Adds finer-grained addressing-mode classification to every data xref row plus new dispatch for instruction families not previously emitted: - New `xrefs.addr_mode VARCHAR NULL` column. NULL for control-flow edges (call / ind_call / j / br); one of d_form / lis_addi / lis_ori / multiword / x_form_indexed / x_form_byterev / atomic / dcbz for data edges. Index idx_xrefs_addr_mode. - New `xenia_analysis::xref::AddrMode` enum + Xref::addr_mode field. - Opcode 46/47 (lmw/stmw) expand to one xref per slot — D-form multi-word load/store now resolves all (32-rS) consecutive addresses. - Opcode 31 X-form dispatch — stwx/stbx/sthx/stwux/stbux/sthux/stdx/stdux, lwzx/lbzx/lhzx/lhax/lwzux/lbzux/lhzux/lhaux/ldx/ldux, stwcx./stdcx. (atomic), stwbrx/sthbrx/lwbrx/lhbrx (byte-reverse), dcbz (cache-line clear). - X-form rows are emitted ONLY when both rA and rB resolve to known constants (rare but present); the dominant runtime-indexed pattern remains correctly skipped. Sylpheed yield (regen on master + merge): - 442 newly-detected x_form_indexed reads (lwzx/lhzx into static tables). - 40 newly-detected atomic writes (stwcx./stdcx. with resolvable address). - 28,834 lis_addi refs, 18,485 d_form reads, 3,288 d_form writes — every pre-existing data row now tagged. - 0 multiword / dcbz / byterev (these instructions exist but aren't on lis+addi-tracked code paths). Tests 633→636 (+3 xref unit tests covering AddrMode tag uniqueness, data-edge addr_mode round-trip, control-edge None invariant). Schema golden updated (xrefs gains addr_mode column). Co-Authored-By: Claude Opus 4.7 (1M context) <noreply@anthropic.com>
284 lines
13 KiB
Markdown
284 lines
13 KiB
Markdown
# `xenia-analysis` schema reference
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Authoritative documentation for the DuckDB tables and SQL views produced by
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`xenia-rs dis --db sylpheed.db`. Track schema changes here alongside any
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update to the `db_schema_golden` test fixture.
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The base + disasm tables (`metadata`, `sections`, `imports`, `functions`,
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`labels`, `instructions`, `xrefs`, opt-in `exec_trace` / `import_calls` /
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`branch_trace`) are documented inline in `src/db.rs` doc comment. This file
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collects layered analysis additions and forward-work notes.
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---
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## Layer M1 — `.pdata` boundary correction (landed)
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### Schema additions
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- `functions.pdata_validated BOOLEAN NOT NULL` — `true` when the row's
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`address` matches a `RUNTIME_FUNCTION.BeginAddress` from `.pdata`. Linker
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ground truth.
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- `functions.pdata_length BIGINT NULL` — `function_length` (bytes) from the
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matching pdata entry; `NULL` when the row is prologue-only.
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- New table `pdata_entries(begin_address BIGINT PRIMARY KEY, end_address
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BIGINT, function_length BIGINT, prolog_length BIGINT, flags BIGINT)` — every
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parsed `.pdata` `RUNTIME_FUNCTION` entry (raw, before any merge with
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prologue analysis).
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- Index `idx_functions_pdata_validated` on `functions(pdata_validated)`.
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### What this layer does
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- Parses `.pdata` 8-byte `RUNTIME_FUNCTION` entries (PowerPC PE32 layout):
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word 0 `BeginAddress` (absolute VA), word 1 packed
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`{prolog_length:8, function_length:22, flags:2}`, both big-endian.
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- Unions pdata `BeginAddress` values into the function-candidate set fed to
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the prologue walker, so functions our prologue heuristic missed still get
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rows.
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- When pdata supplies a longer `function_length` than the prologue walk
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found, extends `end_address` to the pdata-implied end (catches mis-split
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where the walker stopped at an early `blr`).
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- After the walker, performs a forward pass that trims `function.end` to the
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next start when they overlap (catches mis-merge where one row spanned two
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prologues — the audit-031 `sub_824D23B0` / `sub_824D29F0` case).
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### What this layer does NOT do
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- Does not adjust prolog-derived `frame_size` / `saved_gprs` from `.pdata`'s
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`prolog_length` field — those remain prologue-only inferences.
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- Does not classify functions further than the existing `is_leaf` /
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`is_saverestore` columns. Class membership is M3.
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- Does not detect functions whose entries are missing from BOTH `.pdata`
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and the bl-target scan (extremely rare; would require executable-byte
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linear sweep).
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### Reference docs
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- Microsoft PE32+ exception data spec for PowerPC RUNTIME_FUNCTION.
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- xenia-canary `src/xenia/cpu/xex_module.cc:1570-1587` — canary's reference
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parser (extracts `BeginAddress` only; we additionally decode word 1).
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### Validation queries
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```sql
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-- All pdata entries found
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SELECT COUNT(*) FROM pdata_entries; -- ~23073 for Sylpheed
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-- Functions cross-validated against pdata
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SELECT COUNT(*) FROM functions WHERE pdata_validated;
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-- Functions detected ONLY by prologue (orphans of pdata)
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SELECT COUNT(*) FROM functions WHERE NOT pdata_validated;
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-- Pdata orphans NOT yet in functions (should be 0 after this layer)
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SELECT COUNT(*) FROM pdata_entries p
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LEFT JOIN functions f ON f.address = p.begin_address
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WHERE f.address IS NULL;
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-- Audit-031 mis-merge resolved: 0x824D29F0 should have its own row
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SELECT name FROM functions WHERE address = 2186674160; -- 0x824D29F0
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```
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---
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## Layer M2 — MSVC C++ name demangler (landed)
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### Schema additions
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- New table `demangled_names(address BIGINT NULL, mangled VARCHAR NOT NULL,
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raw_demangled VARCHAR NOT NULL, namespace_path VARCHAR NULL,
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class_name VARCHAR NULL, method_name VARCHAR NULL,
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params_signature VARCHAR NULL)`.
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- Indices on `address`, `class_name`, `method_name`.
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### What this layer does
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- Wraps `msvc_demangler::demangle` (a Rust port of LLVM's
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`MicrosoftDemangle.cpp`) and splits the formatted output into structured
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fields via a heuristic top-level parser (handles templates and nested parens
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correctly).
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- Populates `demangled_names` from any label whose name starts with `?` plus
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any import name that happens to be mangled (defensive — typical kernel
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imports use C names).
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### What this layer does NOT do
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- Does not parse the AST returned by `msvc_demangler::parse` — uses the formatted
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string and a heuristic split. Adequate for typical class member functions
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and RTTI strings; exotic template / lambda forms still get `raw_demangled`
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populated but may have NULL structured fields.
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- Does not yet ingest RTTI strings discovered in `.rdata` — that's M3's job;
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M3 will append rows to this table at the addresses where it finds RTTI
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TypeDescriptors.
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### Reference docs
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- `msvc-demangler` crate (`https://docs.rs/msvc-demangler/0.11`).
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- LLVM `MicrosoftDemangle.cpp` (the parser this crate ports).
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## Layer M3 — Vtable + RTTI detection (landed)
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### Schema additions
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- `vtables(address PK, length, col_address NULL, class_name, rtti_present,
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base_classes_json NULL)` — every detected static vtable.
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- `methods(vtable_address, slot, function_address, mangled_name NULL,
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demangled_name NULL, PRIMARY KEY (vtable_address, slot))` — one row per
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method slot.
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- `classes(name PK, vtable_address, rtti_present, base_classes_json NULL)` —
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deduped by class name (first-detected vtable wins).
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- Indices: `methods.function_address`, `classes.rtti_present`.
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### What this layer does
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- Walks `.rdata` and `.data` looking for runs of ≥3 consecutive 4-byte BE
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values where each value is a known function start (from M1's corrected
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`functions` table). Single-2-method vtables are intentionally rejected to
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control false-positive rate.
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- Attempts the MSVC RTTI walk `vtable[-1] → CompleteObjectLocator → TypeDescriptor`
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for each candidate. When successful, the demangled `class ClassName`
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string fills `class_name` and a best-effort
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`RTTIClassHierarchyDescriptor` walk fills `base_classes_json` (JSON array
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of base class names).
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- Falls back to `ANON_Class_<8-hex>` keyed by FNV-1a hash of the sorted
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method-PC tuple when RTTI is absent (typical for shipped game binaries).
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Identical vtables across the binary (multiple instances) collapse to the
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same anonymous name.
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### What this layer does NOT do
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- Vtables built at runtime in heap-allocated memory (e.g. by ctors copying
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static templates) are out of scope — only static `.rdata`/`.data` content.
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- Multiple-inheritance "extra" vftables (one per base subobject) are detected
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as independent vtables with no link between them.
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- Inheritance-tree walking beyond `RTTIClassHierarchyDescriptor`'s direct
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base list is not attempted.
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### Reference docs
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- openrce.org "Reversing Microsoft Visual C++" — RTTI layout articles
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(CompleteObjectLocator at vtable[-1]; TypeDescriptor at COL+0xC; mangled
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name at TD+0x8).
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## Layer M4 — Class-aware probe targeting (landed)
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CLI extension only — no schema changes. The probe-token grammar adds three
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symbolic forms on top of the existing `0xADDR` literal:
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- `Class::method` — joins `classes` × `methods` × `demangled_names` to find
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every PC whose vtable belongs to that class and whose demangled
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`method_name` matches.
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- `Class::*` — joins `classes` × `methods` to find every method PC of that
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class.
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- `function_name` — falls back to `functions.name` lookup for free functions
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/ saverestore stubs / labels.
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Numeric tokens never touch the DB (preserves zero-IO fast path; lockstep
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digest unaffected). Symbolic tokens require the DuckDB at `--probe-db PATH`
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or `XENIA_PROBE_DB`; default is `sylpheed.db` next to the .iso when present.
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Resolution happens BEFORE guest exec begins, so it cannot affect the
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lockstep digest.
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See `crates/xenia-analysis/src/lookup.rs`.
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---
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## Layer M5 — Indirect-dispatch reachability (landed)
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### Schema additions
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- New value `'ind_call'` in the `xrefs.kind` set.
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- New SQL view `v_indirect_reachability_from_entry` — strict superset of
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`v_reachability_from_entry`, taking `ind_call` edges in the BFS.
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### What this layer does
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- Walks each `FuncAnalysis.functions` entry with a per-basic-block register
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tracker. Recognises the canonical static-vtable pattern:
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`lis+addi → lwz off(rA) → mtctr → bcctrl`, where `rA` ends up holding a
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known vtable's start address from M3.
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- Honours the PowerPC ABI: `bl`-style calls (op 18 / 16 with LK=1) clobber
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volatile r0..r12 + ctr but preserve non-volatile r13..r31, so a vtable
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pointer parked in r30/r31 before a call survives.
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- Treats every M3 `loc_*` label as a basic-block boundary (kills register
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state) so jump-IN paths cannot induce false positives.
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### What this layer does NOT do (and observed impact)
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- Vtable pointer loaded from a `this`-pointer field
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(`lwz r_vt, off(rA)` where `rA = this`) — by far the dominant pattern in
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real C++ — is unresolvable without alias / points-to analysis.
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- On Sylpheed: the layer detects 0 edges. The binary's 1,001 lis+addi
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references into vtables are mostly constructor-side **vptr writes**
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(`stw rVtable, vptr_offset(this)`), not direct dispatches. The renderer
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hunt's audit-009 cluster therefore needs a future M5.5 with `this`-flow
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tracking before this layer surfaces it.
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### Reference docs
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- IBM PowerPC ABI: register-save convention (volatile r0..r12 + ctr,
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non-volatile r13..r31).
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## Layer M7 — String / constant-pool detection (landed)
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### Schema additions
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- New table `strings(address PK, encoding, length, content)`.
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- Index `idx_strings_encoding`.
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### What this layer does
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- Scans `.rdata` for runs of length ≥ 6 of printable ASCII bytes followed by
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a NUL terminator.
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- Scans `.rdata` for UTF-16LE runs of length ≥ 6 code units (printable-ASCII
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basic plane only) followed by a u16 NUL terminator.
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- Cross-reference is implicit: existing `xrefs.kind='ref'` rows whose
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`target` falls in `strings.address`'s exact match set name the referencing
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PCs. SQL: `SELECT s.content, x.source FROM xrefs x JOIN strings s
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ON s.address = x.target WHERE x.kind='ref'`.
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### What this layer does NOT do
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- No UTF-8 multibyte / non-ASCII basic plane in either encoding.
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- No `.data` scan (read-only-section bias).
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- No multi-byte CJK encodings — Japanese text in localised builds may be
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represented in shift_jis / utf-8 with non-printable bytes that this
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scanner skips.
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### Sylpheed yield
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- 6,311 ASCII strings (including full embedded HLSL shader source).
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- 0 UTF-16LE strings (binary uses ASCII / native CJK encoding).
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- 9,132 lis+addi sites cross-reference into the detected strings — names
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the source PCs that reference each string.
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## Layer M6 — Extended store-class xrefs + `addr_mode` column (landed)
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### Schema additions
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- `xrefs.addr_mode VARCHAR NULL` — sub-classifies how the source instruction
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computes its target. NULL for control-flow edges (call / ind_call / j /
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br); one of the following tags for data edges:
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- `d_form` — standard signed-16 displacement (lwz/stw/lfs/stfs/etc.)
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- `lis_addi` — address materialised via `lis + addi` register tracking
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- `lis_ori` — address materialised via `lis + ori`
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- `multiword` — `lmw / stmw` (one xref per slot; up to 32-rS slots)
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- `x_form_indexed` — `stwx / stbx / sthx / stwux / stbux / sthux / stdx /
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stdux / lwzx / lbzx / lhzx / lhax / lwzux / lbzux / lhzux / lhaux / ldx /
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ldux` — emitted only when both rA and rB are tracked constants
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- `x_form_byterev` — `stwbrx / sthbrx / lwbrx / lhbrx`
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- `atomic` — `stwcx. / stdcx.` reservation-conditional stores
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- `dcbz` — cache-line clear (32-byte zero at rA+rB)
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- Index `idx_xrefs_addr_mode`.
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### What this layer does
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- Tags every existing data xref with its addressing mode (`d_form` for the
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bulk; `lis_addi` / `lis_ori` for the lift-and-add cases that produce
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DataRef rows).
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- Adds new dispatch for opcode 47 (`stmw`) and 46 (`lmw`), expanding to
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per-slot DataWrite / DataRead rows.
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- Adds new dispatch for opcode 31 X-form: stores, atomic, byte-reverse,
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dcbz. X-form rows are emitted ONLY when both rA and rB resolve to known
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constants (otherwise the address is runtime-dependent and we skip).
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### What this layer does NOT do
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- VMX / VMX128 vector stores (opcode 31 with vector XO codes) are not
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emitted — they always have register-indexed addresses that the
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lis+addi tracker can't usually resolve, and detecting them adds noise
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without improving target resolution.
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- The dominant runtime-of-stwx pattern (rA = base, rB = runtime index) is
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not resolved — by design; mem-watch covers the runtime side per VERIFY-B.
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### Sylpheed yield
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- 28,834 `lis_addi` refs, 18,485 `d_form` reads, 3,288 `d_form` writes —
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the existing baseline now properly tagged.
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- **442 newly-detected `x_form_indexed` reads** — primarily lwzx/lhzx
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reads from in-table dispatch (each pair (rA,rB) resolved statically).
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- **40 newly-detected `atomic` writes** — every `stwcx.` site with a
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resolvable address; useful for reservation-table audits.
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- 9 `lis_ori` refs.
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- 0 multiword / dcbz / byterev — these instructions exist in the binary
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but are not in lis+addi-tracked code paths.
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## Forward work (M8–M12, not yet landed)
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- **M8** — dispatch-table heuristics beyond vtables (e.g. function-pointer arrays in `.data`).
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- **M9** — `__CxxFrameHandler` exception scope-table parsing.
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- **M10** — `.tls` section / TLS slot tracking.
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- **M11** — `__xc_a` / `__xc_z` static-initializer driver detection.
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- **M12** — comparative-PC-trace mode for canary diff (runtime side, not analyzer).
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