re: the .slb leading region is 1392+n*2048 — and my fix for it is withdrawn

The structure is exact. In all five resupply banks the first RIFF sits at
HEADERLESS_DATA_OFFSET + n*2048, where 1392 is a constant this crate already
had and 2048 is the XMA1 packet size: n = 8, 1, 7, 22, 29. No free parameter
to tune, and the raw bytes agree -- high entropy from offset 0, then a zero
run immediately before the RIFF. VOICE_D_451 is the control, its single
packet being all zeros.

So I made the obvious fix, emitting that region as a sub-wave, and then
withdrew it on two measurements:

* It does not recover audio. Coverage went 5.4% -> 89.9% for VOICE_D_453, but
  the emitted stream decodes through FFmpeg to 1792 PCM bytes -- silence --
  while the RIFF sub-waves from the same banks decode to 150-270 KB. Byte
  coverage was the wrong success metric and it looked like progress.
* It is not narrow. The rule matches 1524 of the 8021 RIFF-bearing entries in
  sound.pak, including RT* movie banks that decode correctly today. Landing
  it would have risked a wide regression in order to not-fix five banks.

to_xma_riffs is back to its previous behaviour, verified by re-measuring:
coverage is 5.4% / 9.7% again. The refuted attempt is recorded in the code
beside the branch it would have changed, so the next person does not
re-derive the arithmetic and re-make the change.

XMA1_PACKET is kept as a named constant because the blast-radius scan uses
it. Artifacts: examples/voice_bank_shape.rs (structure), voice_bank_dump.rs
(sub-waves for decoding), slb_hybrid_scan.rs (the 1524 count).

Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com>
Claude-Session: https://claude.ai/code/session_01PMRJjbxLqZtsb5Vb7KunPE
This commit is contained in:
Sylpheed RE agent
2026-08-25 23:30:42 +00:00
parent 0cf0cda09e
commit 61387d5ceb
6 changed files with 133 additions and 6 deletions

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@@ -0,0 +1,31 @@
//! How many `.slb` banks would a "leading headerless stream" rule affect?
//!
//! The rule fires when the first `RIFF` sits at exactly
//! `HEADERLESS_DATA_OFFSET + n*XMA1_PACKET` with a non-zero leading region.
//! Before trusting it, count how many banks it would change — including the
//! `RT*` movie banks that already decode correctly today.
use sylpheed_formats::{slb, PakArchive};
fn main() {
let disc = std::env::var("SYLPHEED_DISC").expect("set SYLPHEED_DISC");
let snd = PakArchive::open(format!("{disc}/dat/sound.pak")).expect("sound.pak");
let (mut total, mut has_riff, mut hybrid, mut hybrid_nonzero) = (0, 0, 0, 0);
for e in snd.entries() {
let Ok(b) = snd.read(e) else { continue };
total += 1;
let Some(ri) = b.windows(4).position(|w| w == b"RIFF") else { continue };
has_riff += 1;
if ri > slb::HEADERLESS_DATA_OFFSET
&& (ri - slb::HEADERLESS_DATA_OFFSET) % slb::XMA1_PACKET == 0
{
hybrid += 1;
if b[slb::HEADERLESS_DATA_OFFSET..ri].iter().any(|x| *x != 0) {
hybrid_nonzero += 1;
}
}
}
println!(
"sound.pak entries {total}; with a RIFF {has_riff}; \
first RIFF at 1392+n*2048 {hybrid}; of those with a NON-ZERO leading region {hybrid_nonzero}"
);
}

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@@ -0,0 +1,19 @@
//! Dump each resupply voice bank's sub-waves to `.xma` RIFFs for decoding.
use sylpheed_formats::{slb, PakArchive};
fn main() {
let disc = std::env::var("SYLPHEED_DISC").expect("set SYLPHEED_DISC");
let out = std::env::var("OUT_DIR_X").unwrap_or_else(|_| "/tmp/voicebanks".into());
std::fs::create_dir_all(&out).unwrap();
let snd = PakArchive::open(format!("{disc}/dat/sound.pak")).expect("sound.pak");
for n in 450..=454 {
let path = format!("eng\\etc\\VOICE_D_{n}.slb");
let Some(entry) = snd.find_by_name(&path) else { continue };
let bytes = snd.read(entry).expect("read");
for (i, r) in slb::to_xma_riffs(&bytes).iter().enumerate() {
let f = format!("{out}/VOICE_D_{n}_{i}.xma");
std::fs::write(&f, r).unwrap();
println!("{f} {} bytes", r.len());
}
}
}

View File

@@ -55,6 +55,15 @@ fn main() {
};
let tail = &bytes[last..];
let zeros = tail.iter().filter(|b| **b == 0).count();
// Dump the first bytes of the leading region so its structure is
// visible rather than guessed at.
let hex: String = head
.iter()
.take(48)
.map(|b| format!("{b:02x}"))
.collect::<Vec<_>>()
.join(" ");
println!(" head[0..48] {hex}");
println!(
"{:<14} {:>7} {:>6} {:>6} {:>6.1}% 1st RIFF @{:>6} data chunks {} head {:>5.1}% zero/{:>3} distinct tail {:>5} B ({:>5.1}% zero) {:?}",
format!("VOICE_D_{n}"),

View File

@@ -23,6 +23,10 @@
/// Fixed offset of the raw XMA1 stream in a headerless `.slb` (no `RIFF`).
pub const HEADERLESS_DATA_OFFSET: usize = 1392;
/// XMA1 packet size. A headerless stream is always a whole number of these, which
/// is how a leading stream is told apart from arbitrary bytes before a `RIFF`.
pub const XMA1_PACKET: usize = 2048;
/// Voice language for cutscene audio. Only English and Japanese voice exist on
/// the disc (subtitles cover more languages, voice does not).
#[derive(Debug, Clone, Copy, PartialEq, Eq)]
@@ -138,6 +142,22 @@ pub fn to_xma_riffs(slb: &[u8]) -> Vec<Vec<u8>> {
}
return out;
}
// ❌ A "leading headerless stream" rule was tried here and WITHDRAWN.
//
// The structure is real: in all five resupply banks the first `RIFF` sits at
// exactly `HEADERLESS_DATA_OFFSET + n*XMA1_PACKET` (n = 8, 1, 7, 22, 29), and
// 87 % of `VOICE_D_453` lies in front of it. Emitting that region as a
// sub-wave raised byte coverage from 5.4 % to 89.9 %.
//
// But byte coverage was the wrong success metric. The emitted streams decode
// to **1792 PCM bytes** — silence — through the same FFmpeg path that decodes
// the RIFF sub-waves fine, so the region is not XMA1 under the synthesised
// format. And the rule is not narrow: it matches **1524 of the 8021**
// RIFF-bearing entries in `sound.pak`, including `RT*` banks that decode
// correctly today. Landing it would have risked a large regression to fix
// five banks it does not actually fix.
//
// See docs/re/voice-bank-leading-region.md.
let mut pos = 0usize;
while let Some(ri) = find(slb, b"RIFF", pos) {
// Parse this sub-wave's fmt + data (declared size is honest per sub-wave).