1. MAIN LANE — the largest single block of unfinished work was drawing 32 cards a wave. main_lane.draw() never passed --max-bins, so it inherited build_wave_atlas's default of 12 gate groups — a cap that exists because each group costs a whole-binary rebuild, and main's own --only-bins docstring says the opposite applies to it: "main is gated ONCE per SLATE, so main has no per-TU gate cost and --max-bins can be large". Nobody passed it. Measured cost: main banked ~19 stubs/hour against 1,291 remaining while the overlay lane ran 650-card waves beside it. Now --max-bins 400 (MAIN_MAX_BINS overrides), and the lane shell draws 600 cards with 600 workers instead of 200/150. 2. TWO LANES GATE, SO READ BOTH LOGS — a defect I introduced this session. The in-flight exclusion derived "this wave has been gated" from .run/gater.log only, but the main lane gates its own waves into .run/main_lane.log. Every m## wave therefore looked permanently in flight and main's draw lost 425 cards to an exclusion meant for work in progress. 3. TAIL_DONE_FRAC 0.80 -> 0.65. At 0.80 the fleet runs 2-3 overlapping waves at ~250 req/min; the residual troughs are the gap between one wave draining and the next ramping. 65% keeps 3-4 waves overlapping. Stragglers keep their full 700s grace in the finisher thread — this changes when the NEXT wave starts, never what lands. 4. ATOMIC ATLAS WRITE. The lanes read .run/atlas.json at every draw and atlas.py dumped straight onto it, leaving a truncated file readable for the length of the write. Now written to .tmp and os.replace'd. Context for 1-3: the atlas both lanes draw from is dated 08-23 01:13 — two days stale, predating ~4,600 banks — and its regen chain is running now (its own R32 assertion caught a stale family map first and named the fix).
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 inov_SC01_077and propagated ×134 viatools/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.