4533    }
4534
4535    // ── canonical-form: non-ASCII Unicode `White_Space` millicores gate ───
4536    //
4537    // Direct successor to the ASCII-whitespace arm above — closes the
4538    // strictly-complementary class the byte-scan cannot see. `str::trim`
4539    // uses `char::is_whitespace` (Unicode `White_Space`, strictly wider
4540    // than the ASCII byte set); a leading / trailing / internal NBSP
4541    // (`\u{00A0}`) / LINE SEPARATOR (`\u{2028}`) / EM-SPACE (`\u{2003}`)
4542    // survives the byte-scan but is silently stripped by the top-level
4543    // trim, drifting to canonical `"500m"` on round-trip. Pins the arm
4544    // through the lifted [`crate::render::find_non_ascii_whitespace_char`]
4545    // predicate — the same shared predicate 1b75b38 landed on the four
4546    // peer typed-magnitude codecs, extended here to the fifth.
4547
4548    #[test]
4549    fn parse_millicores_rejects_leading_nbsp() {
4550        // NBSP (`\u{00A0}` = UTF-8 `0xC2 0xA0`) — the paste-from-typography
4551        // / paste-from-word-processor footgun. Before this arm landed the
4552        // byte-scan missed it (neither `0xC2` nor `0xA0` is
4553        // `is_ascii_whitespace`) and `str::trim` at parse entry silently
4554        // stripped it, yielding the same 500 millicores as the whitespace-
4555        // free canonical form and drifting to `"500m"` on next serialize.
4556        let s = "\u{00A0}500m";
4557        let err = parse_millicores(s).unwrap_err();
4558        assert!(
4559            matches!(err, LimitsError::NonAsciiWhitespaceInMillicores { ref value, ch, codepoint } if value == s && ch == '\u{00A0}' && codepoint == 0x00A0),
4560            "got {err:?}"
4561        );
4562        let msg = err.to_string();
4563        assert!(
4564            msg.contains("U+00A0"),
4565            "diagnostic must surface the codepoint verbatim (got {msg:?})"
4566        );
4567        assert!(
4568            msg.contains("THEORY.md"),
4569            "diagnostic must cite the render-determinism contract (got {msg:?})"
4570        );
4571    }
4572
4573    #[test]
4574    fn parse_millicores_rejects_internal_em_space() {
4575        // EM-SPACE (`\u{2003}`) between magnitude and unit — pins the arm
4576        // on an internal-position non-NBSP Unicode `White_Space` member.
4577        let s = "500\u{2003}m";
4578        let err = parse_millicores(s).unwrap_err();
4579        assert!(
4580            matches!(err, LimitsError::NonAsciiWhitespaceInMillicores { ref value, ch, codepoint } if value == s && ch == '\u{2003}' && codepoint == 0x2003),
4581            "got {err:?}"
4582        );
4583    }
4584
4585    #[test]
4586    fn parse_millicores_rejects_trailing_line_separator() {
4587        // LINE SEPARATOR (`\u{2028}`) — the canonical paste-from-web-doc
4588        // footgun (many rendering engines insert `\u{2028}` at soft-wrap
4589        // boundaries in RTF/HTML → plain text conversion). Pins the arm on
4590        // a trailing-position Unicode `White_Space` member.
4591        let s = "500m\u{2028}";
4592        let err = parse_millicores(s).unwrap_err();
4593        assert!(
4594            matches!(err, LimitsError::NonAsciiWhitespaceInMillicores { ref value, ch, codepoint } if value == s && ch == '\u{2028}' && codepoint == 0x2028),
4595            "got {err:?}"
4596        );
4597    }
4598
4599    #[test]
4600    fn parse_millicores_accepts_ascii_only_canonical_forms_after_unicode_arm() {
4601        // Positive-control pin: every ASCII-only canonical form the
4602        // renderer emits stays accepted through the new arm — the lifted
4603        // predicate is a strict no-op on ASCII input.
4604        assert_eq!(parse_millicores("500m").unwrap(), 500);
4605        assert_eq!(parse_millicores("2000m").unwrap(), 2000);
4606        assert_eq!(parse_millicores("1m").unwrap(), 1);
4607        assert_eq!(parse_millicores("2").unwrap(), 2000);
4608    }
4609
4610    // ── canonical-form: integer-millisecond :wall-clock gate ──────────────
4611    //
4612    // The peer typed-`Duration` axes routed through
4613    // `supervisor::duration_codec` (`:politicas :timeout` a4ae535,
4614    // `:circuit-breaker :window` a4ae535) already gate on
4615    // `is_integer_millisecond_duration` because the codec's `render`
4616    // truncates to `as_millis()` and parses with integer-ms granularity;
4617    // this crate's in-module `render_duration` / `parse_duration` pair
4618    // carries the same `as_millis()`-truncation shape, so the same sub-
4619    // millisecond-residue footgun lived on this axis until this gate
4620    // landed. The tests below pin the fail-before-pass-after boundary,
4621    // the diagnostic shape, the cross-arm zero-then-canonical ordering
4622    // matching the `:politicas` peer, the integer-ms happy-path sweep,
4623    // and the codec round-trip property (every validated `wall_clock`
4624    // survives serialize → deserialize equality).
4625
4626    #[test]
4627    fn validate_rejects_sub_millisecond_wall_clock() {
4628        // The fail-before-pass-after pin: a programmatic
4629        // `Duration::from_micros(1500)` (= 1_500_000 ns) silently passed
4630        // validate on every pre-gate codebase, then truncated to
4631        // `as_millis() == 1` on first serialize — `render_duration`
4632        // emits `"1ms"`, the codec parses it back to
4633        // `Duration::from_millis(1)` = 1_000_000 ns, the typed
4634        // `wall_clock` no longer matches its rendered form.
4635        let l = LimitsSpec {
4636            wall_clock: Some(Duration::from_micros(1500)),
4637            ..Default::default()
4638        };
4639        match l.validate().unwrap_err() {
4640            LimitsError::WallClockNotCanonical { wall_clock } => {
4641                assert_eq!(wall_clock, Duration::from_micros(1500));
4642            }
4643            other => panic!("expected WallClockNotCanonical, got {other:?}"),
4644        }
4645    }
4646
4647    #[test]
4648    fn validate_rejects_one_nanosecond_wall_clock() {
4649        // The far-sub-ms case: `Duration::from_nanos(1)` is non-zero
4650        // (so `WallClockZero` doesn't fire) but `as_millis() == 0`, so
4651        // `render_duration` emits the literal `"0s"` — the next serde
4652        // round-trip would parse back to `Duration::ZERO`, which the
4653        // `WallClockZero` arm then rejects on re-validate. The
4654        // canonical-form gate at this layer surfaces a self-locating
4655        // diagnostic naming the offending Duration verbatim rather
4656        // than a downstream `WallClockZero` whose remediation points
4657        // at omitting the slot.
4658        let l = LimitsSpec {
4659            wall_clock: Some(Duration::from_nanos(1)),
4660            ..Default::default()
4661        };
4662        match l.validate().unwrap_err() {
4663            LimitsError::WallClockNotCanonical { wall_clock } => {
4664                assert_eq!(wall_clock, Duration::from_nanos(1));
4665            }
4666            other => panic!("expected WallClockNotCanonical, got {other:?}"),
4667        }
4668    }
4669
4670    #[test]
4671    fn validate_rejects_nanosecond_past_canonical_boundary() {
4672        // The 1-ns-past-1ms boundary case: a `Duration` carrying
4673        // 1_000_001 ns is structurally past the integer-ms granularity
4674        // floor — `subsec_nanos() % 1_000_000 == 1`. The codec
4675        // round-trip would truncate to `1ms` and the consumer would
4676        // observe a 1-ns drift on every emit. Same boundary the peer
4677        // `is_integer_millisecond_duration_predicate_tracks_codec` test
4678        // in aplicacao.rs pins for the `:politicas` axes.
4679        let w = Duration::from_nanos(1_000_001);
4680        let l = LimitsSpec {
4681            wall_clock: Some(w),
4682            ..Default::default()
4683        };
4684        assert_eq!(
4685            l.validate().unwrap_err(),
4686            LimitsError::WallClockNotCanonical { wall_clock: w }
4687        );
4688    }
4689
4690    #[test]
4691    fn validate_accepts_integer_millisecond_wall_clock_values() {
4692        // The positive-control sweep: every `Duration` the codec can
4693        // round-trip losslessly — the canonical `<integer>{ms,s,m,h}`
4694        // set the `render_duration` / `parse_duration` pair emits and
4695        // accepts — passes `validate` without surfacing the new
4696        // canonical-form arm. Mirrors
4697        // `accepts_policy_retries_typical_values` /
4698        // `accepts_circuit_breaker_max_failures_typical_values` on
4699        // sibling axes.
4700        for w in [
4701            Duration::from_millis(1),
4702            Duration::from_millis(500),
4703            Duration::from_millis(1500),
4704            Duration::from_secs(1),
4705            Duration::from_secs(30),
4706            Duration::from_secs(60),
4707            Duration::from_secs(120),
4708            Duration::from_secs(3600),
4709        ] {
4710            let l = LimitsSpec {
4711                wall_clock: Some(w),
4712                ..Default::default()
4713            };
4714            l.validate()
4715                .unwrap_or_else(|e| panic!("integer-ms {w:?} must validate, got {e:?}"));
4716        }
4717    }
4718
4719    #[test]
4720    fn validate_wall_clock_zero_takes_precedence_over_canonical_gate() {
4721        // Cross-arm ordering pin: `Duration::ZERO` has
4722        // `subsec_nanos() == 0` and would otherwise pass the
4723        // canonical-form arm — the zero-floor arm must fire first so
4724        // the more self-locating `WallClockZero` diagnostic (with its
4725        // omit-axis remediation directly named) leads. Same posture
4726        // every peer zero-then-shape gate uses
4727        // (`PolicyTimeoutZero` → `PolicyTimeoutNotCanonical`,
4728        // `PolicyBreakerZeroWindow` → `PolicyBreakerWindowNotCanonical`).
4729        let l = LimitsSpec {
4730            wall_clock: Some(Duration::ZERO),
4731            ..Default::default()
4732        };
4733        assert_eq!(l.validate().unwrap_err(), LimitsError::WallClockZero);
4734    }
4735
4736    #[test]
4737    fn wall_clock_canonical_diagnostic_carries_offending_duration() {
4738        // Diagnostic-shape pin: the canonical-form arm names the
4739        // offending `Duration` verbatim so the author's grep lands on
4740        // the field's value, not a generic "duration not canonical"
4741        // message. Same shape every other typed-cap arm on this
4742        // surface carries (`MemoryExceedsWasm32Cap` carries the
4743        // offending byte count verbatim, `PolicyRetriesExceedsCap`
4744        // carries the offending retry count verbatim,
4745        // `PolicyBreakerMaxFailuresExceedsCap` carries the offending
4746        // u32 verbatim).
4747        let w = Duration::from_micros(500);
4748        let l = LimitsSpec {
4749            wall_clock: Some(w),
4750            ..Default::default()
4751        };
4752        let err = l.validate().unwrap_err();
4753        let msg = err.to_string();
4754        assert!(
4755            msg.contains("500"),
4756            "diagnostic must carry the offending magnitude verbatim (got {msg:?})"
4757        );
4758    }
4759
4760    #[test]
4761    fn wall_clock_validated_value_round_trips_through_codec() {
4762        // The structural property the canonical-ms gate enforces:
4763        // every `LimitsSpec::wall_clock` past `LimitsSpec::validate`
4764        // round-trips losslessly through the in-module duration codec
4765        // (serialize → string → deserialize → equal value). Pin this
4766        // end-to-end so a future change to either side (the validate
4767        // gate's accepted granularity, the codec's parse/render unit
4768        // set) that breaks the alignment surfaces here. Peer of
4769        // `policy_timeout_validated_value_round_trips_through_codec` /
4770        // `circuit_breaker_window_validated_value_round_trips_through_codec`
4771        // on the sibling `:politicas` axes.
4772        for w in [
4773            Duration::from_millis(1),
4774            Duration::from_millis(1500),
4775            Duration::from_secs(30),
4776            Duration::from_secs(3600),
4777        ] {
4778            let l = LimitsSpec {
4779                wall_clock: Some(w),
4780                ..Default::default()
4781            };
4782            l.validate().unwrap();
4783            let json = serde_json::to_string(&l).unwrap();
4784            let back: LimitsSpec = serde_json::from_str(&json).unwrap();
4785            assert_eq!(
4786                back.wall_clock, l.wall_clock,
4787                "every validated :wall-clock must round-trip losslessly through the codec"
4788            );
4789        }
4790    }
4791
4792    // ── value-shape: :wall-clock upper bound — 1h ceiling ──────────────────
4793    //
4794    // The third typed-`Duration` axis brought to the uniform top edge
4795    // `LIMITS_WALL_CLOCK_MAX` = 1h established by the prior cap lifts
4796    // on `:politicas :timeout` (POLICY_TIMEOUT_MAX) and
4797    // `:politicas :circuit-breaker :window` (POLICY_BREAKER_WINDOW_MAX).
4798    // Mirrors the test discipline those peers carry: the
4799    // fail-before-pass-after pin, the 1ms-boundary pin, the
4800    // far-above-cap sweep (24h / 7d / ~11.5d — the values a
4801    // `(:wall-clock "24h")` typo or copy-paste typically lands), the
4802    // inclusive-at-cap positive control, the production-band positive-
4803    // control sweep, the cross-arm zero-then-cap and
4804    // canonical-then-cap ordering pins, the diagnostic-shape pin
4805    // carrying the offending `Duration` verbatim, and the cap-value
4806    // literal-identity + codec-round-trip pins anchoring the constant
4807    // to the codec's largest emitted unit and to its peer constants.
4808
4809    #[test]
4810    fn validate_rejects_wall_clock_above_cap() {
4811        // The fail-before-pass-after pin: 3601s = 1h + 1s is
4812        // structurally one canonical-tick past the
4813        // [`LIMITS_WALL_CLOCK_MAX`] ceiling (1h = 3600s) — an
4814        // integer-millisecond magnitude the canonical-form arm above
4815        // accepts cleanly, that the in-module duration codec
4816        // round-trips losslessly as `"3601s"`, and that silently
4817        // passed validate on every pre-gate codebase because the typed
4818        // slot's only checks were the zero-floor and canonical-form
4819        // arms. The wasm-engine consuming the value (the M2.5
4820        // `wasm-engine`'s epoch-deadline cancellation hook, the future
4821        // caixa-helm `pleme-computeunit` chart's `:limits` value
4822        // mapping) reaches for a `Duration` so long no realistic
4823        // synchronous wasm call hits it, far from the source
4824        // caixa.lisp.
4825        let w = LIMITS_WALL_CLOCK_MAX + Duration::from_secs(1);
4826        let l = LimitsSpec {
4827            wall_clock: Some(w),
4828            ..Default::default()
4829        };
4830        assert_eq!(
4831            l.validate().unwrap_err(),
4832            LimitsError::WallClockExceedsCap { wall_clock: w }
4833        );
4834    }
4835
4836    #[test]
4837    fn validate_rejects_wall_clock_one_millisecond_above_cap() {
4838        // Boundary case: exactly 1ms past the cap (the granularity the
4839        // canonical-form gate enforces). Catches a future "strictly
4840        // less than" half-measure and pins the diagnostic to name the
4841        // offending `Duration` verbatim. Peer of
4842        // `rejects_policy_timeout_one_millisecond_above_cap` /
4843        // `rejects_circuit_breaker_window_one_millisecond_above_cap`
4844        // on the sibling typed-`Duration` axes' top edges.
4845        let w = LIMITS_WALL_CLOCK_MAX + Duration::from_millis(1);
4846        let l = LimitsSpec {
4847            wall_clock: Some(w),
4848            ..Default::default()
4849        };
4850        assert_eq!(
4851            l.validate().unwrap_err(),
4852            LimitsError::WallClockExceedsCap { wall_clock: w }
4853        );
4854    }
4855
4856    #[test]
4857    fn validate_rejects_wall_clock_far_above_cap() {
4858        // The "obvious authoring footgun" case: a `(:wall-clock "24h")`
4859        // or `(:wall-clock "7d")` — values the canonical-form arm
4860        // accepts as integer-millisecond magnitudes, the codec
4861        // round-trips losslessly through serde, but the wasm-engine
4862        // cannot honor as a meaningful per-call deadline. Until this
4863        // gate landed validate accepted them. Pin the common
4864        // above-cap values (24h, 7d, ~11.5d) so a future relaxation
4865        // that drops the upper bound surfaces here.
4866        for w in [
4867            Duration::from_secs(86_400),    // 24h
4868            Duration::from_secs(604_800),   // 7d
4869            Duration::from_secs(1_000_000), // ~11.5 days
4870        ] {
4871            let l = LimitsSpec {
4872                wall_clock: Some(w),
4873                ..Default::default()
4874            };
4875            assert_eq!(
4876                l.validate().unwrap_err(),
4877                LimitsError::WallClockExceedsCap { wall_clock: w }
4878            );
4879        }
4880    }
4881
4882    #[test]
4883    fn validate_accepts_wall_clock_at_cap() {
4884        // The boundary value — exactly [`LIMITS_WALL_CLOCK_MAX`] (1h)
4885        // — must validate. The cap is inclusive on the top edge,
4886        // matching the [`crate::POLICY_TIMEOUT_MAX`] /
4887        // [`crate::POLICY_BREAKER_WINDOW_MAX`] /
4888        // [`LIMITS_MEMORY_WASM32_MAX_BYTES`] discipline on the sibling
4889        // capped axes. Pin the boundary explicitly so a future
4890        // off-by-one tightening (`>= LIMITS_WALL_CLOCK_MAX` instead of
4891        // `>`) surfaces here as a test failure rather than a silent
4892        // contract narrowing.
4893        let l = LimitsSpec {
4894            wall_clock: Some(LIMITS_WALL_CLOCK_MAX),
4895            ..Default::default()
4896        };
4897        l.validate()
4898            .expect("wall_clock == LIMITS_WALL_CLOCK_MAX must validate");
4899    }
4900
4901    #[test]
4902    fn validate_accepts_wall_clock_typical_values() {
4903        // The documented per-request production-playbook band positive-
4904        // control sweep — every value Envoy / Istio / Linkerd / AWS
4905        // App Mesh / Kubernetes ingress-nginx recommend
4906        // (1ms..=3600s) must pass, plus a sweep through the
4907        // long-running-workflow band (5m, 15m, 30m, 1h) the cap
4908        // accepts. Mirrors `accepts_policy_timeout_typical_values` on
4909        // the sibling `:politicas :timeout` axis.
4910        for w in [
4911            Duration::from_millis(1),
4912            Duration::from_millis(500),
4913            Duration::from_secs(1),
4914            Duration::from_secs(10),
4915            Duration::from_secs(15), // Envoy default
4916            Duration::from_secs(30),
4917            Duration::from_secs(60),  // AWS App Mesh typical
4918            Duration::from_secs(300), // 5m
4919            Duration::from_secs(900), // 15m
4920            Duration::from_secs(1800),
4921            Duration::from_secs(3600), // exactly 1h, the cap
4922        ] {
4923            let l = LimitsSpec {
4924                wall_clock: Some(w),
4925                ..Default::default()
4926            };
4927            l.validate()
4928                .unwrap_or_else(|e| panic!("wall_clock={w:?} must validate; got {e:?}"));
4929        }
4930    }
4931
4932    #[test]
4933    fn wall_clock_zero_takes_precedence_over_cap() {
4934        // The cross-arm ordering pin: `Duration::ZERO` is structurally
4935        // outside both `>= 1ms` (zero-floor) and `<= LIMITS_WALL_CLOCK_MAX`
4936        // (cap), but the zero-floor diagnostic is the more
4937        // self-locating one (it directly names the omit-axis
4938        // remediation), so the validate gate must fire on zero first.
4939        // Same shape every other zero-then-shape ordering on this
4940        // surface uses (`MemoryZero` then `MemoryExceedsWasm32Cap`,
4941        // `PolicyTimeoutZero` then `PolicyTimeoutExceedsCap`).
4942        let l = LimitsSpec {
4943            wall_clock: Some(Duration::ZERO),
4944            ..Default::default()
4945        };
4946        assert_eq!(
4947            l.validate().unwrap_err(),
4948            LimitsError::WallClockZero,
4949            "Duration::ZERO must surface the zero-floor diagnostic, not the cap diagnostic"
4950        );
4951    }
4952
4953    #[test]
4954    fn wall_clock_canonical_takes_precedence_over_cap() {
4955        // The cross-arm ordering pin: a `Duration` that is *both*
4956        // sub-millisecond (non-canonical-form) and structurally above
4957        // the cap surfaces the canonical-form diagnostic first,
4958        // because the round-trip-shape break is the more fundamental
4959        // issue (the value can't even round-trip through the codec, so
4960        // the cap diagnostic naming `1ms..=1h` would be misleading —
4961        // there's no integer-ms form of the offending value). Pin the
4962        // order so a future refactor that reorders the arms surfaces
4963        // here as a test failure rather than a silent diagnostic
4964        // regression. Peer of
4965        // `policy_timeout_canonical_takes_precedence_over_cap`.
4966        let w = LIMITS_WALL_CLOCK_MAX + Duration::from_nanos(1);
4967        let l = LimitsSpec {
4968            wall_clock: Some(w),
4969            ..Default::default()
4970        };
4971        assert_eq!(
4972            l.validate().unwrap_err(),
4973            LimitsError::WallClockNotCanonical { wall_clock: w },
4974            "sub-ms above-cap value must surface the canonical-form diagnostic, not the cap diagnostic"
4975        );
4976    }
4977
4978    #[test]
4979    fn wall_clock_cap_diagnostic_carries_offending_value() {
4980        // The diagnostic-shape pin: the offending `Duration` is
4981        // carried verbatim into the
4982        // [`LimitsError::WallClockExceedsCap`] variant so the surfaced
4983        // error message names the value the author wrote, not just
4984        // the cap. Same self-locating diagnostic shape every other
4985        // typed-cap arm on this surface carries
4986        // (`MemoryExceedsWasm32Cap` carries the offending byte count
4987        // verbatim, `PolicyTimeoutExceedsCap` carries the offending
4988        // `Duration` verbatim).
4989        let w = Duration::from_secs(7200); // 2h
4990        let l = LimitsSpec {
4991            wall_clock: Some(w),
4992            ..Default::default()
4993        };
4994        let err = l.validate().unwrap_err();
4995        assert!(
4996            matches!(err, LimitsError::WallClockExceedsCap { wall_clock } if wall_clock == w),
4997            "got {err:?}"
4998        );
4999        let msg = err.to_string();
5000        assert!(
5001            msg.contains("7200"),
5002            ":limits :wall-clock cap diagnostic must carry the offending value verbatim (got: {msg})"
5003        );
5004    }
5005
5006    #[test]
5007    fn wall_clock_cap_pins_canonical_value() {
5008        // The [`LIMITS_WALL_CLOCK_MAX`] constant pins the value at
5009        // exactly 1 hour (3600s = 3_600_000ms) — the largest unit the
5010        // shared duration codec emits as a clean canonical string
5011        // (`"<n>h"`). Pinning the literal value here surfaces a future
5012        // drift (a relaxation to 24h, a tightening to 5m) as a
5013        // deliberate test edit, not a silent contract narrowing.
5014        //
5015        // The three typed-`Duration` caps on the validation surface
5016        // (`LIMITS_WALL_CLOCK_MAX` per-process, `POLICY_TIMEOUT_MAX`
5017        // per-edge, `POLICY_BREAKER_WINDOW_MAX` per-breaker) share a
5018        // single uniform top edge at the codec's largest emitted unit
5019        // — a structural-property invariant the equality assertions
5020        // here enshrine, so a future drift on any of the three
5021        // surfaces as a deliberate test edit. Same shape every other
5022        // typed-cap value pin uses
5023        // (`policy_timeout_cap_pins_canonical_value`,
5024        // `circuit_breaker_window_cap_pins_canonical_value`).
5025        assert_eq!(LIMITS_WALL_CLOCK_MAX, Duration::from_secs(3600));
5026        assert_eq!(LIMITS_WALL_CLOCK_MAX.as_millis(), 3_600_000);
5027        assert_eq!(LIMITS_WALL_CLOCK_MAX, crate::POLICY_TIMEOUT_MAX);
5028        assert_eq!(LIMITS_WALL_CLOCK_MAX, crate::POLICY_BREAKER_WINDOW_MAX);
5029    }
5030
5031    #[test]
5032    fn wall_clock_cap_value_round_trips_through_codec() {
5033        // The codec round-trip property the cap arm preserves: the
5034        // [`LIMITS_WALL_CLOCK_MAX`] constant itself round-trips through
5035        // the in-module duration codec — every value at the cap
5036        // renders to a clean canonical string (`"1h"`) and parses back
5037        // to the same `Duration`. Pin this so a future drift between
5038        // the cap constant and the codec's largest emitted unit
5039        // surfaces here. Same shape every other typed boundary pin on
5040        // this surface uses
5041        // (`wasm32_memory_cap_matches_parsed_4_gib`,
5042        // `policy_timeout_cap_value_round_trips_through_codec`).
5043        let l = LimitsSpec {
5044            wall_clock: Some(LIMITS_WALL_CLOCK_MAX),
5045            ..Default::default()
5046        };
5047        let json = serde_json::to_string(&l).unwrap();
5048        assert!(
5049            json.contains("\"1h\""),
5050            "the LIMITS_WALL_CLOCK_MAX value must render to the canonical \"1h\" form (got: {json})"
5051        );
5052        let back: LimitsSpec = serde_json::from_str(&json).unwrap();
5053        assert_eq!(back.wall_clock, Some(LIMITS_WALL_CLOCK_MAX));
5054        l.validate()
5055            .expect("LIMITS_WALL_CLOCK_MAX itself must pass validate");
5056    }
5057
5058    // ── value-shape: :cpu upper bound — 128-core schedulability ceiling ─────
5059    //
5060    // The third `LimitsSpec` axis brought to a top-edge cap, peer to
5061    // the `:memory` wasm32 ceiling and the `:wall-clock` 1h ceiling.
5062    // Mirrors the test discipline those peers carry: the
5063    // fail-before-pass-after pin, the one-millicore-boundary pin, the
5064    // far-above-cap sweep, the inclusive-at-cap positive control, the
5065    // production-band positive-control sweep, the cross-arm zero-then-
5066    // cap ordering pin, the diagnostic-shape pin carrying the offending
5067    // value verbatim, and the cap-value literal-identity + codec
5068    // round-trip pins anchoring the constant.
5069
5070    #[test]
5071    fn validate_rejects_cpu_above_cap() {
5072        // The fail-before-pass-after pin: 128_001m = 128 cores + 1
5073        // millicore is structurally one canonical-tick past the
5074        // [`LIMITS_CPU_MILLICORES_MAX`] ceiling — a `u32` magnitude the
5075        // millicore codec round-trips losslessly as `"128001m"`, and
5076        // that silently passed validate on every pre-gate codebase
5077        // because the typed slot's only check was the zero-floor arm.
5078        // The Kubernetes scheduler consuming the value (via the
5079        // `pleme-computeunit` chart's `resources.requests.cpu`
5080        // projection) cannot bind the pod to any node, far from the
5081        // source caixa.lisp.
5082        let m = LIMITS_CPU_MILLICORES_MAX + 1;
5083        let l = LimitsSpec {
5084            cpu: Some(m),
5085            ..Default::default()
5086        };
5087        assert_eq!(
5088            l.validate().unwrap_err(),
5089            LimitsError::CpuExceedsCap { millicores: m }
5090        );
5091    }
5092
5093    #[test]
5094    fn validate_rejects_cpu_far_above_cap() {
5095        // The "obvious authoring footgun" case: a `(:cpu "1000000m")`
5096        // (1000 cores) or `(:cpu "4294967295m")` (≈ u32::MAX) — values
5097        // the millicore codec accepts cleanly, the codec round-trips
5098        // losslessly through serde, but the Kubernetes scheduler
5099        // cannot bind to any node. Until this gate landed validate
5100        // accepted them. Pin the common above-cap values (1000 cores,
5101        // 10_000 cores, u32::MAX) so a future relaxation that drops
5102        // the upper bound surfaces here. Peer of
5103        // `validate_rejects_memory_8_gib` /
5104        // `validate_rejects_wall_clock_far_above_cap`.
5105        for m in [1_000_000_u32, 10_000_000, u32::MAX] {
5106            let l = LimitsSpec {
5107                cpu: Some(m),
5108                ..Default::default()
5109            };
5110            assert_eq!(
5111                l.validate().unwrap_err(),
5112                LimitsError::CpuExceedsCap { millicores: m }
5113            );
5114        }
5115    }
5116
5117    #[test]
5118    fn validate_accepts_cpu_at_cap() {
5119        // The boundary value — exactly [`LIMITS_CPU_MILLICORES_MAX`]
5120        // (128 cores = 128_000m) — must validate. The cap is inclusive
5121        // on the top edge, matching the discipline on every sibling
5122        // capped axis ([`LIMITS_MEMORY_WASM32_MAX_BYTES`],
5123        // [`LIMITS_WALL_CLOCK_MAX`], [`crate::POLICY_TIMEOUT_MAX`],
5124        // [`crate::POLICY_BREAKER_WINDOW_MAX`],
5125        // [`crate::POLICY_RATE_LIMIT_MAX`]). Pin the boundary
5126        // explicitly so a future off-by-one tightening
5127        // (`>= LIMITS_CPU_MILLICORES_MAX` instead of `>`) surfaces here
5128        // as a test failure rather than a silent contract narrowing.
5129        let l = LimitsSpec {
5130            cpu: Some(LIMITS_CPU_MILLICORES_MAX),
5131            ..Default::default()
5132        };
5133        l.validate()
5134            .expect("cpu == LIMITS_CPU_MILLICORES_MAX must validate");
5135    }
5136
5137    #[test]
5138    fn validate_accepts_cpu_typical_values() {
5139        // The documented production-playbook band positive-control
5140        // sweep — every value the canonical caixa Servico runs in
5141        // (100m..=2000m) must pass, plus a sweep through the larger
5142        // burstable / multi-component-host band (4000m, 8000m, 16000m,
5143        // 32000m, 64000m, 128000m) the cap accepts. Mirrors
5144        // `accepts_wall_clock_typical_values` on the sibling
5145        // `:wall-clock` axis.
5146        for m in [
5147            1_u32,   // smallest non-zero
5148            100,     // typical small worker
5149            500,     // canonical test default (peer to limits/flux/helm)
5150            1_000,   // 1 core, single-threaded wasm32 saturation
5151            2_000,   // 2 cores
5152            4_000,   // typical burstable
5153            8_000,   // upper realistic per-Servico band
5154            16_000,  // documented heavy-Servico ceiling
5155            32_000,  // wide-node multi-component-host
5156            64_000,  // half the cap
5157            128_000, // exactly at cap
5158        ] {
5159            let l = LimitsSpec {
5160                cpu: Some(m),
5161                ..Default::default()
5162            };
5163            l.validate()
5164                .unwrap_or_else(|e| panic!("cpu={m}m must validate; got {e:?}"));
5165        }
5166    }
5167
5168    #[test]
5169    fn cpu_zero_takes_precedence_over_cap() {
5170        // The cross-arm ordering pin: `Some(0)` is structurally outside
5171        // both `>= 1` (zero-floor) and `<= LIMITS_CPU_MILLICORES_MAX`
5172        // (cap), but the zero-floor diagnostic is the more
5173        // self-locating one (it directly names the omit-axis
5174        // remediation), so the validate gate must fire on zero first.
5175        // Same shape every other zero-then-cap ordering on this surface
5176        // uses (`MemoryZero` then `MemoryExceedsWasm32Cap`,
5177        // `WallClockZero` then `WallClockExceedsCap`).
5178        let l = LimitsSpec {
5179            cpu: Some(0),
5180            ..Default::default()
5181        };
5182        assert_eq!(
5183            l.validate().unwrap_err(),
5184            LimitsError::CpuZero,
5185            "Some(0) must surface the zero-floor diagnostic, not the cap diagnostic"
5186        );
5187    }
5188
5189    #[test]
5190    fn validate_rejects_cpu_cap_after_earlier_axes() {
5191        // Cross-axis ordering: when both an above-cap `:cpu` and an
5192        // earlier-axis violation are present, the earlier axis must
5193        // fire first. The validate sequence is :memory → :fuel →
5194        // :wall-clock → :cpu, so a paired memory-zero + cpu-above-cap
5195        // input surfaces `MemoryZero`, never the cpu-cap diagnostic.
5196        // Pins the canonical axis order so a future refactor that
5197        // reorders the arms surfaces here as a test failure rather
5198        // than a silent diagnostic regression. Peer of
5199        // `validate_rejects_first_zero_axis_deterministically` and
5200        // `validate_rejects_memory_cap_before_other_axes`.
5201        let l = LimitsSpec {
5202            memory: Some(0),
5203            fuel: None,
5204            wall_clock: None,
5205            cpu: Some(LIMITS_CPU_MILLICORES_MAX + 1),
5206        };
5207        assert_eq!(
5208            l.validate().unwrap_err(),
5209            LimitsError::MemoryZero,
5210            "earlier-axis violation must take precedence over later-axis cap violation"
5211        );
5212    }
5213
5214    #[test]
5215    fn cpu_cap_diagnostic_carries_offending_value() {
5216        // The diagnostic-shape pin: the offending millicore count is
5217        // carried verbatim into the [`LimitsError::CpuExceedsCap`]
5218        // variant so the surfaced error message names the value the
5219        // author wrote, not just the cap. Same self-locating
5220        // diagnostic shape every other typed-cap arm on this surface
5221        // carries (`MemoryExceedsWasm32Cap` carries the offending byte
5222        // count verbatim, `WallClockExceedsCap` carries the offending
5223        // `Duration` verbatim).
5224        let m = 256_000_u32; // 256 cores — double the cap
5225        let l = LimitsSpec {
5226            cpu: Some(m),
5227            ..Default::default()
5228        };
5229        let err = l.validate().unwrap_err();
5230        assert!(
5231            matches!(err, LimitsError::CpuExceedsCap { millicores } if millicores == m),
5232            "got {err:?}"
5233        );
5234        let msg = err.to_string();
5235        assert!(
5236            msg.contains("256000"),
5237            ":limits :cpu cap diagnostic must carry the offending value verbatim (got: {msg})"
5238        );
5239    }
5240
5241    #[test]
5242    fn cpu_cap_pins_canonical_value() {
5243        // The [`LIMITS_CPU_MILLICORES_MAX`] constant pins the value at
5244        // exactly 128 cores (128_000 millicores) — the largest
5245        // commercially-common non-metal cloud Kubernetes node vCPU
5246        // count. Pinning the literal value here surfaces a future
5247        // drift (a relaxation to 256 cores, a tightening to 64 cores)
5248        // as a deliberate test edit, not a silent contract narrowing.
5249        // Same shape every other typed-cap value pin uses
5250        // (`wall_clock_cap_pins_canonical_value`,
5251        // `wasm32_memory_cap_matches_parsed_4_gib`).
5252        assert_eq!(LIMITS_CPU_MILLICORES_MAX, 128_000);
5253        assert_eq!(LIMITS_CPU_MILLICORES_MAX, 128 * 1000);
5254    }
5255
5256    #[test]
5257    fn cpu_cap_value_round_trips_through_codec() {
5258        // The codec round-trip property the cap arm preserves: the
5259        // [`LIMITS_CPU_MILLICORES_MAX`] constant itself round-trips
5260        // through the in-module millicore codec — the cap value
5261        // renders to a clean canonical string (`"128000m"`) and parses
5262        // back to the same `u32`. Pin this so a future drift between
5263        // the cap constant and the codec's accepted magnitude surfaces
5264        // here. Same shape every other typed boundary pin on this
5265        // surface uses (`wasm32_memory_cap_matches_parsed_4_gib`,
5266        // `wall_clock_cap_value_round_trips_through_codec`).
5267        let l = LimitsSpec {
5268            cpu: Some(LIMITS_CPU_MILLICORES_MAX),
5269            ..Default::default()
5270        };
5271        let json = serde_json::to_string(&l).unwrap();
5272        assert!(
5273            json.contains("\"128000m\""),
5274            "the LIMITS_CPU_MILLICORES_MAX value must render to the canonical \"128000m\" form (got: {json})"
5275        );
5276        let back: LimitsSpec = serde_json::from_str(&json).unwrap();
5277        assert_eq!(back.cpu, Some(LIMITS_CPU_MILLICORES_MAX));
5278        l.validate()
5279            .expect("LIMITS_CPU_MILLICORES_MAX itself must pass validate");
5280    }
5281
5282    // ── value-shape: :fuel upper bound — 10^12 no-op-budget ceiling ────────
5283    //
5284    // The fourth and final `LimitsSpec` axis brought to a top-edge
5285    // cap, closing the open edge the 857dfcc CPU-cap commit body
5286    // explicitly named: "three of the four axes carry a top-and-bottom
5287    // edge gate; only `:fuel` remains with a zero-floor-only shape."
5288    // Mirrors the test discipline every sibling capped axis carries:
5289    // the fail-before-pass-after pin, the one-instruction-boundary
5290    // pin, the far-above-cap sweep, the inclusive-at-cap positive
5291    // control, the production-band positive-control sweep, the
5292    // cross-arm zero-then-cap ordering pin, the cross-axis
5293    // earlier-then-later precedence pin, the diagnostic-shape pin
5294    // carrying the offending value verbatim, and the cap-value
5295    // literal-identity + codec round-trip pins anchoring the
5296    // constant.
5297
5298    #[test]
5299    fn validate_rejects_fuel_above_cap() {
5300        // The fail-before-pass-after pin: `LIMITS_FUEL_MAX + 1` =
5301        // one wasm-instruction past the structural ceiling — a `u64`
5302        // magnitude the typed slot round-trips losslessly through
5303        // serde, and that silently passed validate on every pre-gate
5304        // codebase because the typed slot's only check was the
5305        // zero-floor arm. The wasm-engine consuming the value (via
5306        // `Store::set_fuel` projection in the M2.5 host runtime)
5307        // accepts the magnitude but the sibling `:wall-clock` 1h cap
5308        // fires before the fuel counter could ever drain — the typed
5309        // `:fuel` slot becomes a no-op budget far from the source
5310        // caixa.lisp.
5311        let f = LIMITS_FUEL_MAX + 1;
5312        let l = LimitsSpec {
5313            fuel: Some(f),
5314            ..Default::default()
5315        };
5316        assert_eq!(
5317            l.validate().unwrap_err(),
5318            LimitsError::FuelExceedsCap { fuel: f }
5319        );
5320    }
5321
5322    #[test]
5323    fn validate_rejects_fuel_far_above_cap() {
5324        // The "obvious authoring footgun" case: a `(:fuel
5325        // 1000000000000000)` (10^15 instructions), a paste-from-binary
5326        // `u64::MAX`, or a hex-literal-confused-for-decimal magnitude
5327        // — values the `u64` slot accepts cleanly, the codec
5328        // round-trips losslessly through serde, but the wasm-engine
5329        // can never honor as a meaningful counter. Until this gate
5330        // landed validate accepted them. Pin the common above-cap
5331        // values (10x cap, 1000x cap, `u64::MAX`) so a future
5332        // relaxation that drops the upper bound surfaces here. Peer
5333        // of `validate_rejects_cpu_far_above_cap` /
5334        // `validate_rejects_memory_8_gib` /
5335        // `validate_rejects_wall_clock_far_above_cap`.
5336        for f in [LIMITS_FUEL_MAX * 10, LIMITS_FUEL_MAX * 1_000, u64::MAX] {
5337            let l = LimitsSpec {
5338                fuel: Some(f),
5339                ..Default::default()
5340            };
5341            assert_eq!(
5342                l.validate().unwrap_err(),
5343                LimitsError::FuelExceedsCap { fuel: f }
5344            );
5345        }
5346    }
5347
5348    #[test]
5349    fn validate_accepts_fuel_at_cap() {
5350        // The boundary value — exactly [`LIMITS_FUEL_MAX`] (10^12
5351        // wasm instructions) — must validate. The cap is inclusive
5352        // on the top edge, matching the discipline on every sibling
5353        // capped axis ([`LIMITS_MEMORY_WASM32_MAX_BYTES`],
5354        // [`LIMITS_WALL_CLOCK_MAX`], [`LIMITS_CPU_MILLICORES_MAX`],
5355        // [`crate::POLICY_TIMEOUT_MAX`],
5356        // [`crate::POLICY_BREAKER_WINDOW_MAX`],
5357        // [`crate::POLICY_RATE_LIMIT_MAX`]). Pin the boundary
5358        // explicitly so a future off-by-one tightening
5359        // (`>= LIMITS_FUEL_MAX` instead of `>`) surfaces here as a
5360        // test failure rather than a silent contract narrowing.
5361        let l = LimitsSpec {
5362            fuel: Some(LIMITS_FUEL_MAX),
5363            ..Default::default()
5364        };
5365        l.validate().expect("fuel == LIMITS_FUEL_MAX must validate");
5366    }
5367
5368    #[test]
5369    fn validate_accepts_fuel_typical_values() {
5370        // The documented production-playbook band positive-control
5371        // sweep — every value the canonical caixa Servico runs in
5372        // (10^6..=10^9 fuel-units) must pass, plus a sweep through
5373        // the larger compute-bound-Servico band (10^10, 10^11) the
5374        // cap accepts. The canonical fixture is `1_000_000` =
5375        // wasmtime's documented `Store::set_fuel(1_000_000)` example.
5376        // Mirrors `validate_accepts_cpu_typical_values` on the
5377        // sibling `:cpu` axis.
5378        for f in [
5379            1_u64,             // smallest non-zero
5380            1_000,             // tiny per-call budget
5381            1_000_000,         // canonical fixture (10^6) — wasmtime book example
5382            10_000_000,        // typical small-Servico (10^7)
5383            100_000_000,       // typical heavier-Servico (10^8)
5384            1_000_000_000,     // 1 billion — upper realistic per-call (10^9)
5385            100_000_000_000,   // 10^11 — heavy compute-bound (10x below cap)
5386            500_000_000_000,   // half the cap
5387            1_000_000_000_000, // exactly at cap (10^12)
5388        ] {
5389            let l = LimitsSpec {
5390                fuel: Some(f),
5391                ..Default::default()
5392            };
5393            l.validate()
5394                .unwrap_or_else(|e| panic!("fuel={f} must validate; got {e:?}"));
5395        }
5396    }
5397
5398    #[test]
5399    fn fuel_zero_takes_precedence_over_cap() {
5400        // The cross-arm ordering pin: `Some(0)` is structurally
5401        // outside both `>= 1` (zero-floor) and `<= LIMITS_FUEL_MAX`
5402        // (cap), but the zero-floor diagnostic is the more
5403        // self-locating one (it directly names the omit-axis
5404        // remediation and the wasmtime-traps-at-zero semantics), so
5405        // the validate gate must fire on zero first. Same shape every
5406        // other zero-then-cap ordering on this surface uses
5407        // (`MemoryZero` then `MemoryExceedsWasm32Cap`,
5408        // `WallClockZero` then `WallClockExceedsCap`, `CpuZero` then
5409        // `CpuExceedsCap`).
5410        let l = LimitsSpec {
5411            fuel: Some(0),
5412            ..Default::default()
5413        };
5414        assert_eq!(
5415            l.validate().unwrap_err(),
5416            LimitsError::FuelZero,
5417            "Some(0) must surface the zero-floor diagnostic, not the cap diagnostic"
5418        );
5419    }
5420
5421    #[test]
5422    fn validate_rejects_fuel_cap_after_earlier_axes() {
5423        // Cross-axis ordering: when both an above-cap `:fuel` and an
5424        // earlier-axis violation are present, the earlier axis must
5425        // fire first. The validate sequence is :memory → :fuel →
5426        // :wall-clock → :cpu, so a paired memory-zero + fuel-above-
5427        // cap input surfaces `MemoryZero`, never the fuel-cap
5428        // diagnostic. Pins the canonical axis order so a future
5429        // refactor that reorders the arms surfaces here as a test
5430        // failure rather than a silent diagnostic regression. Peer
5431        // of `validate_rejects_cpu_cap_after_earlier_axes`.
5432        let l = LimitsSpec {
5433            memory: Some(0),
5434            fuel: Some(LIMITS_FUEL_MAX + 1),
5435            wall_clock: None,
5436            cpu: None,
5437        };
5438        assert_eq!(
5439            l.validate().unwrap_err(),
5440            LimitsError::MemoryZero,
5441            "earlier-axis violation must take precedence over later-axis cap violation"
5442        );
5443    }
5444
5445    #[test]
5446    fn validate_rejects_fuel_cap_before_later_axes() {
5447        // Cross-axis ordering on the other side: when both an
5448        // above-cap `:fuel` and a later-axis violation are present,
5449        // the `:fuel` cap must fire before the `:wall-clock` /
5450        // `:cpu` zero-floor diagnostics. The validate sequence is
5451        // :memory → :fuel → :wall-clock → :cpu, so a paired
5452        // fuel-above-cap + wall-clock-zero input surfaces
5453        // `FuelExceedsCap`, not `WallClockZero`. Pins the canonical
5454        // axis order on the new arm's downstream side, peer to the
5455        // upstream pin `validate_rejects_fuel_cap_after_earlier_axes`.
5456        let l = LimitsSpec {
5457            memory: None,
5458            fuel: Some(LIMITS_FUEL_MAX + 1),
5459            wall_clock: Some(Duration::ZERO),
5460            cpu: Some(0),
5461        };
5462        assert_eq!(
5463            l.validate().unwrap_err(),
5464            LimitsError::FuelExceedsCap {
5465                fuel: LIMITS_FUEL_MAX + 1
5466            },
5467            ":fuel cap diagnostic must take precedence over later-axis zero-floor diagnostics"
5468        );
5469    }
5470
5471    #[test]
5472    fn fuel_cap_diagnostic_carries_offending_value() {
5473        // The diagnostic-shape pin: the offending fuel count is
5474        // carried verbatim into the [`LimitsError::FuelExceedsCap`]
5475        // variant so the surfaced error message names the value the
5476        // author wrote, not just the cap. Same self-locating
5477        // diagnostic shape every other typed-cap arm on this surface
5478        // carries (`MemoryExceedsWasm32Cap` carries the offending
5479        // byte count verbatim, `WallClockExceedsCap` carries the
5480        // offending `Duration` verbatim, `CpuExceedsCap` carries the
5481        // offending millicore count verbatim).
5482        let f = 5_000_000_000_000_u64; // 5 trillion — 5x the cap
5483        let l = LimitsSpec {
5484            fuel: Some(f),
5485            ..Default::default()
5486        };
5487        let err = l.validate().unwrap_err();
5488        assert!(
5489            matches!(err, LimitsError::FuelExceedsCap { fuel } if fuel == f),
5490            "got {err:?}"
5491        );
5492        let msg = err.to_string();
5493        assert!(
5494            msg.contains("5000000000000"),
5495            ":limits :fuel cap diagnostic must carry the offending value verbatim (got: {msg})"
5496        );
5497    }
5498
5499    #[test]
5500    fn fuel_cap_pins_canonical_value() {
5501        // The [`LIMITS_FUEL_MAX`] constant pins the value at exactly
5502        // 10^12 (1 trillion wasm instructions) — the round-number
5503        // ceiling above the operational envelope the sibling
5504        // [`LIMITS_WALL_CLOCK_MAX`] (1h) × wasmtime's fuel-tracked
5505        // execution rate (~10^9 fuel/sec) yields. Pinning the
5506        // literal value here surfaces a future drift (a relaxation
5507        // to 10^15, a tightening to 10^9) as a deliberate test edit,
5508        // not a silent contract narrowing. Same shape every other
5509        // typed-cap value pin uses (`cpu_cap_pins_canonical_value`,
5510        // `wall_clock_cap_pins_canonical_value`,
5511        // `wasm32_memory_cap_matches_parsed_4_gib`).
5512        assert_eq!(LIMITS_FUEL_MAX, 1_000_000_000_000);
5513        assert_eq!(LIMITS_FUEL_MAX, 10_u64.pow(12));
5514    }
5515
5516    #[test]
5517    fn fuel_cap_value_round_trips_through_serde() {
5518        // The serde round-trip property the cap arm preserves: the
5519        // [`LIMITS_FUEL_MAX`] constant itself round-trips through
5520        // the in-module `u64` serde codec — the cap value renders as
5521        // the bare integer literal and parses back to the same
5522        // `u64`. Pin this so a future drift between the cap constant
5523        // and the codec's accepted magnitude (a future custom u64
5524        // serializer that introduces lossy formatting) surfaces
5525        // here. Same shape every other typed boundary pin on this
5526        // surface uses (`wasm32_memory_cap_matches_parsed_4_gib`,
5527        // `wall_clock_cap_value_round_trips_through_codec`,
5528        // `cpu_cap_value_round_trips_through_codec`).
5529        let l = LimitsSpec {
5530            fuel: Some(LIMITS_FUEL_MAX),
5531            ..Default::default()
5532        };
5533        let json = serde_json::to_string(&l).unwrap();
5534        assert!(
5535            json.contains("1000000000000"),
5536            "the LIMITS_FUEL_MAX value must render verbatim as the bare integer 10^12 \
5537             (got: {json})"
5538        );
5539        let back: LimitsSpec = serde_json::from_str(&json).unwrap();
5540        assert_eq!(back.fuel, Some(LIMITS_FUEL_MAX));
5541        l.validate()
5542            .expect("LIMITS_FUEL_MAX itself must pass validate");
5543    }
5544
5545    // ── per-`:limits :memory` accessor pins (LimitsSpec::memory) ─────────
5546
5547    #[test]
5548    fn limits_memory_returns_option_u64_byte_equal_across_permutations() {
5549        // The canonical per-`:limits` `:memory` Lunatic-per-process
5550        // wasm32-linear-memory byte-cap scalar pin: [`LimitsSpec::memory`]
5551        // must return the `:limits :memory` typed `u64` verbatim as an
5552        // `Option<u64>`, byte-equal to the raw field access across the
5553        // three canonical shape-arms — `None` (no cap declared —
5554        // engine-default applies), `Some(LIMITS_MEMORY_WASM32_PAGE_BYTES)`
5555        // (the structural minimum a validated `:limits :memory` may
5556        // carry, one wasm32 linear-memory page), `Some(64 * 1024 *
5557        // 1024)` (the canonical 64 MiB byte-cap the module-level
5558        // docstring names).
5559        //
5560        // Peer of the sibling per-`:politicas` [`crate::MeshPolicy::mtls_required`]
5561        // (c0110f1) / [`crate::MeshPolicy::retries`] (bdfb399) /
5562        // [`crate::MeshPolicy::timeout`] (7073d0f) accessor pin trio on
5563        // the sibling `Option<Copy-T>`-return axis, extended to the
5564        // peer per-`:limits` typed-`u64` optional-scalar shape —
5565        // first `Option<Copy-T>`-return accessor on the M2 slot family.
5566        // Pins against a future silent detour that re-derived the cap
5567        // from a peer axis (an accidental `.fuel`-collapse that
5568        // assumed the two `Option<u64>` axes carry the same value), a
5569        // `None` → `Some(0)` "zero means unbounded" collapse (the
5570        // canonical `Option<u64>` → `u64` collapse footgun the
5571        // [`LimitsError::MemoryZero`] validate arm guards on the peer
5572        // zero-floor axis), or a per-arm variant swap that landed on
5573        // one consumer without the other.
5574        for memory in [
5575            None,
5576            Some(LIMITS_MEMORY_WASM32_PAGE_BYTES),
5577            Some(64 * 1024 * 1024),
5578        ] {
5579            let l = LimitsSpec {
5580                memory,
5581                ..LimitsSpec::default()
5582            };
5583            assert_eq!(
5584                l.memory(),
5585                memory,
5586                "LimitsSpec::memory must return :limits :memory verbatim \
5587                 (got {:?}, expected {memory:?})",
5588                l.memory(),
5589            );
5590            assert_eq!(
5591                l.memory(),
5592                l.memory,
5593                "LimitsSpec::memory must byte-equal the raw .memory \
5594                 field access across every value in the accept-set",
5595            );
5596        }
5597    }
5598
5599    #[test]
5600    fn limits_is_empty_memory_arm_routes_through_accessor() {
5601        // Composition pin: [`LimitsSpec::is_empty`]'s `memory` arm
5602        // must key off [`LimitsSpec::memory`], not the raw `.memory`
5603        // field access. Structurally: setting ONLY the `memory` slot
5604        // on an otherwise-default LimitsSpec must flip `is_empty()`
5605        // from `true` (all-`None`) to `false` (one axis carries a
5606        // value); the flip must be observed across every value in the
5607        // accept-set since the emptiness semantic reads "any axis
5608        // carries a value" — not "any axis carries a value above a
5609        // threshold" — the same non-collapsing shape the sibling M3
5610        // [`crate::MeshPolicy::is_empty`] predicate carries on its
5611        // peer `Option<Copy-T>`-typed slot surfaces.
5612        //
5613        // Pins against a future silent detour that re-derived the
5614        // emptiness predicate off a peer axis (an accidental
5615        // `.fuel.is_none()`-only chain that dropped the `memory` arm
5616        // entirely), an accessor-side detour that no longer names the
5617        // substrate-primitive typed dispatch (an accidental
5618        // `self.memory.unwrap_or(0) == 0` fallback in the accessor
5619        // that would silently classify both `None` and `Some(0)` as
5620        // the same value), or a threshold collapse (a
5621        // `self.memory().is_some_and(|m| m > 0)` that would silently
5622        // classify `Some(0)` as unset).
5623        //
5624        // Peer of the sibling per-`:politicas`
5625        // [`crate::MeshPolicy::is_empty`] `mtls_required` arm
5626        // accessor-composition pin (c0110f1) on the sibling optional-
5627        // scalar axis — same "the emptiness / shape-gate predicate
5628        // must route through the substrate-primitive typed dispatch"
5629        // discipline extended onto the peer per-`:limits` emptiness
5630        // predicate.
5631        let empty = LimitsSpec::default();
5632        assert!(
5633            empty.is_empty(),
5634            "LimitsSpec::default() must be is_empty() — every axis \
5635             defaults to None",
5636        );
5637        for memory in [
5638            Some(LIMITS_MEMORY_WASM32_PAGE_BYTES),
5639            Some(64 * 1024 * 1024),
5640            Some(LIMITS_MEMORY_WASM32_MAX_BYTES),
5641        ] {
5642            let l = LimitsSpec {
5643                memory,
5644                ..LimitsSpec::default()
5645            };
5646            assert!(
5647                !l.is_empty(),
5648                "LimitsSpec::is_empty must return false when :memory \
5649                 is {memory:?} — the emptiness predicate reads \"any \
5650                 axis carries a value\", not \"any axis carries a \
5651                 value above a threshold\"",
5652            );
5653            assert_eq!(
5654                l.memory().is_none(),
5655                l.is_empty(),
5656                "when :memory is the only set axis, is_empty() must \
5657                 equal memory().is_none() — the accessor and the \
5658                 emptiness predicate must route through the same \
5659                 substrate-primitive typed dispatch on the :memory \
5660                 arm",
5661            );
5662        }
5663    }
5664
5665    #[test]
5666    fn limits_memory_projects_option_u64_by_copy() {
5667        // The by-copy pin: [`LimitsSpec::memory`] returns `Option<u64>`
5668        // by copy — `Option<u64>` is `Copy` and the accessor must
5669        // return by value, not by reference. Peer of the sibling per-
5670        // `:politicas` [`crate::MeshPolicy::mtls_required`] (c0110f1)
5671        // borrow-invariant pin on the peer `Option<bool>` shape,
5672        // extended onto the peer `Option<u64>` copy-invariant shape —
5673        // the accessor's returned `Option<u64>` must outlive `&self`
5674        // (multiple calls must return equal values from a dropped-
5675        // `&self` copy, since the returned Option carries no borrow),
5676        // and calling the accessor twice on the same LimitsSpec must
5677        // yield the same `Option<u64>` verbatim (idempotent, no side
5678        // effects on `&self`).
5679        //
5680        // Pins against a future silent detour that returned
5681        // `Option<&u64>` (which would type-check but silently break
5682        // every downstream caller — the future `wasmtime::Store::limiter`
5683        // wire path consumes `Option<u64>` by value and `&u64` would
5684        // fold to a detached copy at the call site), an accidental
5685        // `Option::as_ref()` projection (`self.memory.as_ref()` would
5686        // also type-check but return `Option<&u64>`), or a one-arm-
5687        // only accessor that reads `Some(*m)` in the Some arm but
5688        // reads a fresh `Default::default()` in the None arm.
5689        for memory in [
5690            None,
5691            Some(LIMITS_MEMORY_WASM32_PAGE_BYTES),
5692            Some(64 * 1024 * 1024),
5693            Some(LIMITS_MEMORY_WASM32_MAX_BYTES),
5694        ] {
5695            let l = LimitsSpec {
5696                memory,
5697                ..LimitsSpec::default()
5698            };
5699            let first = l.memory();
5700            let second = l.memory();
5701            assert_eq!(
5702                first, second,
5703                "LimitsSpec::memory must be idempotent — two \
5704                 successive calls on the same &self must return the \
5705                 same Option<u64>",
5706            );
5707            assert_eq!(
5708                first, memory,
5709                "LimitsSpec::memory must return :limits :memory \
5710                 verbatim by copy — got {first:?}, expected {memory:?}",
5711            );
5712        }
5713    }
5714
5715    #[test]
5716    #[allow(clippy::too_many_lines)]
5717    fn validate_memory_arms_route_through_lifted_memory_accessor() {
5718        // Composition pin: every value-shape gate in
5719        // [`LimitsSpec::validate`] on the `:memory` axis (the
5720        // zero-floor `MemoryZero` arm, the sub-page `MemoryBelowWasm32Page`
5721        // arm, the above-cap `MemoryExceedsWasm32Cap` arm, the
5722        // non-page-multiple `MemoryNotPageMultiple` arm) must key off
5723        // [`LimitsSpec::memory`], not the raw `self.memory` field
5724        // access. Peer of the sibling per-`:politicas`
5725        // [`crate::AplicacaoSpec::validate_politicas`] `:timeout` /
5726        // `:retries` arm converge pin (1017b9d) on the sibling M3
5727        // mesh-slot family, extended onto the M2 per-`:limits`
5728        // `:memory` axis; peer of the sibling per-`:limits` `:fuel` /
5729        // `:wall-clock` / `:cpu` arms in the same fan-out that
5730        // already route through `self.fuel()` / `self.wall_clock()`
5731        // / `self.cpu()` at :880 / :888 / :942.
5732        //
5733        // Assertion shape: for each memory value in the
5734        // accept-and-refuse set, `LimitsSpec::memory()` must byte-
5735        // equal the raw `.memory` field it borrows from, and the
5736        // validate call on a `LimitsSpec { memory: <v>, ..default() }`
5737        // fixture must surface the same variant/Ok discriminant the
5738        // accessor-composed spec surfaces. Together they catch any
5739        // future silent detour — an accessor drift that no longer
5740        // shipped the raw slot verbatim, a validate-branch rebrand to
5741        // a peer-axis field read, an accidental `Option`-collapse in
5742        // any of the four arms — at caixa-core build time rather than
5743        // at a downstream runtime declared-but-inert-limits divergence
5744        // at the wasmtime `Store::limiter` boundary.
5745        //
5746        // `#[allow(clippy::too_many_lines)]` per the same discipline
5747        // peer over-100-line composition pins in this module accept
5748        // (see e.g. `limits_is_empty_memory_arm_routes_through_accessor`,
5749        // `limits_memory_returns_option_u64_byte_equal_across_permutations`).
5750        for memory in [
5751            None,
5752            Some(0),                                   // → MemoryZero
5753            Some(1),                                   // → MemoryBelowWasm32Page (sub-page)
5754            Some(LIMITS_MEMORY_WASM32_PAGE_BYTES - 1), // → MemoryBelowWasm32Page (at-under-page)
5755            Some(LIMITS_MEMORY_WASM32_PAGE_BYTES),     // → Ok (at-page-floor)
5756            Some(LIMITS_MEMORY_WASM32_PAGE_BYTES + 1), // → MemoryNotPageMultiple (one-past-page)
5757            Some(2 * LIMITS_MEMORY_WASM32_PAGE_BYTES), // → Ok (multi-page)
5758            Some(LIMITS_MEMORY_WASM32_MAX_BYTES),      // → Ok (at-cap)
5759            Some(LIMITS_MEMORY_WASM32_MAX_BYTES + 1),  // → MemoryExceedsWasm32Cap (one-past-cap)
5760        ] {
5761            let l = LimitsSpec {
5762                memory,
5763                ..LimitsSpec::default()
5764            };
5765            // (1) The accessor must byte-equal the raw field it wraps.
5766            assert_eq!(
5767                l.memory(),
5768                l.memory,
5769                "LimitsSpec::memory() must byte-equal the raw \
5770                 .memory field for {memory:?} — an accessor detour \
5771                 that dropped the raw slot's Option<u64> verbatim \
5772                 would silently split validate's :memory arms from \
5773                 every peer emit-site consumer that also routes \
5774                 through the accessor (the future wasmtime \
5775                 Store::limiter wire path, the caixa-helm \
5776                 resources.limits.memory materializer)",
5777            );
5778            // (2) Two successive validate() calls must yield the same
5779            // variant/Ok discriminant — the accessor-projected reads
5780            // and the raw-projected reads must produce identical
5781            // validation outcomes.
5782            let first = l.validate();
5783            let second = l.validate();
5784            assert_eq!(
5785                first, second,
5786                "LimitsSpec::validate must be idempotent on :memory \
5787                 {memory:?} — two successive calls must surface the \
5788                 same variant/Ok discriminant, catching any accessor \
5789                 detour that would introduce a value-dependent side \
5790                 effect on the &self projection",
5791            );
5792        }
5793        // (3) The specific arm-order shape the four converged sites
5794        // encode: `MemoryZero` (raw-`Some(0)`) precedes the page-floor
5795        // arm, which precedes the cap arm, which precedes the page-
5796        // multiple arm. Each arm must fire off the accessor-projected
5797        // read on its specific fixture value.
5798        assert_eq!(
5799            LimitsSpec {
5800                memory: Some(0),
5801                ..LimitsSpec::default()
5802            }
5803            .validate(),
5804            Err(LimitsError::MemoryZero),
5805            "MemoryZero must fire on Some(0) via the accessor projection",
5806        );
5807        assert_eq!(
5808            LimitsSpec {
5809                memory: Some(1),
5810                ..LimitsSpec::default()
5811            }
5812            .validate(),
5813            Err(LimitsError::MemoryBelowWasm32Page { bytes: 1 }),
5814            "MemoryBelowWasm32Page must fire on Some(1) via the accessor projection",
5815        );
5816        assert_eq!(
5817            LimitsSpec {
5818                memory: Some(LIMITS_MEMORY_WASM32_MAX_BYTES + 1),
5819                ..LimitsSpec::default()
5820            }
5821            .validate(),
5822            Err(LimitsError::MemoryExceedsWasm32Cap {
5823                bytes: LIMITS_MEMORY_WASM32_MAX_BYTES + 1
5824            }),
5825            "MemoryExceedsWasm32Cap must fire on one-past-cap via the accessor projection",
5826        );
5827        assert_eq!(
5828            LimitsSpec {
5829                memory: Some(LIMITS_MEMORY_WASM32_PAGE_BYTES + 1),
5830                ..LimitsSpec::default()
5831            }
5832            .validate(),
5833            Err(LimitsError::MemoryNotPageMultiple {
5834                bytes: LIMITS_MEMORY_WASM32_PAGE_BYTES + 1
5835            }),
5836            "MemoryNotPageMultiple must fire on one-past-page-floor via the accessor projection",
5837        );
5838        assert_eq!(
5839            LimitsSpec {
5840                memory: Some(LIMITS_MEMORY_WASM32_PAGE_BYTES),
5841                ..LimitsSpec::default()
5842            }
5843            .validate(),
5844            Ok(()),
5845            "at-page-floor must pass validate via the accessor projection",
5846        );
5847        assert_eq!(
5848            LimitsSpec {
5849                memory: Some(LIMITS_MEMORY_WASM32_MAX_BYTES),
5850                ..LimitsSpec::default()
5851            }
5852            .validate(),
5853            Ok(()),
5854            "at-cap must pass validate via the accessor projection",
5855        );
5856    }
5857
5858    // ── per-`:limits :fuel` accessor pins (LimitsSpec::fuel) ─────────
5859
5860    #[test]
5861    fn limits_fuel_returns_option_u64_byte_equal_across_permutations() {
5862        // The canonical per-`:limits` `:fuel` wasmtime-per-call
5863        // wasm-instruction budget scalar pin: [`LimitsSpec::fuel`]
5864        // must return the `:limits :fuel` typed `u64` verbatim as an
5865        // `Option<u64>`, byte-equal to the raw field access across
5866        // the three canonical shape-arms — `None` (no fuel budget
5867        // declared — engine-default applies), `Some(1)` (the
5868        // structural minimum a validated `:limits :fuel` may carry,
5869        // one wasm instruction; wasmtime traps the first instruction
5870        // at `fuel=0`, so `Some(1)` is the smallest budget that
5871        // executes any code), `Some(1_000_000)` (the canonical 10⁶
5872        // fuel-unit budget the in-tree `Caixa::template` and the
5873        // wasmtime book's `Store::set_fuel(1_000_000)` example both
5874        // carry).
5875        //
5876        // Peer of the sibling per-`:limits` [`LimitsSpec::memory`]
5877        // (620c067) accessor byte-equality pin on the peer typed-`u64`
5878        // optional-scalar axis, extended to the wasm-instruction-budget
5879        // shape — second `Option<Copy-T>`-return accessor on the M2
5880        // slot family. Pins against a future silent detour that
5881        // re-derived the fuel budget from a peer axis (an accidental
5882        // `.memory`-collapse that assumed the two `Option<u64>` axes
5883        // carry the same value — the two axes share a shape but not
5884        // a semantic, `:memory` counts linear-memory bytes and `:fuel`
5885        // counts wasm instructions), a `None` → `Some(0)` "zero means
5886        // unbounded" collapse (the canonical `Option<u64>` → `u64`
5887        // collapse footgun the [`LimitsError::FuelZero`] validate arm
5888        // guards on the peer zero-floor axis; wasmtime interprets
5889        // `fuel=0` as "trap the first instruction" not "no bound"), or
5890        // a per-arm variant swap that landed on one consumer without
5891        // the other.
5892        for fuel in [None, Some(1_u64), Some(1_000_000_u64)] {
5893            let l = LimitsSpec {
5894                fuel,
5895                ..LimitsSpec::default()
5896            };
5897            assert_eq!(
5898                l.fuel(),
5899                fuel,
5900                "LimitsSpec::fuel must return :limits :fuel verbatim \
5901                 (got {:?}, expected {fuel:?})",
5902                l.fuel(),
5903            );
5904            assert_eq!(
5905                l.fuel(),
5906                l.fuel,
5907                "LimitsSpec::fuel must byte-equal the raw .fuel \
5908                 field access across every value in the accept-set",
5909            );
5910        }
5911    }
5912
5913    #[test]
5914    fn limits_is_empty_fuel_arm_routes_through_accessor() {
5915        // Composition pin: [`LimitsSpec::is_empty`]'s `fuel` arm
5916        // must key off [`LimitsSpec::fuel`], not the raw `.fuel`
5917        // field access. Structurally: setting ONLY the `fuel` slot
5918        // on an otherwise-default LimitsSpec must flip `is_empty()`
5919        // from `true` (all-`None`) to `false` (one axis carries a
5920        // value); the flip must be observed across every value in
5921        // the accept-set since the emptiness semantic reads "any
5922        // axis carries a value" — not "any axis carries a value
5923        // above a threshold" — the same non-collapsing shape the
5924        // sibling M3 [`crate::MeshPolicy::is_empty`] predicate
5925        // carries on its peer `Option<Copy-T>`-typed slot surfaces
5926        // and the sibling per-`:limits` [`LimitsSpec::memory`]
5927        // (620c067) `is_empty()` accessor-composition pin carries on
5928        // the peer `Option<u64>` axis.
5929        //
5930        // Pins against a future silent detour that re-derived the
5931        // emptiness predicate off a peer axis (an accidental
5932        // `.memory.is_none()`-only chain that dropped the `fuel` arm
5933        // entirely), an accessor-side detour that no longer names the
5934        // substrate-primitive typed dispatch (an accidental
5935        // `self.fuel.unwrap_or(0) == 0` fallback in the accessor
5936        // that would silently classify both `None` and `Some(0)` as
5937        // the same value — a footgun the [`LimitsError::FuelZero`]
5938        // validate arm explicitly closes since `fuel=0` traps rather
5939        // than expresses "unbounded"), or a threshold collapse (a
5940        // `self.fuel().is_some_and(|f| f > 0)` that would silently
5941        // classify `Some(0)` as unset).
5942        //
5943        // Peer of the sibling per-`:limits` [`LimitsSpec::memory`]
5944        // (620c067) `is_empty` composition pin on the peer
5945        // `Option<u64>` axis — same "the emptiness predicate must
5946        // route through the substrate-primitive typed dispatch"
5947        // discipline extended onto the peer per-`:limits` `:fuel`
5948        // arm.
5949        let empty = LimitsSpec::default();
5950        assert!(
5951            empty.is_empty(),
5952            "LimitsSpec::default() must be is_empty() — every axis \
5953             defaults to None",
5954        );
5955        for fuel in [Some(1_u64), Some(1_000_000_u64), Some(LIMITS_FUEL_MAX)] {
5956            let l = LimitsSpec {
5957                fuel,
5958                ..LimitsSpec::default()
5959            };
5960            assert!(
5961                !l.is_empty(),
5962                "LimitsSpec::is_empty must return false when :fuel \
5963                 is {fuel:?} — the emptiness predicate reads \"any \
5964                 axis carries a value\", not \"any axis carries a \
5965                 value above a threshold\"",
5966            );
5967            assert_eq!(
5968                l.fuel().is_none(),
5969                l.is_empty(),
5970                "when :fuel is the only set axis, is_empty() must \
5971                 equal fuel().is_none() — the accessor and the \
5972                 emptiness predicate must route through the same \
5973                 substrate-primitive typed dispatch on the :fuel \
5974                 arm",
5975            );
5976        }
5977    }
5978
5979    #[test]
5980    fn limits_fuel_projects_option_u64_by_copy() {
5981        // The by-copy pin: [`LimitsSpec::fuel`] returns `Option<u64>`
5982        // by copy — `Option<u64>` is `Copy` and the accessor must
5983        // return by value, not by reference. Peer of the sibling per-
5984        // `:limits` [`LimitsSpec::memory`] (620c067) copy-invariant
5985        // pin on the peer `Option<u64>` shape — the accessor's
5986        // returned `Option<u64>` must outlive `&self` (multiple calls
5987        // must return equal values from a dropped-`&self` copy, since
5988        // the returned Option carries no borrow), and calling the
5989        // accessor twice on the same LimitsSpec must yield the same
5990        // `Option<u64>` verbatim (idempotent, no side effects on
5991        // `&self`).
5992        //
5993        // Pins against a future silent detour that returned
5994        // `Option<&u64>` (which would type-check but silently break
5995        // every downstream caller — the future `wasmtime::Store::set_fuel`
5996        // wire path consumes `u64` by value and `&u64` would fold to
5997        // a detached copy at the call site), an accidental
5998        // `Option::as_ref()` projection (`self.fuel.as_ref()` would
5999        // also type-check but return `Option<&u64>`), or a one-arm-
6000        // only accessor that reads `Some(*f)` in the Some arm but
6001        // reads a fresh `Default::default()` in the None arm.
6002        for fuel in [
6003            None,
6004            Some(1_u64),
6005            Some(1_000_000_u64),
6006            Some(LIMITS_FUEL_MAX),
6007        ] {
6008            let l = LimitsSpec {
6009                fuel,
6010                ..LimitsSpec::default()
6011            };
6012            let first = l.fuel();
6013            let second = l.fuel();
6014            assert_eq!(
6015                first, second,
6016                "LimitsSpec::fuel must be idempotent — two \
6017                 successive calls on the same &self must return the \
6018                 same Option<u64>",
6019            );
6020            assert_eq!(
6021                first, fuel,
6022                "LimitsSpec::fuel must return :limits :fuel \
6023                 verbatim by copy — got {first:?}, expected {fuel:?}",
6024            );
6025        }
6026    }
6027
6028    // ── per-`:limits :wall-clock` accessor pins (LimitsSpec::wall_clock) ─
6029
6030    #[test]
6031    fn limits_wall_clock_returns_option_duration_byte_equal_across_permutations() {
6032        // The canonical per-`:limits` `:wall-clock` wasmtime-per-call
6033        // wall-clock deadline scalar pin: [`LimitsSpec::wall_clock`]
6034        // must return the `:limits :wall-clock` typed `Duration`
6035        // verbatim as an `Option<Duration>`, byte-equal to the raw
6036        // field access across the three canonical shape-arms — `None`
6037        // (no wall-clock deadline declared — engine-default applies),
6038        // `Some(Duration::from_millis(1))` (the structural minimum a
6039        // validated `:limits :wall-clock` may carry, the
6040        // integer-millisecond floor
6041        // [`LimitsError::WallClockNotCanonical`] rejects everything
6042        // sub-ms; `Duration::ZERO` is separately rejected by
6043        // [`LimitsError::WallClockZero`]), `Some(Duration::from_secs(30))`
6044        // (the canonical 30s deadline the module-level docstring
6045        // names).
6046        //
6047        // Peer of the sibling per-`:limits` [`LimitsSpec::memory`]
6048        // (620c067) / [`LimitsSpec::fuel`] (795dee7) accessor
6049        // byte-equality pins on the peer typed-`u64` optional-scalar
6050        // axes, extended to the wall-clock-deadline `Option<Duration>`
6051        // shape — third `Option<Copy-T>`-return accessor on the M2 slot
6052        // family. Sibling to [`crate::MeshPolicy::timeout`] (7073d0f) on
6053        // the M3 mesh-slot family's peer `Option<Duration>` accessor
6054        // axis — same typed-`Duration` shape extended from the M3
6055        // per-call-timeout axis to the M2 per-outermost-call-deadline
6056        // axis. Pins against a future silent detour that re-derived the
6057        // wall-clock deadline from a peer axis (an accidental
6058        // `.fuel`-collapse that assumed the wall-clock deadline and
6059        // the fuel budget carry the same value — the two axes serve
6060        // different sandboxing purposes, wall-clock tracks scheduler
6061        // real time and fuel tracks wasm instructions), a `None` →
6062        // `Some(Duration::ZERO)` "zero means unbounded" collapse (the
6063        // canonical `Option<Duration>` → `Duration` collapse footgun
6064        // the [`LimitsError::WallClockZero`] validate arm guards on the
6065        // peer zero-floor axis; a zero deadline traps the first
6066        // instruction), or a per-arm variant swap that landed on one
6067        // consumer without the other.
6068        for wall_clock in [
6069            None,
6070            Some(Duration::from_millis(1)),
6071            Some(Duration::from_secs(30)),
6072        ] {
6073            let l = LimitsSpec {
6074                wall_clock,
6075                ..LimitsSpec::default()
6076            };
6077            assert_eq!(
6078                l.wall_clock(),
6079                wall_clock,
6080                "LimitsSpec::wall_clock must return :limits :wall-clock verbatim \
6081                 (got {:?}, expected {wall_clock:?})",
6082                l.wall_clock(),
6083            );
6084            assert_eq!(
6085                l.wall_clock(),
6086                l.wall_clock,
6087                "LimitsSpec::wall_clock must byte-equal the raw .wall_clock \
6088                 field access across every value in the accept-set",
6089            );
6090        }
6091    }
6092
6093    #[test]
6094    fn limits_is_empty_wall_clock_arm_routes_through_accessor() {
6095        // Composition pin: [`LimitsSpec::is_empty`]'s `wall_clock` arm
6096        // must key off [`LimitsSpec::wall_clock`], not the raw
6097        // `.wall_clock` field access. Structurally: setting ONLY the
6098        // `wall_clock` slot on an otherwise-default LimitsSpec must
6099        // flip `is_empty()` from `true` (all-`None`) to `false` (one
6100        // axis carries a value); the flip must be observed across every
6101        // value in the accept-set since the emptiness semantic reads
6102        // "any axis carries a value" — not "any axis carries a value
6103        // above a threshold" — the same non-collapsing shape the
6104        // sibling M3 [`crate::MeshPolicy::is_empty`] predicate carries
6105        // on its peer `Option<Copy-T>`-typed slot surfaces and the
6106        // sibling per-`:limits` [`LimitsSpec::memory`] (620c067) /
6107        // [`LimitsSpec::fuel`] (795dee7) `is_empty()` accessor-
6108        // composition pins carry on the peer `Option<u64>` axes.
6109        //
6110        // Pins against a future silent detour that re-derived the
6111        // emptiness predicate off a peer axis (an accidental
6112        // `.memory.is_none()`-only chain that dropped the `wall_clock`
6113        // arm entirely), an accessor-side detour that no longer names
6114        // the substrate-primitive typed dispatch (an accidental
6115        // `self.wall_clock.unwrap_or(Duration::ZERO).is_zero()` fallback
6116        // in the accessor that would silently classify both `None` and
6117        // `Some(Duration::ZERO)` as the same value — a footgun the
6118        // [`LimitsError::WallClockZero`] validate arm explicitly closes
6119        // since a zero deadline traps rather than expresses
6120        // "unbounded"), or a threshold collapse (a
6121        // `self.wall_clock().is_some_and(|w| !w.is_zero())` that would
6122        // silently classify `Some(Duration::ZERO)` as unset).
6123        //
6124        // Peer of the sibling per-`:limits` [`LimitsSpec::memory`]
6125        // (620c067) / [`LimitsSpec::fuel`] (795dee7) `is_empty`
6126        // composition pins on the peer `Option<u64>` axes — same "the
6127        // emptiness predicate must route through the substrate-
6128        // primitive typed dispatch" discipline extended onto the peer
6129        // per-`:limits` `:wall-clock` arm.
6130        let empty = LimitsSpec::default();
6131        assert!(
6132            empty.is_empty(),
6133            "LimitsSpec::default() must be is_empty() — every axis \
6134             defaults to None",
6135        );
6136        for wall_clock in [
6137            Some(Duration::from_millis(1)),
6138            Some(Duration::from_secs(30)),
6139            Some(LIMITS_WALL_CLOCK_MAX),
6140        ] {
6141            let l = LimitsSpec {
6142                wall_clock,
6143                ..LimitsSpec::default()
6144            };
6145            assert!(
6146                !l.is_empty(),
6147                "LimitsSpec::is_empty must return false when :wall-clock \
6148                 is {wall_clock:?} — the emptiness predicate reads \"any \
6149                 axis carries a value\", not \"any axis carries a \
6150                 value above a threshold\"",
6151            );
6152            assert_eq!(
6153                l.wall_clock().is_none(),
6154                l.is_empty(),
6155                "when :wall-clock is the only set axis, is_empty() must \
6156                 equal wall_clock().is_none() — the accessor and the \
6157                 emptiness predicate must route through the same \
6158                 substrate-primitive typed dispatch on the :wall-clock \
6159                 arm",
6160            );
6161        }
6162    }
6163
6164    #[test]
6165    fn limits_wall_clock_projects_option_duration_by_copy() {
6166        // The by-copy pin: [`LimitsSpec::wall_clock`] returns
6167        // `Option<Duration>` by copy — `Duration` is `Copy` (so
6168        // `Option<Duration>` is `Copy`) and the accessor must return by
6169        // value, not by reference. Peer of the sibling per-`:limits`
6170        // [`LimitsSpec::memory`] (620c067) / [`LimitsSpec::fuel`]
6171        // (795dee7) copy-invariant pins on the peer `Option<u64>`
6172        // shape, extended onto the peer `Option<Duration>` shape — the
6173        // accessor's returned `Option<Duration>` must outlive `&self`
6174        // (multiple calls must return equal values from a dropped-
6175        // `&self` copy, since the returned Option carries no borrow),
6176        // and calling the accessor twice on the same LimitsSpec must
6177        // yield the same `Option<Duration>` verbatim (idempotent, no
6178        // side effects on `&self`).
6179        //
6180        // Pins against a future silent detour that returned
6181        // `Option<&Duration>` (which would type-check but silently
6182        // break every downstream caller — the future
6183        // `wasmtime::Store::epoch_deadline_*` wire path consumes
6184        // `Duration` by value and `&Duration` would fold to a detached
6185        // copy at the call site), an accidental `Option::as_ref()`
6186        // projection (`self.wall_clock.as_ref()` would also type-check
6187        // but return `Option<&Duration>`), or a one-arm-only accessor
6188        // that reads `Some(*w)` in the Some arm but reads a fresh
6189        // `Default::default()` (which would collapse to
6190        // `Duration::ZERO`, not `None`) in the None arm.
6191        for wall_clock in [
6192            None,
6193            Some(Duration::from_millis(1)),
6194            Some(Duration::from_secs(30)),
6195            Some(LIMITS_WALL_CLOCK_MAX),
6196        ] {
6197            let l = LimitsSpec {
6198                wall_clock,
6199                ..LimitsSpec::default()
6200            };
6201            let first = l.wall_clock();
6202            let second = l.wall_clock();
6203            assert_eq!(
6204                first, second,
6205                "LimitsSpec::wall_clock must be idempotent — two \
6206                 successive calls on the same &self must return the \
6207                 same Option<Duration>",
6208            );
6209            assert_eq!(
6210                first, wall_clock,
6211                "LimitsSpec::wall_clock must return :limits :wall-clock \
6212                 verbatim by copy — got {first:?}, expected {wall_clock:?}",
6213            );
6214        }
6215    }
6216
6217    // ── per-`:limits :cpu` accessor pins (LimitsSpec::cpu) ───────────
6218
6219    #[test]
6220    fn limits_cpu_returns_option_u32_byte_equal_across_permutations() {
6221        // The canonical per-`:limits` `:cpu` Kubernetes-millicore
6222        // soft cgroup-share scalar pin: [`LimitsSpec::cpu`] must return
6223        // the `:limits :cpu` typed `u32` verbatim as an `Option<u32>`,
6224        // byte-equal to the raw field access across the three canonical
6225        // shape-arms — `None` (no cgroup share declared —
6226        // scheduler-default applies), `Some(1)` (the structural minimum
6227        // a validated `:limits :cpu` may carry, one millicore; a zero
6228        // cgroup share is separately rejected by
6229        // [`LimitsError::CpuZero`]), `Some(500)` (the canonical 500m
6230        // half-a-core share the in-tree
6231        // `limits_slot_propagates_into_values_block` smoke test carries
6232        // as the load-bearing example, peer to the `caixa-flux`
6233        // projector's identical 500m default).
6234        //
6235        // Peer of the sibling per-`:limits` [`LimitsSpec::memory`]
6236        // (620c067) / [`LimitsSpec::fuel`] (795dee7) /
6237        // [`LimitsSpec::wall_clock`] (8cb717b) accessor byte-equality
6238        // pins on the peer typed-`u64` / `u64` / `Duration`
6239        // optional-scalar axes, extended to the cgroup-cpu-share
6240        // `Option<u32>` shape — fourth and final `Option<Copy-T>`-return
6241        // accessor on the M2 slot family, closing the M2 `:limits`
6242        // `Option<Copy-T>` accessor axis. Sibling to
6243        // [`crate::MeshPolicy::retries`] (bdfb399) on the M3 mesh-slot
6244        // family's peer `Option<u32>` accessor axis — same typed-`u32`
6245        // shape extended from the M3 per-edge-transient-failure-retry-
6246        // budget axis to the M2 per-process-cgroup-cpu-share axis.
6247        // Pins against a future silent detour that re-derived the cpu
6248        // share from a peer axis (an accidental `.retries`-collapse that
6249        // assumed the two `Option<u32>` axes carry the same value — the
6250        // two axes share a shape but not a semantic, M2 `:cpu` counts
6251        // millicores of soft cgroup share and M3 `:retries` counts
6252        // per-edge transient-failure retry budget), a `None` → `Some(0)`
6253        // "zero means unbounded" collapse (the canonical `Option<u32>` →
6254        // `u32` collapse footgun the [`LimitsError::CpuZero`] validate
6255        // arm guards on the peer zero-floor axis; a zero cgroup share
6256        // starves the process rather than expressing "unbounded"), or a
6257        // per-arm variant swap that landed on one consumer without the
6258        // other.
6259        for cpu in [None, Some(1_u32), Some(500_u32)] {
6260            let l = LimitsSpec {
6261                cpu,
6262                ..LimitsSpec::default()
6263            };
6264            assert_eq!(
6265                l.cpu(),
6266                cpu,
6267                "LimitsSpec::cpu must return :limits :cpu verbatim \
6268                 (got {:?}, expected {cpu:?})",
6269                l.cpu(),
6270            );
6271            assert_eq!(
6272                l.cpu(),
6273                l.cpu,
6274                "LimitsSpec::cpu must byte-equal the raw .cpu \
6275                 field access across every value in the accept-set",
6276            );
6277        }
6278    }
6279
6280    #[test]
6281    fn limits_is_empty_cpu_arm_routes_through_accessor() {
6282        // Composition pin: [`LimitsSpec::is_empty`]'s `cpu` arm must key
6283        // off [`LimitsSpec::cpu`], not the raw `.cpu` field access.
6284        // Structurally: setting ONLY the `cpu` slot on an
6285        // otherwise-default LimitsSpec must flip `is_empty()` from
6286        // `true` (all-`None`) to `false` (one axis carries a value);
6287        // the flip must be observed across every value in the
6288        // accept-set since the emptiness semantic reads "any axis
6289        // carries a value" — not "any axis carries a value above a
6290        // threshold" — the same non-collapsing shape the sibling M3
6291        // [`crate::MeshPolicy::is_empty`] predicate carries on its
6292        // peer `Option<Copy-T>`-typed slot surfaces and the sibling
6293        // per-`:limits` [`LimitsSpec::memory`] (620c067) /
6294        // [`LimitsSpec::fuel`] (795dee7) / [`LimitsSpec::wall_clock`]
6295        // (8cb717b) `is_empty()` accessor-composition pins carry on the
6296        // peer `Option<u64>` / `Option<u64>` / `Option<Duration>` axes.
6297        //
6298        // Pins against a future silent detour that re-derived the
6299        // emptiness predicate off a peer axis (an accidental
6300        // `.memory.is_none()`-only chain that dropped the `cpu` arm
6301        // entirely), an accessor-side detour that no longer names the
6302        // substrate-primitive typed dispatch (an accidental
6303        // `self.cpu.unwrap_or(0) == 0` fallback in the accessor that
6304        // would silently classify both `None` and `Some(0)` as the same
6305        // value — a footgun the [`LimitsError::CpuZero`] validate arm
6306        // explicitly closes since a zero cgroup share starves the
6307        // process rather than expressing "unbounded"), or a threshold
6308        // collapse (a `self.cpu().is_some_and(|m| m > 0)` that would
6309        // silently classify `Some(0)` as unset).
6310        //
6311        // Peer of the sibling per-`:limits` [`LimitsSpec::memory`]
6312        // (620c067) / [`LimitsSpec::fuel`] (795dee7) /
6313        // [`LimitsSpec::wall_clock`] (8cb717b) `is_empty` composition
6314        // pins on the peer `Option<u64>` / `Option<u64>` /
6315        // `Option<Duration>` axes — same "the emptiness predicate must
6316        // route through the substrate-primitive typed dispatch"
6317        // discipline extended onto the peer per-`:limits` `:cpu` arm.
6318        // Closes the M2 `:limits` `is_empty`-composition family — every
6319        // arm now routes through its typed accessor, no open-coded
6320        // field access remains.
6321        let empty = LimitsSpec::default();
6322        assert!(
6323            empty.is_empty(),
6324            "LimitsSpec::default() must be is_empty() — every axis \
6325             defaults to None",
6326        );
6327        for cpu in [Some(1_u32), Some(500_u32), Some(LIMITS_CPU_MILLICORES_MAX)] {
6328            let l = LimitsSpec {
6329                cpu,
6330                ..LimitsSpec::default()
6331            };
6332            assert!(
6333                !l.is_empty(),
6334                "LimitsSpec::is_empty must return false when :cpu \
6335                 is {cpu:?} — the emptiness predicate reads \"any \
6336                 axis carries a value\", not \"any axis carries a \
6337                 value above a threshold\"",
6338            );
6339            assert_eq!(
6340                l.cpu().is_none(),
6341                l.is_empty(),
6342                "when :cpu is the only set axis, is_empty() must \
6343                 equal cpu().is_none() — the accessor and the \
6344                 emptiness predicate must route through the same \
6345                 substrate-primitive typed dispatch on the :cpu \
6346                 arm",
6347            );
6348        }
6349    }
6350
6351    #[test]
6352    fn limits_cpu_projects_option_u32_by_copy() {
6353        // The by-copy pin: [`LimitsSpec::cpu`] returns `Option<u32>` by
6354        // copy — `Option<u32>` is `Copy` and the accessor must return
6355        // by value, not by reference. Peer of the sibling per-`:limits`
6356        // [`LimitsSpec::memory`] (620c067) / [`LimitsSpec::fuel`]
6357        // (795dee7) / [`LimitsSpec::wall_clock`] (8cb717b)
6358        // copy-invariant pins on the peer `Option<u64>` / `Option<u64>`
6359        // / `Option<Duration>` shapes, extended onto the peer
6360        // `Option<u32>` copy-invariant shape — the accessor's returned
6361        // `Option<u32>` must outlive `&self` (multiple calls must
6362        // return equal values from a dropped-`&self` copy, since the
6363        // returned Option carries no borrow), and calling the accessor
6364        // twice on the same LimitsSpec must yield the same
6365        // `Option<u32>` verbatim (idempotent, no side effects on
6366        // `&self`).
6367        //
6368        // Pins against a future silent detour that returned
6369        // `Option<&u32>` (which would type-check but silently break
6370        // every downstream caller — the future K8s pod-spec
6371        // `resources.requests.cpu` wire path consumes `u32` by value
6372        // and `&u32` would fold to a detached copy at the call site),
6373        // an accidental `Option::as_ref()` projection
6374        // (`self.cpu.as_ref()` would also type-check but return
6375        // `Option<&u32>`), or a one-arm-only accessor that reads
6376        // `Some(*m)` in the Some arm but reads a fresh
6377        // `Default::default()` in the None arm.
6378        for cpu in [
6379            None,
6380            Some(1_u32),
6381            Some(500_u32),
6382            Some(LIMITS_CPU_MILLICORES_MAX),
6383        ] {
6384            let l = LimitsSpec {
6385                cpu,
6386                ..LimitsSpec::default()
6387            };
6388            let first = l.cpu();
6389            let second = l.cpu();
6390            assert_eq!(
6391                first, second,
6392                "LimitsSpec::cpu must be idempotent — two \
6393                 successive calls on the same &self must return the \
6394                 same Option<u32>",
6395            );
6396            assert_eq!(
6397                first, cpu,
6398                "LimitsSpec::cpu must return :limits :cpu \
6399                 verbatim by copy — got {first:?}, expected {cpu:?}",
6400            );
6401        }
6402    }
6403}