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synth_backend/
arm_backend.rs

1//! ARM Backend — wraps the instruction selector + optimizer + encoder as a Backend
2//!
3//! This is Synth's custom ARM compiler targeting Cortex-M (Thumb-2).
4//! It's the only backend that supports per-rule formal verification (ASIL D path).
5
6use crate::ArmEncoder;
7use synth_core::backend::{
8    Backend, BackendCapabilities, BackendError, CodeRelocation, CompilationResult, CompileConfig,
9    CompiledFunction, LineMap, SafetyBounds,
10};
11use synth_core::target::{IsaVariant, TargetSpec};
12use synth_core::wasm_decoder::DecodedModule;
13use synth_core::wasm_op::WasmOp;
14use synth_synthesis::{
15    ArmInstruction, ArmOp, BoundsCheckConfig, InstructionSelector, OptimizationConfig,
16    OptimizerBridge, RuleDatabase, validate_instructions,
17};
18
19/// ARM Cortex-M backend using Synth's custom compiler pipeline
20pub struct ArmBackend;
21
22impl ArmBackend {
23    pub fn new() -> Self {
24        Self
25    }
26}
27
28impl Default for ArmBackend {
29    fn default() -> Self {
30        Self::new()
31    }
32}
33
34impl Backend for ArmBackend {
35    fn name(&self) -> &str {
36        "arm"
37    }
38
39    fn capabilities(&self) -> BackendCapabilities {
40        BackendCapabilities {
41            produces_elf: false,
42            supports_rule_verification: true,
43            supports_binary_verification: true,
44            is_external: false,
45        }
46    }
47
48    fn supported_targets(&self) -> Vec<TargetSpec> {
49        vec![
50            TargetSpec::cortex_m3(),
51            TargetSpec::cortex_m4(),
52            TargetSpec::cortex_m4f(),
53            TargetSpec::cortex_m7(),
54            TargetSpec::cortex_m7dp(),
55        ]
56    }
57
58    fn compile_module(
59        &self,
60        module: &DecodedModule,
61        config: &CompileConfig,
62    ) -> Result<CompilationResult, BackendError> {
63        let exports: Vec<_> = module
64            .functions
65            .iter()
66            .filter(|f| f.export_name.is_some())
67            .collect();
68
69        if exports.is_empty() {
70            return Err(BackendError::CompilationFailed(
71                "no exported functions found".into(),
72            ));
73        }
74
75        let mut functions = Vec::new();
76        for func in &exports {
77            let name = func.export_name.clone().unwrap();
78            // #359: copy THIS function's declared param widths into the config so
79            // `compile_function` (which carries no function index) can refuse a
80            // 64-bit param on the AAPCS stack-argument path. Cheap clone only when
81            // a signature table is present and this function has a width entry —
82            // otherwise reuse the shared config (every existing module unchanged).
83            // #509: same per-function pattern for the blocktype-arity side-table
84            // (value-carrying-branch lowering).
85            let params = config
86                .func_params_i64
87                .get(func.index as usize)
88                .filter(|p| !p.is_empty());
89            // #457: THIS function's DECLARED param count (imports-first full
90            // index), so the backend can cap the access-pattern inference that
91            // mistook a read-before-write local for a param. `None` when the
92            // driver supplied no arg-count table (hand-built modules).
93            let declared_params = config.func_arg_counts.get(func.index as usize).copied();
94            // GI-FPU-002 (#619/#369): THIS function's declared f32-param mask.
95            let params_f32 = config
96                .func_params_f32
97                .get(func.index as usize)
98                .filter(|p| !p.is_empty());
99            // GI-FPU-002 phase 2 (#369): THIS function's declared f64-param
100            // mask (hard-float targets decline f64 params loudly).
101            let params_f64 = config
102                .func_params_f64
103                .get(func.index as usize)
104                .filter(|p| !p.is_empty());
105            // GI-FPU-002 phase 2 (#719/#369): THIS function's declared f32/f64
106            // return flag, so the epilogue soundness guard fires on every driver
107            // path (not only the CLI loops).
108            let ret_f32 = config
109                .func_ret_f32
110                .get(func.index as usize)
111                .copied()
112                .unwrap_or(false);
113            let ret_f64 = config
114                .func_ret_f64
115                .get(func.index as usize)
116                .copied()
117                .unwrap_or(false);
118            let func_config = if params.is_some()
119                || params_f32.is_some()
120                || params_f64.is_some()
121                || !func.block_arity.is_empty()
122                || declared_params.is_some()
123                || ret_f32
124                || ret_f64
125            {
126                Some(CompileConfig {
127                    current_func_params_i64: params.cloned().unwrap_or_default(),
128                    current_func_params_f32: params_f32.cloned().unwrap_or_default(),
129                    current_func_params_f64: params_f64.cloned().unwrap_or_default(),
130                    current_func_ret_f32: ret_f32,
131                    current_func_ret_f64: ret_f64,
132                    current_func_block_arity: func.block_arity.clone(),
133                    current_func_param_count: declared_params,
134                    ..config.clone()
135                })
136            } else {
137                None
138            };
139            let cfg = func_config.as_ref().unwrap_or(config);
140            let compiled = self.compile_function(&name, &func.ops, cfg)?;
141            functions.push(compiled);
142        }
143
144        Ok(CompilationResult {
145            functions,
146            elf: None,
147            backend_name: self.name().to_string(),
148        })
149    }
150
151    fn compile_function(
152        &self,
153        name: &str,
154        ops: &[WasmOp],
155        config: &CompileConfig,
156    ) -> Result<CompiledFunction, BackendError> {
157        let (code, relocations, line_map, branch_map) =
158            compile_wasm_to_arm(ops, config).map_err(BackendError::CompilationFailed)?;
159
160        Ok(CompiledFunction {
161            name: name.to_string(),
162            code,
163            wasm_ops: ops.to_vec(),
164            relocations,
165            line_map,
166            branch_map,
167        })
168    }
169
170    fn is_available(&self) -> bool {
171        true // Always available — it's a library backend
172    }
173}
174
175/// Count the number of function parameters by analyzing LocalGet patterns
176fn count_params(wasm_ops: &[WasmOp]) -> u32 {
177    let mut first_access: std::collections::HashMap<u32, bool> = std::collections::HashMap::new();
178    for op in wasm_ops {
179        match op {
180            WasmOp::LocalGet(idx) => {
181                first_access.entry(*idx).or_insert(true);
182            }
183            WasmOp::LocalSet(idx) | WasmOp::LocalTee(idx) => {
184                first_access.entry(*idx).or_insert(false);
185            }
186            _ => {}
187        }
188    }
189
190    first_access
191        .iter()
192        .filter_map(
193            |(&idx, &is_read_first)| {
194                if is_read_first { Some(idx + 1) } else { None }
195            },
196        )
197        .max()
198        .unwrap_or(0)
199}
200
201/// #539: fold the `i32.const 0; memory.grow m` idiom to `memory.size m`.
202/// `memory.grow(0)` always succeeds and returns the current page count (WASM
203/// Core §4.4.7), which is exactly `memory.size`; the fixed-memory backend
204/// otherwise emits a constant `-1` for every `memory.grow`, so the legal
205/// `memory.grow(0)` "read/validate current size" idiom wrongly reported failure.
206/// Only the ADJACENT const-0 delta is folded (a non-zero delta keeps the sound
207/// `-1` — fixed memory genuinely cannot grow; a runtime-computed 0 is a
208/// documented follow-up). Backend- and path-agnostic: `memory.size` reads the
209/// runtime memory-size register on every selector, so this fixes the optimized
210/// and direct paths at once.
211fn rewrite_memory_grow_zero(wasm_ops: &[WasmOp]) -> Vec<WasmOp> {
212    let mut out = Vec::with_capacity(wasm_ops.len());
213    let mut i = 0;
214    while i < wasm_ops.len() {
215        if matches!(wasm_ops[i], WasmOp::I32Const(0))
216            && let Some(WasmOp::MemoryGrow(m)) = wasm_ops.get(i + 1)
217        {
218            out.push(WasmOp::MemorySize(*m));
219            i += 2;
220        } else {
221            out.push(wasm_ops[i].clone());
222            i += 1;
223        }
224    }
225    out
226}
227
228/// #509: does the op stream contain a `br`/`br_if`/`br_table` that CARRIES a
229/// value — i.e. one targeting a result-typed block/if (forward edge with
230/// results > 0) or a parameterized loop header (backward edge with loop
231/// params > 0)?
232///
233/// The optimized path's wasm→IR lowering drops the carried value on such
234/// edges (the taken arm returns the fall-through result — same class as the
235/// #507 `br_table` drop, observed on `pick_br`/`pick_br_fall`), so — like
236/// #507 — the shape is detected on the raw op stream and routed to the direct
237/// selector, whose #509 designated-result-register lowering lands the value
238/// correctly. `block_arity` is the decoder's ordinal blocktype-arity
239/// side-table; when it is empty (hand-built op streams) every block reads as
240/// void and this never fires, keeping the optimized path byte-identical for
241/// every existing caller. Frozen-safe for the same reason as #507: the frozen
242/// fixtures compile `--relocatable` (already direct), and no optimized-path
243/// fixture branches to a result-typed block.
244fn has_value_carrying_branch(wasm_ops: &[WasmOp], block_arity: &[(u8, u8)]) -> bool {
245    // Open control constructs: (is_loop, params, results), innermost last.
246    let mut open: Vec<(bool, u8, u8)> = Vec::new();
247    let mut ctrl_ord = 0usize;
248    // A branch edge carries a value when its target is a result-typed forward
249    // join (block/if) or a parameterized loop header.
250    let carries = |open: &[(bool, u8, u8)], depth: u32| -> bool {
251        let Some(&(is_loop, params, results)) = open
252            .len()
253            .checked_sub(1 + depth as usize)
254            .and_then(|i| open.get(i))
255        else {
256            return false; // function-level target — handled by Return lowering
257        };
258        if is_loop { params > 0 } else { results > 0 }
259    };
260    for op in wasm_ops {
261        match op {
262            WasmOp::Block | WasmOp::If => {
263                let (p, r) = block_arity.get(ctrl_ord).copied().unwrap_or((0, 0));
264                ctrl_ord += 1;
265                open.push((false, p, r));
266            }
267            WasmOp::Loop => {
268                let (p, r) = block_arity.get(ctrl_ord).copied().unwrap_or((0, 0));
269                ctrl_ord += 1;
270                open.push((true, p, r));
271            }
272            WasmOp::End => {
273                open.pop(); // None only at the function-level end — harmless
274            }
275            WasmOp::Br(d) | WasmOp::BrIf(d) if carries(&open, *d) => return true,
276            WasmOp::BrTable { targets, default }
277                if targets
278                    .iter()
279                    .chain(std::iter::once(default))
280                    .any(|d| carries(&open, *d)) =>
281            {
282                return true;
283            }
284            _ => {}
285        }
286    }
287    false
288}
289
290/// Core compilation: WASM ops → ARM machine code bytes + relocations
291///
292/// Returns (code_bytes, relocations) where relocations record BL instructions
293/// that target external symbols (e.g., `__meld_dispatch_import` for import calls).
294fn compile_wasm_to_arm(
295    wasm_ops: &[WasmOp],
296    config: &CompileConfig,
297) -> Result<
298    (
299        Vec<u8>,
300        Vec<CodeRelocation>,
301        LineMap,
302        synth_core::backend::BranchMap,
303    ),
304    String,
305> {
306    // #539: `memory.grow(0)` must return the CURRENT page count, not the
307    // fixed-memory `-1` sentinel — growing by zero pages can never fail (WASM
308    // Core §4.4.7), so a guest doing `if (memory.grow(0) < 0) trap;` wrongly
309    // faulted. Every lowering path emitted a delta-agnostic `-1`. `memory.grow(0)`
310    // is semantically identical to `memory.size`, which the backend already
311    // computes from the runtime memory-size register (R10 >> 16 = pages), so fold
312    // the `i32.const 0; memory.grow` idiom to `memory.size` up front — backend-
313    // and path-agnostic. A non-zero delta keeps `-1` (fixed memory genuinely
314    // cannot grow); a runtime delta that happens to be 0 is the documented
315    // follow-up.
316    let rewritten = rewrite_memory_grow_zero(wasm_ops);
317    // #494 phase 2b: the fact-spec guard-elision marks are keyed by op index
318    // into the stream the DRIVER handed us. The memory.grow(0) fold above can
319    // only shift indices AT OR AFTER a `memory.grow` — an op the fact-spec
320    // walk never crosses (it stops at the first untracked op, so no mark can
321    // follow one). Defense in depth: if the fold fired at all, drop the marks
322    // loudly rather than risk keying a guard elision to the wrong op.
323    let (fact_div_zero_elide, fact_div_ovf_elide, fact_mem_bounds_elide): (
324        &[usize],
325        &[usize],
326        &[usize],
327    ) = if rewritten.len() == wasm_ops.len() {
328        (
329            &config.fact_div_zero_elide,
330            &config.fact_div_ovf_elide,
331            &config.fact_mem_bounds_elide,
332        )
333    } else {
334        if !config.fact_div_zero_elide.is_empty()
335            || !config.fact_div_ovf_elide.is_empty()
336            || !config.fact_mem_bounds_elide.is_empty()
337        {
338            eprintln!(
339                "fact-spec: DECLINE guard elision marks dropped — the                      memory.grow(0) fold shifted op indices (#494 defensive gate);                      general lowering emitted"
340            );
341        }
342        (&[], &[], &[])
343    };
344    let wasm_ops: &[WasmOp] = &rewritten;
345
346    // #457: `count_params` INFERS the param count from access patterns (a local
347    // whose first access is a read is assumed to be a param), so a
348    // read-before-write NON-PARAM local — which WASM zero-initializes — was
349    // indistinguishable from a param: it got homed in a parameter register and
350    // read caller garbage instead of 0. When the driver supplied the DECLARED
351    // count (`current_func_param_count`, from the module's type section), cap
352    // the inference with it. `min` (not a plain override) keeps every function
353    // whose inference is <= declared byte-identical: the inferred count can only
354    // EXCEED the declared one via a read-first local index >= the declared count
355    // — i.e. exactly the read-before-write locals this issue is about.
356    let inferred_params = count_params(wasm_ops);
357    let num_params = match config.current_func_param_count {
358        Some(declared) => inferred_params.min(declared),
359        None => inferred_params,
360    };
361    // A read-before-write non-param local exists iff the capped count dropped.
362    // Such locals need the wasm-mandated zero-init, which only the direct
363    // selector emits — the optimized path's `ir_to_arm` maps a non-param
364    // local's vreg onto an r4+ temp with no initialization (caller garbage).
365    let has_rbw_local = num_params < inferred_params;
366
367    let bounds_config = match config.effective_safety_bounds() {
368        SafetyBounds::None => BoundsCheckConfig::None,
369        SafetyBounds::Mpu => BoundsCheckConfig::Mpu,
370        SafetyBounds::Software => BoundsCheckConfig::Software,
371        SafetyBounds::Mask => {
372            // #651 (mirroring the RISC-V backend's compile-time decline):
373            // index masking wraps `ea & (size-1)` — a modulo only when the
374            // linear-memory size is a power of two. With a non-power-of-two
375            // size the AND would silently REMAP in-bounds addresses (e.g.
376            // 0x18000 & 0x2FFFF = 0x8000 for a 192 KiB memory). Decline
377            // loudly rather than miscompile. `linear_memory_bytes == 0`
378            // means "unknown" (plain per-function path, no module context)
379            // — the startup default of one 64 KiB page is a power of two.
380            let bytes = config.linear_memory_bytes;
381            if bytes != 0 && !bytes.is_power_of_two() {
382                return Err(format!(
383                    "--safety-bounds mask requires a power-of-two linear-memory \
384                     size, got {bytes} bytes — switch to --safety-bounds software \
385                     for the deterministic check (#651)"
386                ));
387            }
388            BoundsCheckConfig::Masking
389        }
390    };
391
392    // The non-optimized (direct) instruction-selection path. Handles f32 via
393    // VFP/FPU. Used directly when `--no-optimize` is set, and as the fallback
394    // when the optimized path declines a module (see issue #120 below).
395    //
396    // VCR-RA-001 step 3b-lite (#242): a FRESH selector per attempt, with
397    // `spill_on_exhaustion` set only on the retry — the first pass is the
398    // unmodified default, so every function that compiles today is selected by
399    // exactly the code that compiled it yesterday (bit-identity is structural,
400    // not behavioural).
401    let select_direct_attempt = |spill_on_exhaustion: bool,
402                                 param_backing_on_exhaustion: bool,
403                                 local_promote: bool,
404                                 i64_spill_slots: Option<usize>|
405     -> Result<Vec<ArmInstruction>, synth_core::Error> {
406        let db = RuleDatabase::with_standard_rules();
407        let mut selector =
408            InstructionSelector::with_bounds_check(db.rules().to_vec(), bounds_config);
409        selector.set_target(config.target.fpu, &config.target.triple);
410        if config.num_imports > 0 {
411            selector.set_num_imports(config.num_imports);
412        }
413        // #195: plumb the callee argument-count tables so the direct selector can
414        // marshal call arguments into R0–R3 per AAPCS.
415        selector.set_func_arg_counts(
416            config.func_arg_counts.clone(),
417            config.type_arg_counts.clone(),
418        );
419        // #197: in relocatable host-link mode, emit direct `func_N` BLs for
420        // imports (rewritten to the wasm field name by build_relocatable_elf)
421        // instead of `__meld_dispatch_import`.
422        selector.set_relocatable(config.relocatable);
423        // #642: call_indirect guard inputs (compile-time table size for the
424        // bounds guard + closed-world type verdicts). Without them, every
425        // call_indirect lowering declines loudly.
426        selector.set_call_indirect_guards(config.call_indirect_guards.clone());
427        // #275: on the self-contained image path (NOT --relocatable) decline
428        // call_indirect loudly — the R11 funcref-table region is only populated
429        // by an external runtime, which a self-contained ELF does not have, so
430        // the dispatch would read function pointers from linear-memory data (a
431        // silent miscompile). The host-linked (--relocatable) path keeps the
432        // guarded dispatch: there a runtime places the table region at R11.
433        selector.set_reject_self_contained_call_indirect(!config.relocatable);
434        // #237: native-pointer ABI — wasm statics become __synth_wasm_data-relative.
435        selector.set_native_pointer_abi(config.native_pointer_abi, config.linear_memory_bytes);
436        // VCR-MEM-002 phase 1 (#406): per-memory initial page counts — enables
437        // the multi-memory arms (memory-0 lowering never reads it; empty ⇒
438        // every multi-memory op declines loudly).
439        selector.set_memory_pages(config.memory_pages.clone());
440        // #311: i64 call results are register PAIRS — tag them.
441        selector.set_result_types(config.func_ret_i64.clone(), config.type_ret_i64.clone());
442        // #359: declared param widths of THIS function, so the AAPCS stack-arg
443        // path can refuse 64-bit params (Ok-or-Err). Empty ⇒ assume i32.
444        selector.set_params_i64(config.current_func_params_i64.clone());
445        // GI-FPU-002 (#619/#369): declared f32-param mask — home hard-float f32
446        // args in S0..S15 (AAPCS-VFP) instead of the R0..R3 integer path.
447        selector.set_params_f32(config.current_func_params_f32.clone());
448        // GI-FPU-002 phase 2 (#369): declared f64-param mask — hard-float
449        // targets decline f64-param functions loudly (no D-register homing yet).
450        selector.set_params_f64(config.current_func_params_f64.clone());
451        // GI-FPU-002 phase 2 (#719/#369): THIS function's f32/f64 return flag, so
452        // the epilogue loudly declines a float result reaching it in a core
453        // register (never a silent integer R0 return where a caller reads S0/D0).
454        selector.set_ret_float(config.current_func_ret_f32, config.current_func_ret_f64);
455        // GI-FPU-002 phase 3 (#369): per-callee float-signature tables. `Call`
456        // marshals the AAPCS-VFP boundary from these (float args into S0../D0..,
457        // float results out of S0/D0); `CallIndirect` still declines a
458        // float-returning static type loudly.
459        selector.set_float_call_signatures(
460            config.func_ret_f32.clone(),
461            config.func_ret_f64.clone(),
462            config.type_ret_f32.clone(),
463            config.type_ret_f64.clone(),
464            config.func_params_f32.clone(),
465            config.func_params_f64.clone(),
466        );
467        // #509: blocktype-arity side-table of THIS function, so value-carrying
468        // br/br_if/br_table land the carried value in the target block's
469        // designated result register instead of dropping it. Empty ⇒ legacy
470        // void-block lowering.
471        selector.set_block_arity(config.current_func_block_arity.clone());
472        // Stack-pointer promotion is meaningful only under the native-pointer ABI;
473        // gating here keeps every non-native compile (all frozen fixtures) on the
474        // legacy R9 globals-table path, bit-identical.
475        if config.native_pointer_abi
476            && let Some((sp_idx, sp_init)) = config.stack_pointer_global
477        {
478            selector.set_native_pointer_stack(sp_idx, sp_init);
479        }
480        // #643: per-global slot widths — i64/f64 globals occupy 8-byte slots
481        // (register-pair store/load) and shift every later global's offset.
482        // Empty for i32-only modules ⇒ the legacy `idx * 4` layout, unchanged.
483        selector.set_global_widths(config.global_widths.clone());
484        selector.set_spill_on_exhaustion(spill_on_exhaustion);
485        selector.set_param_backing_on_exhaustion(param_backing_on_exhaustion);
486        // #587 pool-grow rung: a larger i64 spill-slot pool, set ONLY on the
487        // retry after an attempt failed with the slot-pool-exhausted Err —
488        // functions that compile with the default pool keep their frame
489        // byte-identical by construction.
490        if let Some(slots) = i64_spill_slots {
491            selector.set_i64_spill_slots(slots);
492        }
493        // VCR-RA local promotion (#390, #242): keep eligible non-param i32 locals
494        // in callee-saved registers instead of frame slots — the structural lever
495        // toward native parity. DEFAULT-ON as of v0.14.0: gale's G474RE DWT gate
496        // cleared it as a net win (gust_mix dissolved 58→50 cyc/call −14%, all 5
497        // stack spill/reloads eliminated, correctness bit-identical over [0,2047],
498        // 2.00×→1.72× vs LLVM). Escape hatch: `SYNTH_NO_LOCAL_PROMOTE=1` restores
499        // the frame-slot path. Leaf-only / i32-only / ARM-only (see
500        // compute_local_promotion); the leaf-only lift + i64 locals are follow-ons.
501        // #474: `local_promote` is now a per-attempt parameter so the retry ladder
502        // can drop promotion as an exhaustion-recovery rung (promotion pins r4-r8,
503        // which on a dense function leaves the spill allocator with nothing to
504        // free → the frame-slot path is the escape that restores compilability).
505        selector.set_local_promote(local_promote);
506        // #494 phase 2b: certificate-discharged div/rem trap-guard elision
507        // marks (empty in every compile without SYNTH_FACT_SPEC + facts).
508        selector
509            .set_fact_div_guard_elisions(fact_div_zero_elide.to_vec(), fact_div_ovf_elide.to_vec());
510        // #494 bounds-elision: certificate-discharged memory bounds-guard
511        // marks (empty in every compile without SYNTH_FACT_SPEC + facts).
512        selector.set_fact_mem_bounds_elisions(fact_mem_bounds_elide.to_vec());
513        selector.select_with_stack(wasm_ops, num_params)
514    };
515    let select_direct = || -> Result<Vec<ArmInstruction>, String> {
516        const SINGLE_EXHAUSTION: &str = "all allocatable registers are live on the stack";
517        const PAIR_EXHAUSTION: &str = "no consecutive pair of free registers for i64";
518        const SLOT_EXHAUSTION: &str = "i64 spill-slot pool exhausted";
519        // The full exhaustion-recovery ladder, parameterized on whether local
520        // promotion is enabled. Each rung is reached only when the previous one
521        // returned a recoverable register-exhaustion Err, so a function that
522        // compiles on the first attempt is untouched by the later rungs. Returns
523        // the result AND which rung produced it (for the #242 measurement below).
524        let recovery_ladder =
525            |promote: bool,
526             i64_spill_slots: Option<usize>|
527             -> (Result<Vec<ArmInstruction>, synth_core::Error>, &'static str) {
528                let mut attempt = select_direct_attempt(false, false, promote, i64_spill_slots);
529                let mut rung = "base";
530                // VCR-RA-001 step 3b-lite (#242): the i32 register-exhaustion
531                // hard-fail is recoverable — retry with spill-on-exhaustion, which
532                // reserves the spill area and spills the deepest stack value when
533                // the pool is full.
534                if let Err(e) = &attempt
535                    && e.to_string().contains(SINGLE_EXHAUSTION)
536                {
537                    attempt = select_direct_attempt(true, false, promote, i64_spill_slots);
538                    rung = "spill";
539                }
540                // VCR-RA-001 acceptance increment (#242): the i64 consecutive-PAIR
541                // exhaustion is recoverable too — not by stack spilling (the pair
542                // allocator already spills stack values, #171) but by frame-backing
543                // the params (#204) so they stop pinning R0-R3, with spill kept on.
544                if let Err(e) = &attempt
545                    && e.to_string().contains(PAIR_EXHAUSTION)
546                {
547                    attempt = select_direct_attempt(true, true, promote, i64_spill_slots);
548                    rung = "param-backing";
549                }
550                (attempt, rung)
551            };
552        // #474: local promotion (default-on since v0.14.0) is an OPTIMIZATION — it
553        // must never be the reason a function fails to compile. Run the full ladder
554        // with promotion first (so every function that compiles today is
555        // bit-identical), and if it still ends in register exhaustion, fall back to
556        // the promotion-off ladder (the v0.12.0 frame-slot lowering — exactly what
557        // the `SYNTH_NO_LOCAL_PROMOTE=1` workaround does, now automatic). Promotion
558        // pins r4-r8 for the locals; on a dense function that leaves the allocator
559        // with nothing to free, so dropping it restores compilability. The fallback
560        // is reached ONLY by functions that exhaust WITH promotion, so promotion-on
561        // output is untouched by construction (frozen byte gate stays green).
562        let promote = std::env::var("SYNTH_NO_LOCAL_PROMOTE").is_err();
563        // The full pre-#587 recovery sequence (promotion-on ladder, then the
564        // #474 promotion-off fallback), parameterized on the pool size so the
565        // pool-grow retry below reruns it verbatim.
566        let full_sequence = |slots: Option<usize>| -> (
567            Result<Vec<ArmInstruction>, synth_core::Error>,
568            &'static str,
569            bool,
570        ) {
571            let (mut attempt, mut rung) = recovery_ladder(promote, slots);
572            let mut promotion_dropped = false;
573            if promote
574                && attempt
575                    .as_ref()
576                    .err()
577                    .is_some_and(|e| e.to_string().contains("register exhaustion"))
578            {
579                let (rescued, off_rung) = recovery_ladder(false, slots);
580                if rescued.is_ok() {
581                    attempt = rescued;
582                    rung = off_rung;
583                    promotion_dropped = true;
584                }
585            }
586            (attempt, rung, promotion_dropped)
587        };
588        let (mut attempt, mut rung, mut promotion_dropped) = full_sequence(None);
589        // #587 pool-grow retry (the falcon func_60/func_73 remainder): the fixed
590        // 8-slot i64 spill pool can exhaust while spilling is otherwise working —
591        // an i64-dense function simply has more values simultaneously live than
592        // the pool holds. Rerun the ENTIRE sequence (every rung, both promotion
593        // modes) with the pool sized from a conservative operand-stack-depth
594        // bound: the number of simultaneously spilled values can never exceed
595        // the operand-stack depth, plus a few transient slots (the arg-move
596        // cycle resolver and call-result parking each borrow one). The selector
597        // clamps the request to its 12-bit-friendly cap; a function that still
598        // exhausts stays an honest loud skip. Deliberately LAST — after the #474
599        // promotion-off fallback — so any function that compiled yesterday
600        // (through any rung or fallback) is produced by exactly yesterday's
601        // path, byte-identical; the grown pool only ever fires for functions
602        // whose every existing escape ended in the slot-pool Err.
603        if attempt
604            .as_ref()
605            .err()
606            .is_some_and(|e| e.to_string().contains(SLOT_EXHAUSTION))
607        {
608            let depth = synth_core::wasm_stack_check::max_depth_bound(wasm_ops) as usize;
609            let (grown, _, grown_dropped) = full_sequence(Some(depth.saturating_add(4)));
610            if grown.is_ok() {
611                attempt = grown;
612                rung = "pool-grow";
613                promotion_dropped = grown_dropped;
614            }
615        }
616        // VCR-RA measurement (#242): log which recovery rung produced the result,
617        // so the per-rung distribution across a corpus can be measured — the size
618        // of the failure surface a verified allocator must subsume (see
619        // scripts/repro/register_exhaustion_recovery_ladder.md). Logging only:
620        // emitted bytes are unchanged, so the frozen byte gate is unaffected.
621        if std::env::var("SYNTH_RECOVERY_STATS").is_ok() {
622            eprintln!(
623                "[recovery-stats] rung={rung}{} result={}",
624                if promotion_dropped {
625                    " promotion-off"
626                } else {
627                    ""
628                },
629                if attempt.is_ok() { "ok" } else { "exhausted" },
630            );
631        }
632        attempt.map_err(|e| format!("instruction selection failed: {}", e))
633    };
634
635    // Instruction selection: optimized or direct.
636    //
637    // #197: `--relocatable` (host-link ET_REL) forces the direct selector. The
638    // optimized path materializes an absolute linmem base (0x20000100) and does
639    // not preserve caller-saved registers across calls — both wrong for a
640    // host-linked object, where the linmem base arrives via `fp` at runtime and
641    // callees follow AAPCS. `select_with_stack` (now i64-spill capable after
642    // #171) handles fp-relative memory + caller-saved preservation correctly.
643    //
644    // #507: `br_table` is DROPPED during the optimized path's wasm→IR lowering
645    // (`optimize_full`), so `ir_to_arm` never sees the dispatch — it emits the
646    // arm bodies in fall-through sequence with no `cmp`/branch on the selector, a
647    // SILENT miscompile (every input hits the last arm). The selector value isn't
648    // even loaded. Because the drop happens before `ir_to_arm`, there's no `Err`
649    // to fall back on; detect it on the raw wasm op stream here and force the
650    // direct selector (`select_with_stack` lowers `br_table` correctly as a
651    // cmp-chain — confirmed on the `--relocatable` path). Same honest-degradation
652    // contract as the issue-#120 f32 decline: the function still compiles
653    // correctly, just without IR-level optimization. Frozen-safe: the frozen
654    // fixtures compile `--relocatable` (already direct), and no optimized-path
655    // fixture (control_step, flight_algo) contains `br_table`.
656    let has_br_table = wasm_ops
657        .iter()
658        .any(|op| matches!(op, WasmOp::BrTable { .. }));
659    // #509: the optimized path also drops the value carried by a `br`/`br_if`
660    // to a result-typed block (the taken edge returns the wrong arm's value —
661    // same silent-miscompile class as the #507 br_table drop). Route the shape
662    // to the direct selector, whose designated-result-register lowering (#509)
663    // lands the carried value at the join. Never fires for void-block control
664    // flow (all frozen/optimized fixtures), so those stay byte-identical.
665    let has_value_carry = has_value_carrying_branch(wasm_ops, &config.current_func_block_arity);
666    // #503-i64/#518: route any signature with a 64-bit (i64/f64) param to the
667    // direct selector. The optimized path's param homing is width-naive — its
668    // #518 decline covers only functions that READ an i64 param (an `I64Load`
669    // from a param index), so a function that reads an i32 param whose AAPCS
670    // home a preceding wide param SHIFTED (e.g. p1 of `(i64 i32)` lives in R2,
671    // not R1; p3 of `(i64 i32 i32 i32)` lives on the stack, not in R3) was
672    // silently miscompiled rather than falling back. The direct selector's
673    // `aapcs_param_layout` homing handles every such shape (i64-param READS
674    // already fell back to it via the ir_to_arm Err, so those functions emit
675    // the same bytes as before). `num_params` counts read-first locals, so a
676    // function that never touches any param keeps the optimized path.
677    let has_wide_param = config
678        .current_func_params_i64
679        .iter()
680        .take(num_params as usize)
681        .any(|&w| w);
682    // #494 phase 2b: div/rem guard-elision marks are consumed by the DIRECT
683    // selector only — the optimized path's IR passes (const-fold/CSE/DCE)
684    // renumber instructions, so an op-index-keyed mark cannot soundly survive
685    // them. Route marked functions direct (the #507/#509 honest-degradation
686    // pattern). Never fires without SYNTH_FACT_SPEC + facts + a discharged
687    // obligation, so every existing compile keeps its path byte-identical.
688    let has_fact_div_elide = !fact_div_zero_elide.is_empty()
689        || !fact_div_ovf_elide.is_empty()
690        // #494 bounds-elision: memory bounds-guard marks are direct-selector
691        // keyed for the same reason (IR passes renumber instructions).
692        || !fact_mem_bounds_elide.is_empty();
693    // #643: the optimized path's global lowering is width-naive — `GlobalGet`/
694    // `GlobalSet` are single-word `[R9, idx*4]` accesses, which (a) silently
695    // dropped the high word of every i64 global and (b) mis-address every
696    // global whose offset an earlier wide (i64/f64) slot shifted. When the
697    // module has any wide global, route every global-touching function to the
698    // direct selector, whose type-aware summed layout pairs the access (or
699    // declines loudly). Modules with only 4-byte globals — every existing
700    // fixture — keep the optimized path byte-identical.
701    let has_wide_global_module = config.global_widths.iter().any(|&w| w > 4);
702    let has_global_access = has_wide_global_module
703        && wasm_ops
704            .iter()
705            .any(|op| matches!(op, WasmOp::GlobalGet(_) | WasmOp::GlobalSet(_)));
706    // VCR-VER-001 (#242): `post_exhaust` scopes the post-exhaustion cleanup
707    // extensions to functions whose bytes the #580 spill-on-exhaustion
708    // machinery actually shaped (bridge-reported). Everything else — the
709    // direct path, non-exhausted optimized functions — stays byte-identical
710    // flag-on (the `vcr_ver_001_gate_242` lock's contract).
711    let (arm_instrs, post_exhaust) = if config.no_optimize
712        || config.relocatable
713        || has_br_table
714        || has_value_carry
715        || has_wide_param
716        || has_global_access
717        || has_fact_div_elide
718        // #457: route read-before-write non-param locals to the direct
719        // selector, whose prologue zero-init lands the wasm-mandated 0.
720        || has_rbw_local
721    {
722        if std::env::var("SYNTH_PATH_DEBUG").is_ok() {
723            eprintln!("[path-debug] direct (pre-gate)");
724        }
725        (select_direct()?, false)
726    } else {
727        let opt_config = if config.loom_compat {
728            OptimizationConfig::loom_compat()
729        } else {
730            OptimizationConfig::all()
731        };
732
733        let mut bridge = OptimizerBridge::with_config(opt_config);
734        // #188: tell the bridge how many imports there are so it declines only
735        // LOCAL calls (and leaves import calls on the optimized path, keeping
736        // the #173 field-name relocation rewrite intact).
737        bridge.set_num_imports(config.num_imports);
738        // #543 Phase 2: thread the integrator-marked volatile DMA-window ranges
739        // (`--volatile-segment <base>:<len>`) to the bridge's address-caching
740        // levers — base-CSE (#468) excludes any access inside a marked range
741        // from its fold set, and the bridge-level const-CSE declines wholesale
742        // while any range is marked. Empty (the default) ⇒ byte-identical.
743        bridge.set_volatile_segments(config.volatile_segments.clone());
744        // #377: thread `--safety-bounds` to the bridge. Pre-fix the optimized
745        // path ignored it — `software`/`mask` were SILENT NO-OPS on the path
746        // that lowers the bulk of a flight loop's i32 loads/stores (byte-
747        // identical to `none`, while the safety manifest claimed otherwise).
748        // `Software` now emits the inline guard per access; `Masking` declines
749        // memory-accessing functions to the direct selector; `None`/`Mpu` are
750        // byte-identical to before.
751        bridge.set_bounds_check(bounds_config);
752        // #687: thread the absolute linear-memory base the optimized path
753        // materializes. Defaults to 0x2000_0100 (byte-identical);
754        // `--stack-layout=low` shifts it up by the reserved stack size so
755        // const-address accesses follow the moved linear memory.
756        bridge.set_linmem_base(config.linmem_base);
757        // `ir_to_arm` now returns `Result` — an `Err` means the optimized path
758        // hit an unmapped vreg (issue-#93-class). Treat it identically to an
759        // `optimize_full` failure: fall back to the direct selector rather
760        // than propagating, so the function still compiles correctly.
761        match bridge
762            .optimize_full(wasm_ops)
763            .and_then(|(opt_ir, _cfg, _stats)| bridge.ir_to_arm(&opt_ir, num_params as usize))
764        {
765            Ok(arm_ops) => {
766                if std::env::var("SYNTH_PATH_DEBUG").is_ok() {
767                    eprintln!("[path-debug] optimized (ir_to_arm ok)");
768                }
769                (
770                    arm_ops
771                        .into_iter()
772                        .map(|op| ArmInstruction {
773                            op,
774                            source_line: None,
775                        })
776                        .collect(),
777                    bridge.spill_on_exhaust_fired(),
778                )
779            }
780            // Issue #120: the optimized path declines modules it cannot lower
781            // (notably scalar f32/f64 ops — the IR has no float opcodes). Fall
782            // back to the direct instruction selector, which handles f32 via
783            // VFP/FPU. This is honest degradation: the function still compiles
784            // correctly, just without IR-level optimization.
785            Err(e) => {
786                if std::env::var("SYNTH_PATH_DEBUG").is_ok() {
787                    eprintln!("[path-debug] direct (fallback: {e})");
788                }
789                (select_direct()?, false)
790            }
791        }
792    };
793
794    // #257/#277: `mul`+`add`→`mla` fusion is intentionally NOT wired here.
795    // The transform is correct and ready (`synth_synthesis::liveness::fuse_mul_add`,
796    // fully tested), but it is **register-allocation-coupled**: over the current
797    // greedy single-pass selector, folding `mul rM,..; add rD,rM,rX` → `mla`
798    // extends the live ranges of the mul inputs to the mla point, and the added
799    // pressure (extra moves/spills) costs more than the single-cycle MLA saves —
800    // gale measured a +2 cyc on-target REGRESSION (flat_flight 255→257, G474RE)
801    // even though it removes 2 instructions and the seam stays 0x07FDF307. So the
802    // fusion stays unwired until the spill-aware allocator (VCR-RA-001) chooses
803    // registers, at which point it becomes net-positive (per #272's plan and the
804    // wiring design note). Lesson (#277): a register-pressure-affecting transform
805    // needs an on-target/allocator-aware gate, not a byte-count gate, before it
806    // can default on.
807
808    // VCR-RA-001 const-CSE / rematerialization-avoidance (#209): moved to run
809    // LAST, after the immediate-folds — see the apply_const_cse call below
810    // (#242). Earlier it ran here (before range-realloc and the folds), which is
811    // what let it grow gale's --relocatable `gust_mix` 90→92 B (#242 burndown,
812    // 2026-06-26): retargeting a read defeated a *downstream* immediate-fold that
813    // would otherwise have absorbed the constant. Running CSE-last makes those
814    // foldable consts already-folded-and-gone, so CSE only ever touches genuinely
815    // redundant materializations.
816
817    // VCR-RA-001 RANGE RE-ALLOCATION (#209/#242, wiring step 3a) — the first
818    // CONSEQUENTIAL allocator pass: re-colour each maximal straight-line
819    // segment over the R0-R8 pool with value ranges as the allocation unit
820    // (segment inputs + per-register live-outs pinned to their original
821    // registers, reserved R9-R12/SP identity-assigned — each segment is
822    // independently sound, no cross-segment liveness assumed). Renames
823    // registers only: never adds, removes, or reorders instructions, so
824    // labels/branch offsets are unaffected.
825    //
826    // DEFAULT-ON since v0.11.36: gale cleared the gate on-target (G474RE,
827    // #209 2026-06-10) — flag-on output byte-identical to flag-off on
828    // flat_flight/controller/control_step, fires on the filter family with
829    // zero cycle delta and a small size win, all selfchecks green on silicon.
830    // Opt out with `SYNTH_RANGE_REALLOC=0`; per-function stats with
831    // `SYNTH_REALLOC_STATS=1`.
832    //
833    // The companion dead callee-saved-save elimination (gale's "next
834    // consequential lever", same issue comment) then shrinks the prologue
835    // `push {r4-r8,lr}` / epilogue `pop {r4-r8,pc}` to the callee-saved
836    // registers the re-allocated body still touches (leaf-only,
837    // SP-untouched, even-count-padded — see shrink_callee_saved_saves):
838    // ~12 cycles of pure save/restore overhead removed on small leaves.
839    let realloc_on = std::env::var("SYNTH_RANGE_REALLOC").map_or(true, |v| v != "0");
840    let arm_instrs = if realloc_on {
841        use synth_synthesis::rules::Reg;
842        const POOL: [Reg; 9] = [
843            Reg::R0,
844            Reg::R1,
845            Reg::R2,
846            Reg::R3,
847            Reg::R4,
848            Reg::R5,
849            Reg::R6,
850            Reg::R7,
851            Reg::R8,
852        ];
853        // VCR-VER-001 (#242): on a function the spill-on-exhaustion machinery
854        // shaped, the terminal segment gets relaxed live-out pinning (only
855        // R0/R1 are observable past `bx lr` at this pre-prologue position) so
856        // the colourer can lower R4-R8-homed tails into caller-saved R0-R3 —
857        // shrinking the `push {r4-r8,lr}` the #580 exhaustion shapes pay for.
858        // `post_exhaust == false` selects the shipping pass bit for bit.
859        let (out, stats) = synth_synthesis::liveness::reallocate_function_post_exhaust(
860            &arm_instrs,
861            &POOL,
862            post_exhaust,
863        );
864        if std::env::var("SYNTH_REALLOC_STATS").is_ok() {
865            eprintln!(
866                "[range-realloc] {} segments: {} reallocated, {} declined ({} validator-rejected), {} need spill (step 4)",
867                stats.segments,
868                stats.reallocated,
869                stats.declined,
870                stats.validator_rejects,
871                stats.needs_spill
872            );
873        }
874        // VCR-RA-002 (#390, epic #242): eliminate a provably-dead stack frame
875        // (`sub sp,#N`/`add sp,#N` reserved by `compute_local_layout` for locals
876        // that promotion homed in registers, never accessed). Removing it saves
877        // the two instructions AND restores the SP-untouched precondition that
878        // `shrink_callee_saved_saves` requires — so it must run FIRST.
879        // DEFAULT-ON (#242 flag audit flip-wave, #592 audit item): evidence
880        // basis was the 2-path × repro-corpus sweep — 0 functions grow, 58
881        // shrink (flight_seam controller_step 250→242 −8 / filter_step 180→168
882        // −12, native_pointer frame_roundtrip 46→34 −12), locked by the
883        // `dead_frame_elim_no_grow_corpus_242` cargo gate; execution
884        // differentials re-run green on the new default bytes BEFORE the
885        // frozen ARM anchors were re-pinned (leaf_dead_frame, flight_seam,
886        // frame_slot_dce — see the flip PR). Escape hatch:
887        // `SYNTH_DEAD_FRAME_ELIM=0` opts out and restores the pre-flip bytes
888        // (CI-gated in `frozen_codegen_bytes.rs`).
889        let out = if !std::env::var("SYNTH_DEAD_FRAME_ELIM").is_ok_and(|v| v == "0") {
890            synth_synthesis::liveness::elide_dead_frame(&out).unwrap_or(out)
891        } else {
892            out
893        };
894        // #490 (epic #242): the optimized selector uses r4-r8 as scratch /
895        // promoted locals but emits no prologue, silently clobbering a caller's
896        // callee-saved registers. Add the missing `push {r4-r8,lr}` /
897        // `pop {r4-r8,pc}` HERE — on the post-realloc body, where realloc has
898        // lowered low-pressure r4-r8 scratch back to r0-r3, so a save is added
899        // only for registers genuinely clobbered. `shrink_callee_saved_saves`
900        // (next) then trims it to the used set. No-op on the direct path (it
901        // already has its own prologue) and on callee-saved-free leaves.
902        let out = synth_synthesis::liveness::ensure_callee_saved_prologue(&out);
903        synth_synthesis::liveness::shrink_callee_saved_saves(&out).unwrap_or(out)
904    } else {
905        // Range-realloc off (`SYNTH_RANGE_REALLOC=0`): the optimized path still
906        // must preserve the callee-saved registers it clobbers (#490). No shrink
907        // (it is coupled to the realloc lever), so the conservative full save
908        // stays — correct, just not minimised in this debug configuration.
909        synth_synthesis::liveness::ensure_callee_saved_prologue(&arm_instrs)
910    };
911
912    // VCR-RA-001 SHADOW ALLOCATION (#209/#242): run the register allocator on
913    // the selected stream and LOG what it finds — without changing a single
914    // emitted byte. This is the measure-only bridge between the built analysis
915    // layer and the eventual virtual-register wiring: it shows, per real
916    // function, whether the allocator can colour it within the R0–R8 pool and
917    // how much const-CSE / rematerialization headroom exists (#209). Enable with
918    // `SYNTH_SHADOW_ALLOC=1`; off by default and side-effect-free either way.
919    if std::env::var("SYNTH_SHADOW_ALLOC").is_ok() {
920        use synth_synthesis::liveness::{
921            AllocationOutcome, allocate_function, function_peak_pressure,
922        };
923        // R9 globals / R10 mem-size / R11 mem-base / R12 IP-scratch are reserved;
924        // pin them above the 0..9 allocatable pool so the colourer keeps R0–R8.
925        let precolored = std::collections::BTreeMap::from([
926            (synth_synthesis::rules::Reg::R9, 9usize),
927            (synth_synthesis::rules::Reg::R10, 10),
928            (synth_synthesis::rules::Reg::R11, 11),
929            (synth_synthesis::rules::Reg::R12, 12),
930        ]);
931        // True VALUE pressure (one node per value, not per reused physical reg):
932        // a NeedsSpill with peak ≤ 9 is a SPURIOUS physical-register spill — the
933        // function fits once virtually allocated.
934        let peak = function_peak_pressure(&arm_instrs);
935        match allocate_function(&arm_instrs, 9, &precolored) {
936            AllocationOutcome::Allocated {
937                remat_opportunities,
938                coloring,
939            } => eprintln!(
940                "[shadow-alloc] OK: {} pregs coloured within R0-R8 pool, peak value-pressure {}, {} const-CSE/remat opportunities",
941                coloring.len(),
942                peak,
943                remat_opportunities
944            ),
945            AllocationOutcome::NeedsSpill(s) => eprintln!(
946                "[shadow-alloc] physical-graph would spill {:?}, but peak value-pressure is {} (≤9 ⇒ spurious; fits once virtually allocated)",
947                s, peak
948            ),
949            AllocationOutcome::Declined => {
950                eprintln!(
951                    "[shadow-alloc] declined (unmodeled construct — calls/i64/fp/offset-branch)"
952                )
953            }
954        }
955    }
956
957    // VCR-SEL-004 cmp→select → IT-block predication fusion (#242). The selector
958    // lowers a `select` whose condition is a comparison to a *materialize then
959    // re-test* sequence (`cmp a,b; SetCond D,c; cmp D,#0; movne dst,v1; moveq
960    // dst,v2`); this collapses it onto the comparison's own flags — deleting the
961    // `SetCond` and the `cmp D,#0` and retargeting the predicated moves to `c` /
962    // `invert(c)` — yielding the textbook predicated clamp (`cmp a,b; movc dst,v1;
963    // mov{!c} dst,v2`). −2 instructions per fused select. gale #428 measured this
964    // as the #1 hot-path size/cycle lever on the gust_mix clamp chain.
965    //
966    // Run LATE: after range re-allocation (so the dead-D proof sees final register
967    // identities) and before encode. Removal-only + rename-only ⇒ no spill
968    // regression and labels/branch offsets are unaffected. Each fusion is proven
969    // sound (flags reused only when nothing clobbers them in the window; the
970    // boolean deleted only when provably dead) — see `fuse_cmp_select`.
971    //
972    // DEFAULT-ON as of v0.13.0 (#428): cmp→select fusion ships by default. The
973    // byte-changing flip is validated by (a) the unicorn execution oracle that runs
974    // the two-move `mov{invert(c)}` arm (cmp_select_two_move_differential.py), (b)
975    // gale's gale_decider_diff 10,596-case sweep across all 8 verified primitives
976    // (native ≡ flag-off ≡ flag-on = 0x88e73178d232bcf5), and (c) the named-anchor
977    // differentials re-run with fusion ON — control_step still 0x00210A55, flat+
978    // inlined flight_algo still 0x07FDF307 (results preserved; bytes deliberately
979    // changed, re-frozen on this commit). Escape hatch: `SYNTH_NO_CMP_SELECT_FUSE=1`
980    // reverts to the pre-fusion lowering. The on-silicon G474RE DWT no-regression
981    // check is a tracked post-ship follow-up (gale owns it).
982    let arm_instrs = if std::env::var("SYNTH_NO_CMP_SELECT_FUSE").is_err() {
983        // The rewritten stream is identical to `fuse_cmp_select`'s 2-tuple form;
984        // the extra `two_move` count is diagnostic only (the fusion census /
985        // blast-radius datum — #7 made that arm reachable).
986        let (out, fused, two_move) =
987            synth_synthesis::liveness::fuse_cmp_select_with_stats(&arm_instrs);
988        if std::env::var("SYNTH_FUSE_STATS").is_ok() {
989            let in_place = fused - two_move;
990            eprintln!(
991                "[cmp-select-fuse] {fused} select(s) fused to predicated moves \
992                 ({two_move} two-move, {in_place} in-place)"
993            );
994        }
995        out
996    } else {
997        arm_instrs
998    };
999
1000    // Perf lever 1 toward native parity (#390): redundant stack-reload elimination.
1001    // synth lowers every wasm local to a frame slot, so `local.set; local.get` emits
1002    // `str rX,[sp,#N]; … ; ldr rY,[sp,#N]`; when rX still holds the value the reload
1003    // (a ~2-cycle M4 load) becomes `mov rY,rX`. Removal-of-a-load + rename only ⇒ no
1004    // new instruction form and no label/offset change. DEFAULT-ON (#242 feature
1005    // loop): validated bit-identical RESULTS on every frozen anchor (control_step
1006    // 0x00210A55 13/13, flat+inlined flight_algo 0x07FDF307) with .text reduced on
1007    // the shipped --relocatable path, plus 8 unit tests + the frame_slot_dce
1008    // execution differential — the same gated path cmp→select took to default-on in
1009    // v0.13.0 (G474RE silicon confirms perf post-ship). Escape hatch:
1010    // `SYNTH_NO_STACK_FWD=1` restores the frame-resident bytes (frozen-old goldens).
1011    let stack_fwd = std::env::var("SYNTH_NO_STACK_FWD").is_err();
1012    let arm_instrs = if stack_fwd {
1013        let (out, fwd) = synth_synthesis::liveness::forward_stack_reloads(&arm_instrs);
1014        if std::env::var("SYNTH_FUSE_STATS").is_ok() {
1015            eprintln!("[stack-fwd] {fwd} stack reload(s) forwarded to register moves");
1016        }
1017        out
1018    } else {
1019        arm_instrs
1020    };
1021
1022    // VCR-RA frame-slot DCE (#242): once `forward_stack_reloads` has turned the
1023    // reloads of a spill slot into register moves, the `str rX,[sp,#N]` that fed
1024    // them is a dead store — its slot is never loaded again. Remove it. Pairs
1025    // with (and only pays after) stack-reload forwarding, so it shares the flag.
1026    let arm_instrs = if stack_fwd {
1027        let (out, n) = synth_synthesis::liveness::eliminate_dead_frame_stores(&arm_instrs);
1028        if std::env::var("SYNTH_FUSE_STATS").is_ok() {
1029            eprintln!("[frame-slot-dce] {n} dead frame store(s) removed");
1030        }
1031        out
1032    } else {
1033        arm_instrs
1034    };
1035
1036    // VCR-RA-001 spill re-choice (#242), two stages behind one flag.
1037    // Stage 1 (the #569 spike): slot-value forwarding BETWEEN reloads.
1038    // `forward_stack_reloads` (above) forwards only from a spill store's
1039    // SOURCE register, so when register pressure clobbers that source its
1040    // reloads survive; this stage tracks which registers provably still hold
1041    // a frame slot's value (through earlier reloads and reg-reg moves) and
1042    // turns reload #2..#n into a 1-cycle `mov` (or deletes it when the target
1043    // already holds the value). Stage 2 (the Belady re-choice): where NO
1044    // register still holds the value — the genuine-spill case, flat_flight's
1045    // peak-11 hot segment — the value was usually evicted while a dead
1046    // register existed; the clobbering def(s) are renamed onto a provably-dead
1047    // register (`spill_rechoice_segment`) so the value stays resident and the
1048    // reload dissolves outright. A dissolved reload can leave the feeding
1049    // store dead, so the frame-slot DCE sweep runs once more behind the same
1050    // flag. Per-segment commit gates: executable same-value-flow trace
1051    // equality, strict shrink, pool-pressure fit, sub-word/unknown-slot
1052    // conservatism (see `apply_spill_realloc` / `spill_rechoice_segment`).
1053    // Stage 3 (whole-function slot liveness): the segment-local DCE keeps a
1054    // store whose slot reaches function end ("reach-end ≠ dead" — it cannot
1055    // see other segments); `eliminate_unread_frame_stores` walks the whole
1056    // function (labels/branches/loops, SP-displacement tracked) and drops a
1057    // store whose slot NO reachable instruction can read — flat_flight's two
1058    // surviving stores (#576), completing Belady's 0-load side with a 0-store
1059    // side. Same flag: the three stages are one lever, flipped together.
1060    // DEFAULT-ON (#242 feature loop, the v0.14.0 local-promotion pattern):
1061    // Belady spilling ships by default. Evidence basis for the flip: three
1062    // landed flag-off increments (#569 forwarding, #576 Belady re-choice,
1063    // #579 whole-fn slot liveness), 40+ functions shrink / 0 grow across the
1064    // 68-fixture × 2-path sweep, per-segment executable value-trace equality
1065    // guards, and the unicorn-vs-wasmtime execution differentials re-run
1066    // green on the new default bytes (flat+inlined flight_algo 0x07FDF307,
1067    // const_cse, frame_slot_dce, spill_rung_581, r12_spill_496 — which covers
1068    // control_step_decide vs wasmtime; control_step's .text is byte-identical
1069    // under the flip) BEFORE the frozen goldens were re-pinned. Escape hatch:
1070    // `SYNTH_SPILL_REALLOC=0` is the OPT-OUT — it disables all three stages
1071    // and restores the pre-flip bytes (CI-gated by
1072    // `frozen_fixtures_spill_realloc_escape_hatch_restores_old_bytes`). Any
1073    // other value (or unset) runs the pass.
1074    // VCR-VER-001 post-exhaustion extensions (#242, the PR #659 verdict): with
1075    // `SYNTH_SPILL_ON_EXHAUST` active the #580 allocation-time Belady spill
1076    // keeps exhausted functions on the optimized path, and its slots present
1077    // shapes the shipping pass structurally cannot fire on (fresh-monotonic
1078    // slots defeat the overwrite-only DCE; the eviction store's source is
1079    // redefined immediately, defeating store→reload forwarding; R2/R3 are
1080    // never touched again, so the rename-target deadness proof declines them).
1081    // `post_exhaust` (bridge-scoped, see above) enables const
1082    // rematerialization of spilled constants, R2/R3 exit-dead rename targets,
1083    // and per-pair pressure commit — see `apply_spill_realloc_post_exhaust`.
1084    // Flag off (the default): `false` selects the shipping behavior bit for
1085    // bit.
1086    let arm_instrs = if !std::env::var("SYNTH_SPILL_REALLOC").is_ok_and(|v| v == "0") {
1087        let (out, n) =
1088            synth_synthesis::liveness::apply_spill_realloc_post_exhaust(&arm_instrs, post_exhaust);
1089        let (out, d) = synth_synthesis::liveness::eliminate_dead_frame_stores(&out);
1090        let (mut out, u) = synth_synthesis::liveness::eliminate_unread_frame_stores(&out);
1091        let (mut tn, mut td, mut tu) = (n, d, u);
1092        // Post-exhaustion only: iterate the triple to a bounded fixpoint. Each
1093        // dissolved spill pair frees registers and removes stores, exposing
1094        // rename windows and holder chains the previous iteration could not
1095        // prove — the allocation-time Belady slots (#580) routinely need two
1096        // or three rounds where the shipping single round suffices for the
1097        // default path's slots. Every iteration is individually gate-proven
1098        // (value-trace equality, pool pressure, strict shrink), so iterating
1099        // composes soundly; the bound keeps compile time deterministic.
1100        if post_exhaust {
1101            let mut progress = n + d + u > 0;
1102            for _ in 0..3 {
1103                if !progress {
1104                    break;
1105                }
1106                let (o, n) =
1107                    synth_synthesis::liveness::apply_spill_realloc_post_exhaust(&out, true);
1108                let (o, d) = synth_synthesis::liveness::eliminate_dead_frame_stores(&o);
1109                let (o, u) = synth_synthesis::liveness::eliminate_unread_frame_stores(&o);
1110                progress = n + d + u > 0;
1111                (tn, td, tu) = (tn + n, td + d, tu + u);
1112                out = o;
1113            }
1114            // The cleanup can leave the spill frame with zero surviving
1115            // accesses (every reload rematerialized/dissolved, every store
1116            // swept) — the balanced `sub sp,#K`/`add sp,#K` is then pure
1117            // overhead. `elide_dead_frame` proves that and removes the pair;
1118            // its early run (post-realloc) could not, because the spill
1119            // traffic was still in the stream at that point.
1120            out = synth_synthesis::liveness::elide_dead_frame(&out).unwrap_or(out);
1121        }
1122        if std::env::var("SYNTH_FUSE_STATS").is_ok() {
1123            eprintln!(
1124                "[spill-realloc] {tn} reload(s) forwarded/eliminated, {td} newly-dead frame store(s) removed, {tu} unread-slot store(s) removed"
1125            );
1126        }
1127        out
1128    } else {
1129        arm_instrs
1130    };
1131
1132    // VCR-RA immediate-shift folding (#390, #242): a constant shift amount the
1133    // stack selector materialized into a scratch register (`movw rM,#C; lsl rD,rN,rM`)
1134    // folds to the immediate form (`lsl rD,rN,#C`), removing the dead `movw` — −1
1135    // instruction, −1 live register. Removal-only (offset-neutral before branch
1136    // resolution, like the dead-store pass). DEFAULT-ON as of v0.15.0: validated
1137    // bit-identical results + a net cycle win on the dissolved hot path (−2
1138    // cyc/call, .text 100→90 B on gust_mix). Escape hatch: `SYNTH_NO_IMM_SHIFT_FOLD=1`.
1139    let arm_instrs = if std::env::var("SYNTH_NO_IMM_SHIFT_FOLD").is_err() {
1140        let (out, folds) = synth_synthesis::liveness::fold_immediate_shifts(&arm_instrs);
1141        if std::env::var("SYNTH_FUSE_STATS").is_ok() {
1142            eprintln!(
1143                "[imm-shift-fold] {folds} register shift(s) folded to immediate, movw dropped"
1144            );
1145        }
1146        out
1147    } else {
1148        arm_instrs
1149    };
1150
1151    // #686: elide the #682 mod-32 shift-amount mask (`and r12,rK,#31` before
1152    // every register-controlled i32 shl/shr) when the amount is STATICALLY
1153    // provable < 32 — a const amount folds to the immediate-shift form
1154    // (reduced mod 32, so >= 32 shrinks too), and an already-masked amount
1155    // (`rK = rX & c`, c < 32) drops the redundant re-mask. gale measured the
1156    // unconditional mask at ~12% cyc/call (+14 B) on gust_mix, whose Q8
1157    // fixed-point shifts are all constants (#686). The mask stays wherever
1158    // the bound is unproven — elision is an optimization, the mask is the
1159    // sound default (`liveness::elide_shift_masks` has the proof
1160    // obligations). Runs after `fold_immediate_shifts` (whose movw→shift
1161    // window the #682 mask intercepts, so it declines every masked const
1162    // shift) and before branch resolution (removal/rewrite-only ⇒
1163    // offset-neutral).
1164    //
1165    // FLAG-OFF (opt-in via `SYNTH_SHIFT_MASK_ELIDE=1`) because the elision
1166    // moves the frozen anchors: const-amount shifts in control_step (−20 B),
1167    // flight_seam (−164 B) and flight_seam_flat (−168 B) fold back to the
1168    // immediate form — byte-shapes the corpus had BEFORE the #682 mask, now
1169    // with the mask soundly kept for every unproven amount. Flipping
1170    // default-on is a deliberate byte-changing refreeze (all differentials
1171    // re-run on the new bytes, goldens re-pinned) owned by the maintainer.
1172    let arm_instrs = if std::env::var("SYNTH_SHIFT_MASK_ELIDE").is_ok_and(|v| v != "0") {
1173        let (out, elisions) = synth_synthesis::liveness::elide_shift_masks(&arm_instrs);
1174        if std::env::var("SYNTH_FUSE_STATS").is_ok() {
1175            eprintln!(
1176                "[shift-mask-elide] {elisions} provably-<32 shift-amount mask(s) elided (#686)"
1177            );
1178        }
1179        out
1180    } else {
1181        arm_instrs
1182    };
1183
1184    // VCR-RA uxth/uxtb fold (#428, #242): `movw rM,#0xffff; and rD,rN,rM` →
1185    // `uxth rD,rN` (and the 0xff/uxtb form), removing the dead `movw` — −1
1186    // instruction, −1 live register per 16/8-bit mask. 0xffff/0xff are not Thumb-2
1187    // modified immediates so the selector materializes them into a register; the
1188    // dedicated zero-extend expresses the same masking inline. Removal-only +
1189    // rewrite-in-place (offset-neutral). DEFAULT-ON (#242 flag audit flip-wave,
1190    // #592 audit item): evidence basis was the 2-path × repro-corpus sweep —
1191    // 0 functions grow, 13 shrink (control_step 300→294 −6, gust_mix 38→32 −6,
1192    // uxth_fold pack 36→24 −12), locked by the `uxth_fold_no_grow_corpus_242`
1193    // cargo gate; execution differentials re-run green on the new default
1194    // bytes BEFORE the frozen ARM anchors were re-pinned (uxth_fold,
1195    // control_step — see the flip PR). Escape hatch: `SYNTH_UXTH_FOLD=0` opts
1196    // out and restores the pre-flip bytes (CI-gated in
1197    // `frozen_codegen_bytes.rs`).
1198    let arm_instrs = if !std::env::var("SYNTH_UXTH_FOLD").is_ok_and(|v| v == "0") {
1199        let (out, folds) = synth_synthesis::liveness::fold_uxth(&arm_instrs);
1200        if std::env::var("SYNTH_FUSE_STATS").is_ok() {
1201            eprintln!("[uxth-fold] {folds} mask-and folded to uxth/uxtb, movw dropped");
1202        }
1203        out
1204    } else {
1205        arm_instrs
1206    };
1207
1208    // VCR-RA-001 const-CSE / rematerialization-avoidance (#209, #242). Drops a
1209    // `movw`/`mov #imm` that re-materializes a constant already resident in
1210    // another register and retargets the reads — every rewrite proven by the
1211    // liveness analysis. Runs LAST, after every immediate-fold (shift, uxth) and
1212    // range-realloc, but BEFORE branch resolution/encoding (it removes
1213    // instructions, shifting byte offsets). CSE-last is the #242 no-regression
1214    // fix: the folds have already absorbed every foldable constant, so CSE can no
1215    // longer defeat one (the gust_mix 90→92 mechanism). The pass additionally
1216    // size-guards each segment via the byte-estimator — it commits a segment's
1217    // rewrites only if they do not grow its estimated size — so a retarget that
1218    // would flip a 16-bit encoding to 32-bit (higher base register) is declined.
1219    // DEFAULT-ON (#242 flip-wave, the SYNTH_SPILL_REALLOC/SYNTH_BASE_CSE
1220    // template): const-CSE ships by default. The flip prerequisites recorded in
1221    // `const_cse_reduction_242.rs` were retired first — the bridge-level INLINE
1222    // aliasing (the alias-eviction spill-bijection hazard) was DELETED from
1223    // `optimizer_bridge::ir_to_arm`, so this post-hoc, liveness-proven pass is
1224    // the flag's ONLY effect. Evidence basis: 152 fixture×path corpus sweep — 0
1225    // functions grow (size-guarded per segment), 40 shrink (const_cse::spill12
1226    // 236→148 B), total −536 B — and the execution differentials re-run green
1227    // on the new default bytes BEFORE the frozen goldens were re-pinned
1228    // (const_cse, frame_slot_dce, flight_seam 0x07FDF307, spill_rung_581,
1229    // volatile_segment_543, control_step 0x00210A55). Escape hatch:
1230    // `SYNTH_CONST_CSE=0` is the OPT-OUT — it restores the pre-flip bytes
1231    // (CI-gated by `const_cse_escape_hatch_restores_old_bytes_242` and the
1232    // frozen-anchor escape-hatch gate). Any other value (or unset) runs the pass.
1233    //
1234    // #543 Phase 2: const-CSE declines WHOLESALE while any volatile DMA range
1235    // (`--volatile-segment`) is marked. At the ArmOp level a cached constant
1236    // cannot be classified as address-vs-data (a retargeted read may be a
1237    // memory-access base carrying a per-use immediate offset), so the
1238    // conservative stance for statically-unknown addressing is to decline every
1239    // aliasing rewrite — each constant is re-materialized at each occurrence,
1240    // the documented volatile contract (`CompileConfig::volatile_segments`).
1241    let arm_instrs = if !std::env::var("SYNTH_CONST_CSE").is_ok_and(|v| v == "0")
1242        && config.volatile_segments.is_empty()
1243    {
1244        let (out, removed) = synth_synthesis::liveness::apply_const_cse(&arm_instrs);
1245        if std::env::var("SYNTH_FUSE_STATS").is_ok() {
1246            eprintln!("[const-cse] {removed} redundant constant materialization(s) removed");
1247        }
1248        out
1249    } else {
1250        arm_instrs
1251    };
1252
1253    // VCR-RA-001 spill-choice REPORT (#242): measure-only, like SYNTH_SHADOW_ALLOC.
1254    // Per straight-line segment, the frame-slot traffic actually emitted vs the
1255    // reload/store count a farthest-next-use (Belady) allocation over the R0-R8
1256    // pool would need — the measured headroom for the full spill-choice rewrite.
1257    // Printed on the FINAL stream (post all rewrite passes), so a flag-off run
1258    // reports the greedy baseline and a flag-on run reports what remains.
1259    if std::env::var("SYNTH_SPILL_REPORT").is_ok() {
1260        for seg in synth_synthesis::liveness::spill_choice_report(&arm_instrs, 9) {
1261            if seg.actual_reloads + seg.actual_spill_stores > 0 || seg.peak_pressure > 9 {
1262                eprintln!(
1263                    "[spill-report] seg@{} len={} peak={} actual={}ld+{}st belady(k=9)={}ld+{}st",
1264                    seg.start,
1265                    seg.len,
1266                    seg.peak_pressure,
1267                    seg.actual_reloads,
1268                    seg.actual_spill_stores,
1269                    seg.belady_reloads,
1270                    seg.belady_spill_stores
1271                );
1272            }
1273        }
1274    }
1275
1276    // ISA feature gate: validate that all generated instructions are supported
1277    // by the target. This catches FPU instructions on no-FPU targets, double-precision
1278    // instructions on single-precision targets, etc.
1279    validate_instructions(&arm_instrs, config.target.fpu, &config.target.triple)
1280        .map_err(|e| format!("ISA validation failed: {}", e))?;
1281
1282    // Encode to binary — use Thumb-2 for Cortex-M targets
1283    let use_thumb2 = matches!(config.target.isa, IsaVariant::Thumb2 | IsaVariant::Thumb);
1284
1285    let encoder = if use_thumb2 {
1286        ArmEncoder::new_thumb2_with_fpu(config.target.fpu)
1287    } else {
1288        ArmEncoder::new_arm32()
1289    };
1290
1291    // #202: resolve local label branches (Bcc/B/Bhs/Blo) to byte-accurate
1292    // offsets before encoding. `select_with_stack` emits them as label
1293    // placeholders and never resolves them — without this they encode as
1294    // `bne.n #0` and land mid-instruction whenever a 32-bit Thumb-2 instruction
1295    // sits between the branch and its target (UsageFault on real hardware).
1296    // Only meaningful for Thumb-2 (the offset units are halfword/PC+4).
1297    let arm_instrs = if use_thumb2 {
1298        resolve_label_branches(arm_instrs, &encoder)?
1299    } else {
1300        arm_instrs
1301    };
1302
1303    let mut code = Vec::new();
1304    let mut relocations = Vec::new();
1305
1306    // #345: literal-pool address loads. Each `LdrSym` was encoded as a placeholder
1307    // `LDR.W rd,[pc,#0]`; record where its instruction sits and what it loads so
1308    // we can append a pooled word (carrying the symbol address via R_ARM_ABS32)
1309    // and patch the PC-relative offset once the pool position is known.
1310    struct PendingLiteral {
1311        ldr_offset: u32,
1312        symbol: String,
1313        addend: i32,
1314    }
1315    let mut pending_literals: Vec<PendingLiteral> = Vec::new();
1316
1317    // VCR-DBG-001: per-instruction source map for DWARF `.debug_line`. Captured
1318    // here because `code.len()` immediately before `encode()` is the final
1319    // machine offset of the instruction within this function's `.text` — nothing
1320    // after the loop shifts earlier instructions (the literal pool is appended at
1321    // the end; the LDR patch below is in-place/length-preserving). Purely
1322    // additive: it does not touch `code`, so `.text` is byte-identical.
1323    let mut line_map: LineMap = Vec::new();
1324    // VCR-DEC-003 (#396): object-branch class per emitted instruction, parallel
1325    // to `line_map`. Cheap, additive, does not touch `code`.
1326    let mut branch_map: synth_core::backend::BranchMap = Vec::new();
1327
1328    for instr in &arm_instrs {
1329        // Record a relocation for every BL: the encoder emits `bl #0` and
1330        // relies on a relocation to patch the target. This covers BOTH import
1331        // dispatch stubs (`__meld_*`, undefined externals) AND internal calls
1332        // (`func_N`, defined in this object). Previously only `__meld_*` was
1333        // recorded, so internal `BL func_N` calls were left as unpatched
1334        // `bl #0` placeholders branching to a garbage address (#167).
1335        if let ArmOp::Bl { label } = &instr.op {
1336            relocations.push(CodeRelocation {
1337                offset: code.len() as u32,
1338                symbol: label.clone(),
1339                kind: synth_core::backend::RelocKind::ThmCall,
1340            });
1341        }
1342        // #237: symbol-relative MOVW/MOVT (the `--native-pointer-abi` static-data
1343        // addressing). The encoder writes the addend in place; record the matching
1344        // R_ARM_MOVW_ABS_NC / R_ARM_MOVT_ABS so the linker adds the symbol address.
1345        if let ArmOp::MovwSym { symbol, .. } = &instr.op {
1346            relocations.push(CodeRelocation {
1347                offset: code.len() as u32,
1348                symbol: symbol.clone(),
1349                kind: synth_core::backend::RelocKind::MovwAbs,
1350            });
1351        }
1352        if let ArmOp::MovtSym { symbol, .. } = &instr.op {
1353            relocations.push(CodeRelocation {
1354                offset: code.len() as u32,
1355                symbol: symbol.clone(),
1356                kind: synth_core::backend::RelocKind::MovtAbs,
1357            });
1358        }
1359        // #345: defer the literal-pool word + reloc + offset patch to the
1360        // post-loop pass (the pool address is not yet known).
1361        if let ArmOp::LdrSym { symbol, addend, .. } = &instr.op {
1362            pending_literals.push(PendingLiteral {
1363                ldr_offset: code.len() as u32,
1364                symbol: symbol.clone(),
1365                addend: *addend,
1366            });
1367        }
1368
1369        // The machine offset of this instruction is the current code length,
1370        // captured before the bytes are appended.
1371        line_map.push((code.len() as u32, instr.source_line));
1372        branch_map.push((code.len() as u32, classify_arm_branch(&instr.op)));
1373
1374        let encoded = encoder
1375            .encode(&instr.op)
1376            .map_err(|e| format!("ARM encoding failed: {}", e))?;
1377        code.extend_from_slice(&encoded);
1378    }
1379
1380    // #345: place the literal pool at the end of this function's `.text`. Gated on
1381    // there being at least one `LdrSym` — functions without one are byte-identical
1382    // to before (no trailing padding, so downstream `func_offsets` are unchanged
1383    // and the frozen differential fixtures stay bit-for-bit equal).
1384    if !pending_literals.is_empty() {
1385        if !use_thumb2 {
1386            return Err("LdrSym literal-pool addressing requires Thumb-2".to_string());
1387        }
1388        // 4-byte align the pool start (Thumb-2 word loads require it, and
1389        // `Align(PC,4)` in the LDR-literal semantics assumes a word-aligned pool).
1390        while code.len() % 4 != 0 {
1391            code.push(0x00);
1392        }
1393        // One distinct pooled word per LdrSym (no dedup: different sites carry
1394        // different addends, and the REL addend lives in the word).
1395        for lit in &pending_literals {
1396            let word_offset = code.len() as u32;
1397
1398            // REL semantics: the linker computes `S + A`, where A is the in-place
1399            // value of the relocated word. Initialize the word to the addend so
1400            // the final loaded address is `symbol + addend`.
1401            code.extend_from_slice(&(lit.addend as u32).to_le_bytes());
1402            relocations.push(CodeRelocation {
1403                offset: word_offset,
1404                symbol: lit.symbol.clone(),
1405                kind: synth_core::backend::RelocKind::Abs32,
1406            });
1407
1408            // Patch the placeholder `LDR.W rd,[pc,#imm12]`. Thumb-2 LDR (literal):
1409            // address = Align(PC,4) + imm12, with PC = ldr_offset + 4. The pool is
1410            // always after the LDR, so U=1 (already set in hw1 = 0xF8DF).
1411            let pc = lit.ldr_offset + 4;
1412            let aligned_pc = pc & !3u32;
1413            let imm12 = word_offset - aligned_pc;
1414            if imm12 > 0xFFF {
1415                // Wide LDR-literal range is ±4 KB; these function bodies are far
1416                // smaller, but fail cleanly rather than miscompile if exceeded.
1417                return Err(format!(
1418                    "LdrSym literal pool out of range (#345): imm12={} > 4095 \
1419                     for symbol {}",
1420                    imm12, lit.symbol
1421                ));
1422            }
1423            let hw2_off = (lit.ldr_offset + 2) as usize;
1424            let mut hw2 = u16::from_le_bytes([code[hw2_off], code[hw2_off + 1]]);
1425            hw2 = (hw2 & 0xF000) | (imm12 as u16); // keep Rt, set imm12
1426            let hw2_bytes = hw2.to_le_bytes();
1427            code[hw2_off] = hw2_bytes[0];
1428            code[hw2_off + 1] = hw2_bytes[1];
1429        }
1430    }
1431
1432    Ok((code, relocations, line_map, branch_map))
1433}
1434
1435/// VCR-DEC-003 (#396): classify one emitted `ArmOp` into its object-level
1436/// control-flow role for the `synth-provenance-v1` map. Conditional branches are
1437/// the object decision points MC/DC must reconcile; `SelectMove` is the folded
1438/// (IT-block) predicated form the cmp→select fuse produces — a decision with no
1439/// branch.
1440fn classify_arm_branch(op: &ArmOp) -> synth_core::backend::BranchClass {
1441    use synth_core::backend::BranchClass;
1442    match op {
1443        ArmOp::Bcc { .. } | ArmOp::Bhs { .. } | ArmOp::Blo { .. } | ArmOp::BCondOffset { .. } => {
1444            BranchClass::CondBranch
1445        }
1446        ArmOp::B { .. } | ArmOp::BOffset { .. } => BranchClass::UncondBranch,
1447        ArmOp::SelectMove { .. } => BranchClass::Predicated,
1448        _ => BranchClass::Other,
1449    }
1450}
1451
1452/// Resolve local label branches to byte-accurate offsets (#202).
1453///
1454/// `select_with_stack` emits conditional/unconditional branches as label
1455/// placeholders (`Bcc`/`B`/`Bhs`/`Blo` + `Label`) and never resolves them; the
1456/// encoder then emits a `0xD000`/`0xE000` placeholder with offset 0. Before #197
1457/// this path only ran for `--no-optimize`/declined functions, so the latent bug
1458/// stayed hidden — routing relocatable code through it surfaced branches that
1459/// land mid-instruction (a Cortex-M UsageFault) whenever a 32-bit Thumb-2
1460/// instruction sits between the branch and its target.
1461///
1462/// This pass encodes each instruction to learn its real byte length (so 16- vs
1463/// 32-bit forms and multi-instruction expansions are exact), maps each `Label`
1464/// to its byte position, and rewrites every label branch to the displacement
1465/// the encoder consumes: `(target - branch - 4) / 2` halfwords. A bounded
1466/// fixed-point handles an offset growing a branch from 16- to 32-bit (which
1467/// shifts later positions). `BCondOffset`/`BOffset` already produced inline by
1468/// the optimized path carry no label and are left untouched.
1469fn resolve_label_branches(
1470    arm_instrs: Vec<ArmInstruction>,
1471    encoder: &ArmEncoder,
1472) -> Result<Vec<ArmInstruction>, String> {
1473    use std::collections::HashMap;
1474    use synth_synthesis::Condition;
1475
1476    enum BKind {
1477        Cond(Condition),
1478        Uncond,
1479    }
1480    // Record each label branch ONCE — indices are stable across iterations.
1481    let mut branches: Vec<(usize, BKind, String)> = Vec::new();
1482    for (i, instr) in arm_instrs.iter().enumerate() {
1483        match &instr.op {
1484            ArmOp::Bcc { cond, label } => branches.push((i, BKind::Cond(*cond), label.clone())),
1485            ArmOp::Bhs { label } => branches.push((i, BKind::Cond(Condition::HS), label.clone())),
1486            ArmOp::Blo { label } => branches.push((i, BKind::Cond(Condition::LO), label.clone())),
1487            ArmOp::B { label } => branches.push((i, BKind::Uncond, label.clone())),
1488            _ => {}
1489        }
1490    }
1491    if branches.is_empty() {
1492        return Ok(arm_instrs);
1493    }
1494
1495    let mut resolved = arm_instrs;
1496    // Sizes only grow (16→32-bit), so this converges quickly; cap for safety.
1497    for _ in 0..16 {
1498        // 1. Byte position of each instruction (Label encodes to 0 bytes).
1499        let mut positions = Vec::with_capacity(resolved.len());
1500        let mut pos: i64 = 0;
1501        for instr in &resolved {
1502            positions.push(pos);
1503            pos += encoder
1504                .encode(&instr.op)
1505                .map_err(|e| format!("branch-resolve size probe failed: {}", e))?
1506                .len() as i64;
1507        }
1508        // 2. Label name -> byte position (owned keys so the borrow ends here).
1509        let mut labels: HashMap<String, i64> = HashMap::new();
1510        for (i, instr) in resolved.iter().enumerate() {
1511            if let ArmOp::Label { name } = &instr.op {
1512                labels.insert(name.clone(), positions[i]);
1513            }
1514        }
1515        // 3. Rewrite each branch to its byte-accurate offset.
1516        let mut changed = false;
1517        for (idx, kind, label) in &branches {
1518            // A label not defined locally is an EXTERNAL target (e.g.
1519            // `Trap_Handler` resolved by a relocation / the vector table). Leave
1520            // such branches as their placeholder for the existing relocation
1521            // path — only local control-flow labels are byte-resolved here.
1522            let Some(&target) = labels.get(label) else {
1523                continue;
1524            };
1525            // Encoder consumes the field as (target - branch - 4) / 2 halfwords.
1526            // Positions are always even, so this division is exact.
1527            let halfword_offset = ((target - positions[*idx] - 4) / 2) as i32;
1528            let new_op = match kind {
1529                BKind::Cond(c) => ArmOp::BCondOffset {
1530                    cond: *c,
1531                    offset: halfword_offset,
1532                },
1533                BKind::Uncond => ArmOp::BOffset {
1534                    offset: halfword_offset,
1535                },
1536            };
1537            if resolved[*idx].op != new_op {
1538                resolved[*idx].op = new_op;
1539                changed = true;
1540            }
1541        }
1542        if !changed {
1543            break;
1544        }
1545    }
1546    Ok(resolved)
1547}
1548
1549#[cfg(test)]
1550mod tests {
1551    use super::*;
1552
1553    /// #539: `i32.const 0; memory.grow m` folds to `memory.size m`; other deltas
1554    /// (const non-zero, runtime) are left as `memory.grow` (→ the sound fixed-
1555    /// memory -1). Non-grow ops are untouched, so functions without the idiom are
1556    /// byte-identical.
1557    #[test]
1558    fn test_rewrite_memory_grow_zero_539() {
1559        // the idiom -> memory.size
1560        assert_eq!(
1561            rewrite_memory_grow_zero(&[WasmOp::I32Const(0), WasmOp::MemoryGrow(0)]),
1562            vec![WasmOp::MemorySize(0)]
1563        );
1564        // const non-zero delta: NOT folded
1565        assert_eq!(
1566            rewrite_memory_grow_zero(&[WasmOp::I32Const(2), WasmOp::MemoryGrow(0)]),
1567            vec![WasmOp::I32Const(2), WasmOp::MemoryGrow(0)]
1568        );
1569        // runtime delta (no preceding const): NOT folded
1570        assert_eq!(
1571            rewrite_memory_grow_zero(&[WasmOp::LocalGet(0), WasmOp::MemoryGrow(0)]),
1572            vec![WasmOp::LocalGet(0), WasmOp::MemoryGrow(0)]
1573        );
1574        // a bare const-0 not feeding a grow is untouched
1575        assert_eq!(
1576            rewrite_memory_grow_zero(&[WasmOp::I32Const(0), WasmOp::I32Add]),
1577            vec![WasmOp::I32Const(0), WasmOp::I32Add]
1578        );
1579        // fold is local: surrounding ops preserved, indices past the fold intact
1580        assert_eq!(
1581            rewrite_memory_grow_zero(&[
1582                WasmOp::LocalGet(0),
1583                WasmOp::I32Const(0),
1584                WasmOp::MemoryGrow(0),
1585                WasmOp::I32Add,
1586            ]),
1587            vec![WasmOp::LocalGet(0), WasmOp::MemorySize(0), WasmOp::I32Add]
1588        );
1589    }
1590
1591    #[test]
1592    fn test_arm_backend_name() {
1593        let backend = ArmBackend::new();
1594        assert_eq!(backend.name(), "arm");
1595        assert!(backend.is_available());
1596    }
1597
1598    #[test]
1599    fn test_arm_backend_capabilities() {
1600        let backend = ArmBackend::new();
1601        let caps = backend.capabilities();
1602        assert!(!caps.produces_elf);
1603        assert!(caps.supports_rule_verification);
1604        assert!(!caps.is_external);
1605    }
1606
1607    #[test]
1608    fn test_compile_add_function() {
1609        let backend = ArmBackend::new();
1610        let ops = vec![WasmOp::LocalGet(0), WasmOp::LocalGet(1), WasmOp::I32Add];
1611        let config = CompileConfig::default();
1612
1613        let result = backend.compile_function("add", &ops, &config);
1614        assert!(result.is_ok());
1615
1616        let func = result.unwrap();
1617        assert_eq!(func.name, "add");
1618        assert!(!func.code.is_empty());
1619        assert_eq!(func.wasm_ops, ops);
1620    }
1621
1622    /// VCR-DBG-001: the per-instruction source map must cover the function with
1623    /// monotonic, in-bounds machine offsets, and must not perturb the emitted
1624    /// code (it is captured at encode time, never serialized here).
1625    #[test]
1626    fn test_line_map_is_wellformed_dbg001() {
1627        let backend = ArmBackend::new();
1628        let ops = vec![
1629            WasmOp::LocalGet(0),
1630            WasmOp::LocalGet(1),
1631            WasmOp::I32Add,
1632            WasmOp::End,
1633        ];
1634        let config = CompileConfig::default();
1635        let func = backend.compile_function("add", &ops, &config).unwrap();
1636
1637        // Non-empty, and the first instruction starts at machine offset 0.
1638        assert!(
1639            !func.line_map.is_empty(),
1640            "a non-trivial function captures a source map"
1641        );
1642        assert_eq!(func.line_map[0].0, 0, "first instruction at offset 0");
1643
1644        // Offsets strictly increase by at least one ARM/Thumb instruction (>= 2
1645        // bytes) and every mapped offset lies inside the emitted `.text`.
1646        for w in func.line_map.windows(2) {
1647            assert!(w[1].0 > w[0].0, "instruction offsets strictly increase");
1648            assert!(
1649                w[1].0 - w[0].0 >= 2,
1650                "each ARM/Thumb instruction is >= 2 bytes"
1651            );
1652        }
1653        let last = func.line_map.last().unwrap().0 as usize;
1654        assert!(
1655            last < func.code.len(),
1656            "every mapped offset lies inside .text"
1657        );
1658
1659        // The side-table is additive: recompiling is deterministic and the map is
1660        // consistent with that exact code (capturing it does not alter output).
1661        let again = backend.compile_function("add", &ops, &config).unwrap();
1662        assert_eq!(
1663            again.code, func.code,
1664            "compilation deterministic; map is additive"
1665        );
1666        assert_eq!(again.line_map, func.line_map);
1667    }
1668
1669    #[test]
1670    fn test_count_params() {
1671        let ops = vec![WasmOp::LocalGet(0), WasmOp::LocalGet(1), WasmOp::I32Add];
1672        assert_eq!(count_params(&ops), 2);
1673
1674        let no_params = vec![WasmOp::I32Const(5), WasmOp::I32Const(3), WasmOp::I32Add];
1675        assert_eq!(count_params(&no_params), 0);
1676    }
1677
1678    /// #457: the declared param count caps the access-pattern inference. The
1679    /// repro shape `(param i32)(local i32) → p0 + local1` reads local 1 before
1680    /// any write, so `count_params` infers 2 — with the declared count (1) the
1681    /// local is reclassified onto the zero-inited frame path instead of being
1682    /// read from R1 (caller garbage).
1683    #[test]
1684    fn declared_param_count_caps_inference_457() {
1685        let ops = vec![
1686            WasmOp::LocalGet(0),
1687            WasmOp::LocalGet(1),
1688            WasmOp::I32Add,
1689            WasmOp::End,
1690        ];
1691        // The inference alone still says 2 (the misclassification this caps).
1692        assert_eq!(count_params(&ops), 2);
1693
1694        let backend = ArmBackend::new();
1695        let inferred = backend
1696            .compile_function("rbw", &ops, &CompileConfig::default())
1697            .unwrap();
1698        let declared = backend
1699            .compile_function(
1700                "rbw",
1701                &ops,
1702                &CompileConfig {
1703                    current_func_param_count: Some(1),
1704                    ..CompileConfig::default()
1705                },
1706            )
1707            .unwrap();
1708        // The cap is consumed: the declared-count compile reclassifies local 1
1709        // and must emit different code than the param-misclassified one.
1710        assert_ne!(
1711            inferred.code, declared.code,
1712            "declared param count must reach the selector"
1713        );
1714        // The zero-init is present: a 16-bit Thumb `movs rN, #0`
1715        // (0x2000 | rd<<8 → LE bytes [0x00, 0x20+rd]) somewhere in the body.
1716        let has_movs_zero = declared
1717            .code
1718            .chunks_exact(2)
1719            .any(|h| h[0] == 0x00 && (0x20..=0x27).contains(&h[1]));
1720        assert!(
1721            has_movs_zero,
1722            "declared-count compile must zero-init the read-before-write local; code: {:02x?}",
1723            declared.code
1724        );
1725        // A declared count that matches (or exceeds) the inference changes
1726        // nothing — byte-identity for every function without rbw locals.
1727        let matching = backend
1728            .compile_function(
1729                "rbw",
1730                &ops,
1731                &CompileConfig {
1732                    current_func_param_count: Some(2),
1733                    ..CompileConfig::default()
1734                },
1735            )
1736            .unwrap();
1737        assert_eq!(
1738            matching.code, inferred.code,
1739            "declared >= inferred must stay byte-identical"
1740        );
1741    }
1742
1743    #[test]
1744    fn test_arm_backend_register() {
1745        let mut registry = synth_core::BackendRegistry::new();
1746        registry.register(Box::new(ArmBackend::new()));
1747        assert!(registry.get("arm").is_some());
1748        assert_eq!(registry.available().len(), 1);
1749    }
1750
1751    #[test]
1752    fn test_compile_import_call_produces_relocations() {
1753        let backend = ArmBackend::new();
1754        // Simulate a WASM module where func index 0 is an import.
1755        // Call(0) should generate MOV R0, #0; BL __meld_dispatch_import
1756        let ops = vec![WasmOp::Call(0)];
1757        let config = CompileConfig {
1758            num_imports: 1,
1759            no_optimize: true, // Direct instruction selection to preserve Call semantics
1760            ..CompileConfig::default()
1761        };
1762
1763        let result = backend.compile_function("caller", &ops, &config);
1764        assert!(result.is_ok());
1765
1766        let func = result.unwrap();
1767        assert!(!func.code.is_empty());
1768        assert_eq!(func.relocations.len(), 1);
1769        assert_eq!(func.relocations[0].symbol, "__meld_dispatch_import");
1770        // The BL is the second instruction (after MOV R0, #0), so offset should be > 0
1771        assert!(func.relocations[0].offset > 0);
1772    }
1773
1774    /// Regression test for #197: in `relocatable` mode, an import call must
1775    /// relocate against the direct `func_N` symbol (rewritten to the wasm field
1776    /// name by `build_relocatable_elf`), NOT `__meld_dispatch_import`. This is
1777    /// the ABI half of the #197 fix — without it, a host linker cannot resolve
1778    /// the call to the real kernel symbol (e.g. `k_spin_lock`).
1779    #[test]
1780    fn test_compile_relocatable_import_uses_direct_func_symbol_197() {
1781        let backend = ArmBackend::new();
1782        let ops = vec![WasmOp::Call(0)]; // func 0 is an import
1783        let config = CompileConfig {
1784            num_imports: 1,
1785            relocatable: true,
1786            ..CompileConfig::default()
1787        };
1788
1789        let func = backend
1790            .compile_function("caller", &ops, &config)
1791            .expect("relocatable import call compiles");
1792
1793        assert_eq!(func.relocations.len(), 1);
1794        assert_eq!(
1795            func.relocations[0].symbol, "func_0",
1796            "#197: relocatable import must relocate against func_0 (→ field name), not Meld dispatch"
1797        );
1798    }
1799
1800    #[test]
1801    fn test_compile_no_imports_no_relocations() {
1802        let backend = ArmBackend::new();
1803        let ops = vec![WasmOp::LocalGet(0), WasmOp::LocalGet(1), WasmOp::I32Add];
1804        let config = CompileConfig::default();
1805
1806        let func = backend.compile_function("add", &ops, &config).unwrap();
1807        assert!(func.relocations.is_empty());
1808    }
1809
1810    /// Regression test for #167: a call to an INTERNAL function
1811    /// (index `>= num_imports`) must record a relocation against `func_{index}`.
1812    /// Before the fix, only `__meld_*` (import) BLs were relocated, so
1813    /// internal `BL func_N` was emitted as an unpatched `bl #0` branching
1814    /// to a garbage address — making the object non-linkable. This test
1815    /// would have caught that regression.
1816    #[test]
1817    fn test_compile_internal_call_produces_relocation_167() {
1818        let backend = ArmBackend::new();
1819        // num_imports = 1, so Call(2) is an INTERNAL call → `BL func_2`.
1820        let ops = vec![WasmOp::Call(2)];
1821        let config = CompileConfig {
1822            num_imports: 1,
1823            no_optimize: true,
1824            ..CompileConfig::default()
1825        };
1826
1827        let func = backend
1828            .compile_function("caller", &ops, &config)
1829            .expect("internal call compiles");
1830
1831        assert_eq!(
1832            func.relocations.len(),
1833            1,
1834            "an internal call must emit exactly one relocation (#167)"
1835        );
1836        assert_eq!(
1837            func.relocations[0].symbol, "func_2",
1838            "internal call must relocate against the callee's func_{{index}} symbol (#167)"
1839        );
1840    }
1841
1842    // ─── Phase 1 safety-bounds plumbing for ARM ──────────────────────────
1843
1844    #[test]
1845    fn arm_safety_bounds_mpu_emits_same_code_as_none() {
1846        // Mpu mode must not introduce any inline check on ARM — the MPU
1847        // handles faults via hardware. The encoded bytes for an i32.load
1848        // should be identical between None and Mpu.
1849        let backend = ArmBackend::new();
1850        let ops = vec![
1851            WasmOp::LocalGet(0),
1852            WasmOp::I32Load {
1853                offset: 0,
1854                align: 2,
1855            },
1856        ];
1857        let cfg_none = CompileConfig {
1858            no_optimize: true,
1859            ..Default::default()
1860        };
1861        let cfg_mpu = CompileConfig {
1862            no_optimize: true,
1863            safety_bounds: SafetyBounds::Mpu,
1864            ..Default::default()
1865        };
1866        let n = backend.compile_function("ld", &ops, &cfg_none).unwrap();
1867        let m = backend.compile_function("ld", &ops, &cfg_mpu).unwrap();
1868        assert_eq!(
1869            n.code, m.code,
1870            "Mpu and None should produce identical ARM bytes (Mpu relies on hardware)"
1871        );
1872    }
1873
1874    #[test]
1875    fn arm_legacy_bounds_check_still_emits_software_check() {
1876        // Legacy CLI users with `--bounds-check` should keep getting the
1877        // software path even though the new SafetyBounds field defaults to None.
1878        let backend = ArmBackend::new();
1879        let ops = vec![
1880            WasmOp::LocalGet(0),
1881            WasmOp::I32Load {
1882                offset: 0,
1883                align: 2,
1884            },
1885        ];
1886        let cfg_legacy = CompileConfig {
1887            no_optimize: true,
1888            bounds_check: true,
1889            ..Default::default()
1890        };
1891        let cfg_software = CompileConfig {
1892            no_optimize: true,
1893            safety_bounds: SafetyBounds::Software,
1894            ..Default::default()
1895        };
1896        let l = backend.compile_function("ld", &ops, &cfg_legacy).unwrap();
1897        let s = backend.compile_function("ld", &ops, &cfg_software).unwrap();
1898        assert_eq!(
1899            l.code, s.code,
1900            "--bounds-check should produce the same bytes as --safety-bounds=software"
1901        );
1902    }
1903
1904    /// #377: `--safety-bounds software` must be enforced on the OPTIMIZED path
1905    /// too. Pre-fix, `software` was byte-identical to `none` there (a silent
1906    /// no-op while the safety manifest claimed enforcement). The compiled
1907    /// bytes must now (a) differ from `none` and (b) contain the inline
1908    /// `CMP ip, sl` + `UDF` guard.
1909    #[test]
1910    fn arm_safety_bounds_software_enforced_on_optimized_path_377() {
1911        let backend = ArmBackend::new();
1912        // Dynamic-address store+load: the optimized path accepts this shape
1913        // (no calls, no i64 params, ≤4 params).
1914        let ops = vec![
1915            WasmOp::LocalGet(0),
1916            WasmOp::LocalGet(1),
1917            WasmOp::I32Store {
1918                offset: 4,
1919                align: 2,
1920            },
1921            WasmOp::LocalGet(0),
1922            WasmOp::I32Load {
1923                offset: 0,
1924                align: 2,
1925            },
1926        ];
1927        // no_optimize NOT set — this exercises the optimized path.
1928        let cfg_none = CompileConfig::default();
1929        let cfg_sw = CompileConfig {
1930            safety_bounds: SafetyBounds::Software,
1931            ..Default::default()
1932        };
1933        let n = backend.compile_function("st", &ops, &cfg_none).unwrap();
1934        let s = backend.compile_function("st", &ops, &cfg_sw).unwrap();
1935        assert_ne!(
1936            n.code, s.code,
1937            "#377: software bounds must CHANGE optimized-path codegen (was a silent no-op)"
1938        );
1939        // Thumb-2 `UDF #0` is 0xDE00 (LE bytes: 00 DE); the #752
1940        // wraparound-safe guard's borrow check `CMP sl, ip` (16-bit
1941        // high-reg form) is 0x45E2 (LE: E2 45). Both must appear — one
1942        // guard per access, traps inline.
1943        let has_udf = s.code.windows(2).any(|w| w == [0x00, 0xDE]);
1944        let has_cmp_sl_ip = s.code.windows(2).any(|w| w == [0xE2, 0x45]);
1945        assert!(has_udf, "#377: inline UDF trap missing from optimized path");
1946        assert!(
1947            has_cmp_sl_ip,
1948            "#377/#752: CMP sl, ip bounds borrow-check missing from optimized path"
1949        );
1950        // And `none` must contain NO UDF (the function has no other trap).
1951        assert!(
1952            !n.code.windows(2).any(|w| w == [0x00, 0xDE]),
1953            "none must not contain a UDF for this function"
1954        );
1955    }
1956
1957    /// #377: `mpu` on the optimized path is codegen-passthrough — identical
1958    /// bytes to `none` on BOTH paths (hardware enforcement is target-level;
1959    /// synth does not emit MPU region programming — tracked separately in
1960    /// #377's fix-direction discussion). This pins path-parity for `mpu`.
1961    #[test]
1962    fn arm_safety_bounds_mpu_optimized_path_parity_377() {
1963        let backend = ArmBackend::new();
1964        let ops = vec![
1965            WasmOp::LocalGet(0),
1966            WasmOp::I32Load {
1967                offset: 0,
1968                align: 2,
1969            },
1970        ];
1971        let cfg_none = CompileConfig::default();
1972        let cfg_mpu = CompileConfig {
1973            safety_bounds: SafetyBounds::Mpu,
1974            ..Default::default()
1975        };
1976        let n = backend.compile_function("ld", &ops, &cfg_none).unwrap();
1977        let m = backend.compile_function("ld", &ops, &cfg_mpu).unwrap();
1978        assert_eq!(
1979            n.code, m.code,
1980            "Mpu and None must produce identical bytes on the optimized path too"
1981        );
1982    }
1983
1984    /// #377: `mask` on the optimized path declines to the direct selector
1985    /// (honest degradation) — the compiled function must equal the
1986    /// `--no-optimize` masking bytes, i.e. the flag is honored, never dropped.
1987    #[test]
1988    fn arm_safety_bounds_mask_optimized_path_declines_to_direct_377() {
1989        let backend = ArmBackend::new();
1990        let ops = vec![
1991            WasmOp::LocalGet(0),
1992            WasmOp::LocalGet(1),
1993            WasmOp::I32Store {
1994                offset: 0,
1995                align: 2,
1996            },
1997        ];
1998        let cfg_mask_opt = CompileConfig {
1999            safety_bounds: SafetyBounds::Mask,
2000            ..Default::default()
2001        };
2002        let cfg_mask_direct = CompileConfig {
2003            no_optimize: true,
2004            safety_bounds: SafetyBounds::Mask,
2005            ..Default::default()
2006        };
2007        let o = backend.compile_function("st", &ops, &cfg_mask_opt).unwrap();
2008        let d = backend
2009            .compile_function("st", &ops, &cfg_mask_direct)
2010            .unwrap();
2011        assert_eq!(
2012            o.code, d.code,
2013            "#377: mask on the optimized path must fall back to the direct selector's masking"
2014        );
2015    }
2016
2017    // ========================================================================
2018    // ISA feature gate tests — ensure the compiler never emits unsupported
2019    // instructions for a given target
2020    // ========================================================================
2021
2022    #[test]
2023    fn test_f32_rejected_on_cortex_m3_no_fpu() {
2024        let backend = ArmBackend::new();
2025        let ops = vec![WasmOp::F32Const(1.0), WasmOp::F32Const(2.0), WasmOp::F32Add];
2026        let config = CompileConfig {
2027            target: TargetSpec::cortex_m3(),
2028            no_optimize: true,
2029            ..CompileConfig::default()
2030        };
2031
2032        let result = backend.compile_function("fadd", &ops, &config);
2033        assert!(
2034            result.is_err(),
2035            "f32 operations should fail on Cortex-M3 (no FPU)"
2036        );
2037    }
2038
2039    #[test]
2040    fn test_f32_accepted_on_cortex_m4f() {
2041        let backend = ArmBackend::new();
2042        let ops = vec![WasmOp::F32Const(1.0), WasmOp::F32Const(2.0), WasmOp::F32Add];
2043        let config = CompileConfig {
2044            target: TargetSpec::cortex_m4f(),
2045            no_optimize: true,
2046            ..CompileConfig::default()
2047        };
2048
2049        let result = backend.compile_function("fadd", &ops, &config);
2050        assert!(
2051            result.is_ok(),
2052            "f32 operations should succeed on Cortex-M4F, got: {:?}",
2053            result.unwrap_err()
2054        );
2055    }
2056
2057    #[test]
2058    fn test_i32_works_on_all_targets() {
2059        let backend = ArmBackend::new();
2060        let ops = vec![WasmOp::LocalGet(0), WasmOp::LocalGet(1), WasmOp::I32Add];
2061
2062        // Cortex-M3 (no FPU)
2063        let config_m3 = CompileConfig {
2064            target: TargetSpec::cortex_m3(),
2065            no_optimize: true,
2066            ..CompileConfig::default()
2067        };
2068        assert!(
2069            backend.compile_function("add", &ops, &config_m3).is_ok(),
2070            "i32 ops should work on Cortex-M3"
2071        );
2072
2073        // Cortex-M4F (single FPU)
2074        let config_m4f = CompileConfig {
2075            target: TargetSpec::cortex_m4f(),
2076            no_optimize: true,
2077            ..CompileConfig::default()
2078        };
2079        assert!(
2080            backend.compile_function("add", &ops, &config_m4f).is_ok(),
2081            "i32 ops should work on Cortex-M4F"
2082        );
2083
2084        // Cortex-M7DP (double FPU)
2085        let config_m7dp = CompileConfig {
2086            target: TargetSpec::cortex_m7dp(),
2087            no_optimize: true,
2088            ..CompileConfig::default()
2089        };
2090        assert!(
2091            backend.compile_function("add", &ops, &config_m7dp).is_ok(),
2092            "i32 ops should work on Cortex-M7DP"
2093        );
2094    }
2095
2096    #[test]
2097    fn test_f32_rejected_on_cortex_m4_no_fpu() {
2098        // Cortex-M4 (without F suffix) has no FPU
2099        let backend = ArmBackend::new();
2100        let ops = vec![WasmOp::F32Const(1.5), WasmOp::F32Const(2.5), WasmOp::F32Mul];
2101        let config = CompileConfig {
2102            target: TargetSpec::cortex_m4(),
2103            no_optimize: true,
2104            ..CompileConfig::default()
2105        };
2106
2107        let result = backend.compile_function("fmul", &ops, &config);
2108        assert!(
2109            result.is_err(),
2110            "f32 operations should fail on Cortex-M4 (no FPU)"
2111        );
2112    }
2113
2114    // ========================================================================
2115    // Issue #120 — f32 ops in the optimized lowering path
2116    //
2117    // `OptimizerBridge::wasm_to_ir` has no handlers for f32/f64 ops, so a
2118    // value-producing float op fell through to `Opcode::Nop`, leaving a
2119    // downstream consumer with an unmapped vreg and tripping the PR #101
2120    // defensive panic in `ir_to_arm`. Customer reproducer: `compiler_builtins
2121    // float::div` and `gale_compute_ipi_mask` in the `falcon-rate-component`
2122    // module.
2123    //
2124    // Fix: `optimize_full` declines float modules with a typed `Err`;
2125    // `compile_wasm_to_arm` falls back to the non-optimized `select_with_stack`
2126    // path, which handles f32 via VFP/FPU. These tests use the *default*
2127    // (optimized) config — `no_optimize` is NOT set — which is the exact
2128    // configuration that panicked pre-fix.
2129    // ========================================================================
2130
2131    /// Pre-fix: this panicked with "vreg vN has no assigned ARM register and
2132    /// no spill slot" inside `ir_to_arm`. Post-fix: the optimized path declines
2133    /// the module and the backend falls back to direct selection, producing a
2134    /// non-empty f32.div lowering on a Cortex-M4F.
2135    #[test]
2136    fn test_issue120_f32_div_compiles_via_optimized_default() {
2137        let backend = ArmBackend::new();
2138        let ops = vec![WasmOp::LocalGet(0), WasmOp::LocalGet(1), WasmOp::F32Div];
2139        let config = CompileConfig {
2140            target: TargetSpec::cortex_m4f(),
2141            // no_optimize NOT set — this exercises the optimized path that
2142            // panicked in issue #120, then the fallback to direct selection.
2143            // GI-FPU-002: the f32 params must be declared so the direct
2144            // selector homes them in S0/S1 (AAPCS-VFP) rather than declining.
2145            current_func_params_f32: vec![true, true],
2146            ..CompileConfig::default()
2147        };
2148
2149        let result = backend.compile_function("fdiv", &ops, &config);
2150        assert!(
2151            result.is_ok(),
2152            "f32.div must compile on Cortex-M4F via the optimized->direct \
2153             fallback (issue #120), got: {:?}",
2154            result.as_ref().err()
2155        );
2156        assert!(
2157            !result.unwrap().code.is_empty(),
2158            "f32.div must produce non-empty machine code"
2159        );
2160    }
2161
2162    /// A spread of f32 ops, all through the optimized (default) config, must
2163    /// compile via the fallback on an FPU target without panicking.
2164    #[test]
2165    fn test_issue120_assorted_f32_ops_compile_via_optimized_default() {
2166        let backend = ArmBackend::new();
2167        let config = CompileConfig {
2168            target: TargetSpec::cortex_m4f(),
2169            // GI-FPU-002: declare the two f32 params for AAPCS-VFP homing.
2170            current_func_params_f32: vec![true, true],
2171            ..CompileConfig::default()
2172        };
2173
2174        let cases: Vec<(&str, Vec<WasmOp>)> = vec![
2175            (
2176                "fadd",
2177                vec![WasmOp::LocalGet(0), WasmOp::LocalGet(1), WasmOp::F32Add],
2178            ),
2179            (
2180                "fmul",
2181                vec![WasmOp::LocalGet(0), WasmOp::LocalGet(1), WasmOp::F32Mul],
2182            ),
2183            (
2184                "fsub",
2185                vec![WasmOp::LocalGet(0), WasmOp::LocalGet(1), WasmOp::F32Sub],
2186            ),
2187        ];
2188
2189        for (name, ops) in cases {
2190            let result = backend.compile_function(name, &ops, &config);
2191            assert!(
2192                result.is_ok(),
2193                "{name} must compile via the optimized->direct fallback \
2194                 (issue #120), got: {:?}",
2195                result.as_ref().err()
2196            );
2197            assert!(
2198                !result.unwrap().code.is_empty(),
2199                "{name} must produce non-empty machine code"
2200            );
2201        }
2202    }
2203
2204    /// The fallback must still honor the ISA feature gate: f32 on a no-FPU
2205    /// target must fail cleanly (not panic) even on the optimized path.
2206    #[test]
2207    fn test_issue120_f32_div_rejected_on_no_fpu_via_optimized() {
2208        let backend = ArmBackend::new();
2209        let ops = vec![WasmOp::LocalGet(0), WasmOp::LocalGet(1), WasmOp::F32Div];
2210        let config = CompileConfig {
2211            target: TargetSpec::cortex_m3(),
2212            ..CompileConfig::default()
2213        };
2214
2215        let result = backend.compile_function("fdiv", &ops, &config);
2216        assert!(
2217            result.is_err(),
2218            "f32.div must be rejected on Cortex-M3 (no FPU), not panic"
2219        );
2220    }
2221
2222    /// #507: a `br_table` function compiled via the DEFAULT (optimized) config
2223    /// must produce the SAME bytes as the direct (`no_optimize`) selector —
2224    /// i.e. the optimized path declined it to direct, lowering the dispatch as a
2225    /// real cmp-chain instead of silently dropping it (which left all arms in
2226    /// fall-through). Pre-fix the two outputs differed (the optimized one had no
2227    /// selector compare). Execution correctness is gated by
2228    /// `scripts/repro/br_table_507_differential.py`.
2229    #[test]
2230    fn test_507_br_table_declines_to_direct() {
2231        let backend = ArmBackend::new();
2232        // dispatch(sel): br_table over 3 blocks, each storing a marker to mem[0].
2233        let ops = vec![
2234            WasmOp::Block,
2235            WasmOp::Block,
2236            WasmOp::Block,
2237            WasmOp::LocalGet(0),
2238            WasmOp::BrTable {
2239                targets: vec![0, 1, 2],
2240                default: 2,
2241            },
2242            WasmOp::End,
2243            WasmOp::I32Const(0),
2244            WasmOp::I32Const(10),
2245            WasmOp::I32Store {
2246                offset: 0,
2247                align: 2,
2248            },
2249            WasmOp::Return,
2250            WasmOp::End,
2251            WasmOp::I32Const(0),
2252            WasmOp::I32Const(20),
2253            WasmOp::I32Store {
2254                offset: 0,
2255                align: 2,
2256            },
2257            WasmOp::Return,
2258            WasmOp::End,
2259            WasmOp::I32Const(0),
2260            WasmOp::I32Const(30),
2261            WasmOp::I32Store {
2262                offset: 0,
2263                align: 2,
2264            },
2265        ];
2266        let opt = CompileConfig {
2267            target: TargetSpec::cortex_m4(),
2268            ..CompileConfig::default()
2269        };
2270        let direct = CompileConfig {
2271            target: TargetSpec::cortex_m4(),
2272            no_optimize: true,
2273            ..CompileConfig::default()
2274        };
2275        let a = backend
2276            .compile_function("dispatch", &ops, &opt)
2277            .expect("optimized-default must compile br_table (via decline)");
2278        let b = backend
2279            .compile_function("dispatch", &ops, &direct)
2280            .expect("direct must compile br_table");
2281        assert_eq!(
2282            a.code, b.code,
2283            "#507: optimized-default br_table output must be byte-identical to the \
2284             direct selector (i.e. declined to direct), not a dropped dispatch"
2285        );
2286    }
2287
2288    /// Issue #94: end-to-end byte-size check for the canonical u64-packed
2289    /// FFI-return hi32 extract pattern. Compiles two near-identical
2290    /// functions — one with the optimized shift-by-32, one with a generic
2291    /// shift-by-7 — and asserts the optimized form is meaningfully smaller.
2292    #[test]
2293    fn test_issue94_hi32_extract_is_smaller_than_generic_shift() {
2294        let backend = ArmBackend::new();
2295        let config = CompileConfig {
2296            target: TargetSpec::cortex_m4f(),
2297            ..CompileConfig::default()
2298        };
2299
2300        // #518: the i64 value must NOT come from an i64 PARAM — the optimized
2301        // path now declines i64-param functions to the direct selector (it homed
2302        // an i64 param in R4:R5 instead of R0:R1, a silent miscompile this test's
2303        // byte-size-only assertion masked). The canonical #94 case is a u64 from
2304        // an FFI return, not a param, anyway. Source the i64 from a sign-extended
2305        // i32 param (`extend_i32_s`): a runtime, non-constant-foldable i64 that
2306        // stays on the optimized path, so the shift-by-32 hi-extract peephole is
2307        // still exercised on CORRECT code.
2308        // Optimized path: `(i64.extend_i32_s (local.get 0)) >>> 32; wrap_i64`
2309        let ops_hi32 = vec![
2310            WasmOp::LocalGet(0), // i32 param in R0
2311            WasmOp::I64ExtendI32S,
2312            WasmOp::I64Const(32),
2313            WasmOp::I64ShrU,
2314            WasmOp::I32WrapI64,
2315        ];
2316        let func_hi32 = backend
2317            .compile_function("hi32_extract", &ops_hi32, &config)
2318            .unwrap();
2319
2320        // Generic path: `... >>> 7; wrap_i64` — same shape, but the shift amount
2321        // is not a multiple of 32, so it falls through to the runtime shift.
2322        let ops_generic = vec![
2323            WasmOp::LocalGet(0),
2324            WasmOp::I64ExtendI32S,
2325            WasmOp::I64Const(7),
2326            WasmOp::I64ShrU,
2327            WasmOp::I32WrapI64,
2328        ];
2329        let func_generic = backend
2330            .compile_function("generic_shr", &ops_generic, &config)
2331            .unwrap();
2332
2333        let bytes_hi32 = func_hi32.code.len();
2334        let bytes_generic = func_generic.code.len();
2335        println!(
2336            "\n[issue #94] hi32 extract: {} bytes (vs generic shift: {} bytes; saved {})",
2337            bytes_hi32,
2338            bytes_generic,
2339            bytes_generic.saturating_sub(bytes_hi32)
2340        );
2341        let hex: String = func_hi32
2342            .code
2343            .iter()
2344            .map(|b| format!("{:02x}", b))
2345            .collect::<Vec<_>>()
2346            .join(" ");
2347        println!("[issue #94] hi32 bytes: {}", hex);
2348        // We expect the optimized form to be at least 30 bytes smaller than
2349        // the generic 64-bit shift sequence. (Empirically: 14 vs 50 bytes.)
2350        assert!(
2351            bytes_hi32 + 30 <= bytes_generic,
2352            "issue #94: hi32 extract = {} bytes, generic shift = {} bytes; \
2353             expected optimized form to be at least 30 bytes smaller",
2354            bytes_hi32,
2355            bytes_generic,
2356        );
2357    }
2358}