Drew T cbf5bae043 feat(main): unblock main's switch functions — the rodata span carve + derived jtbl pads
main's gate could only ever say "got X want Y". S71 read 7 such verdicts as body
rejects and recorded 11 functions as "PROVEN gate-rejects, §376 in its purest form".
They are not: all 11 are switch functions, and the blocker is that main has had
exactly ONE rodata carve since Phase 7 (LZSS's jtbl_80072A38). Every other main jump
table stayed raw in the tail data, so a drafted switch DOUBLE-EMITTED its table, the
image grew (+28/+52/+76/+84 measured), and all 238 symbols above 0x80072A4C shifted.

* tools/main_diff_locate.py (NEW) — turns a red image into a named list of divergent
  symbols via the linker map; per-byte attribution, self-test flips a byte at a known
  address and asserts the containing symbol (plus the identical-pair direction).
* gate_main.py — PRESERVES the red image + map before the R40 baseline control
  rebuilds over it, and auto-localizes: BODY REJECT vs PLUMBING REJECT vs MIXED. Also
  -j on the build (was single-threaded) and the §376 drop list written to
  .run/gate_main_dropped.json with the reconciliation chain.
* splat.us.exe.yaml — the .rodata carve extends from the LZSS table alone to the whole
  contiguous game-jtbl span 0x80072A38-0x80072C70 (12 tables, one 800.o run).
  Byte-neutral with no drafts substituted (probed first).
* jtbl_rodata_pads.py — --derive now works for main: one file-0-vram expression makes
  both address->bytes and yaml-piece->address correct for the EXE's 0x800 header and
  leaves flat overlays unchanged. Makefile arms it for BINARY=main.

Banked byte-identical: func_8001A114, func_8001AAD0, func_8001AF34 — three of the
eleven. 25 of main's 59 frontier functions (6,215 of 12,912 instructions) are in this
class; the remaining spans need src/800.c split at the TU boundaries the spans reveal.
2026-09-02 11:56:35 -06:00
2026-06-10 22:02:07 -06:00
2026-06-10 22:02:07 -06:00

BFM-decomp

A matching decompilation of Brave Fencer Musashi (PlayStation, SLUS-00726, USA 1998) — the first public decompilation effort for this game.

What "matching" means

The goal is C source code that, compiled with the original-era toolchain (PsyQ 4.x / GCC 2.7.2-family + ASPSX via maspsx), produces a byte-for-byte identical SLUS_007.26 and, eventually, byte-identical overlay binaries. SHA1 checksums are the ground truth; "functionally equivalent" does not count.

No ROM content

This repository contains no game assets, no disassembly output, and no ROM-derived data — only source code, build configuration, symbol names/addresses, hashes, and documentation. To build or contribute you must provide your own dump of the game disc (4-track BIN/CUE, redump layout). See .gitignore for the firewall.

Project status

Latest (Phase 19, 2026-06-20): the project builds 136 binaries byte-identical from a clean tree (the EXE + the resident engine + all 134 location overlays); make check-all → 136/136. Fleet byte-identical-from-source is 58.0% (function-instance-weighted; see the PhaseEnds for the byte-weighted ~30% figure and what it includes). Shared engine functions are matched once in ov_SC01_077 and propagated ×134 via tools/dedup_propagate.py. (The narrative below is Phase-11/12-era; a full refresh is part of the public-flip prep.)

Gen1 (foundation) complete — the matching pipeline is proven end-to-end. make extract && make build && make check rebuilds SLUS_007.26 byte-for-byte identical (SHA1 143dbb89…) from C + assembly, reproducibly across many sessions.

  • Compiler pinned by evidence: gcc-2.7.2-psx -O2 -G0 -mips1 -mcpu=3000 + maspsx --aspsx-version=2.56 --expand-div.
  • 52 functions hand-matched to byte-identical machine code — including the LZSS streaming decompressor — with a decomp-permuter + matching-cookbook "flywheel" to accelerate the next.
  • 959 PsyQ SDK functions linked byte-identical (libcd, libgs, libgte, libspu/libsnd, libgpu, libc2, libmcrd, libapi/libcard, libetc) straight from the real PsyQ 4.0 libraries instead of re-decompiling them — bringing byte-identical-from-source coverage of the EXE to ~50%.
  • File-loader / overlay system reverse-engineered, with the resident engine blob + location overlays' load addresses proven byte-identical against a live PCSX-Redux RAM dump.

About half the EXE is still INCLUDE_ASM stubs (correct bytes, not yet C), and the bulk of the game lives in compressed overlays inside the .CD archives — Gen2 (overlays & engine at scale) is underway:

  • The build toolchain is binary-agnostic (one parameterized pipeline builds any binary), and the always-resident engine blob rebuilds byte-for-byte from source (SHA1 8e17e02f…) — the second binary reconstructed exactly, after the EXE — and is now 86% hand-matched C (123 / 146 functions, up from 0): its scripting turned out to be compiled-MIPS state/mode dispatch, not a bytecode VM, and the save-file + sound (SQV) formats are documented. The harvest used a reusable swarm-of-agents + bit-for-bit byte-gate method (a wrong match can't be accepted) — tools/harvest_verify.py + tools/match_one.py, which carry straight into the overlay phase.
  • A cross-binary deduplication pipeline is live: a Ghidra-free signer fingerprints all 134 location overlays, and the report finds ~9,000 byte-identical function groups shared across binaries (~28 MB of collapsible code) — a single engine function is byte-identical in all 134 overlays. This is "one match unlocks many": each engine match will be auto-credited across the overlay fleet.

Current phase and detailed progress live in phase-ends/ (newest PhaseEnd_*.md = current state); methodology, rules, and the full roadmap are in PROJECT_CONTEXT.md; environment setup in docs/SETUP.md.

This project is developed primarily by Claude Code driving Ghidra through an MCP server; see CLAUDE.md.

License

Private repository for now. AGPL-3.0 is planned at public release, modeled on sotn-decomp. tools/brave-CUE/ is CUE's BRAVE extractor (GPL, source included) and retains its own license.

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