New aacs::segment_key: parses the AACS 2.1 SegmentKeyNNNNN.tbl container, confirmed against a retail disc as an 8-byte header + 65536 records of 536 bytes, indexed by the 16-bit variant selector the Media Key Variant chain produces. This is the confirmed link between the two 2.1 variant layers (selector picks the device's per-segment variant). The per-record 528-byte payload layout is not yet reversed.
New aacs::segment: parses the AACS 2.1 IndividualSegment.tbl into the source-packet ranges of the forensic variant segments (validated against a retail disc: 792 segments, 2560 packets each). First piece of the FMTS variant decoder — the segments' variants are encrypted under segment keys, not the unit key, so a unit-key rip corrupts them (broken HEVC refs).
aacs::boil was a thin newtype veneer over aacs::derive — a duplicate layer.
Delete it: move the shared key newtypes (Vid, MediaKey, Vuk, ProcessingKey,
UnitKey) into aacs::types, and expose resolve_candidate + KeyCandidate from
aacs::derive directly. Downstream (keysource, disc::encrypt) now import from
aacs::{derive,types}. Pure API consolidation, no behaviour change; full test
suite green on Rust 1.86.
The module structure is the public API, but the typed key primitives
(MediaKey/UnitKey/Vid/Vuk, mk_from_dk/mk_from_pk/uk_from_vuk/vuk_from_mk),
derive_vuk, the aligned-unit decrypt entry points, and DeviceKey/HostCert
are load-bearing names that downstream key-source crates import through the
flat `aacs::` path. Re-export them here so those crates can track the
module refactor without a lockstep re-pin.
Redesign derive_media_key_variant to the minimal derivation surface:
derive_media_key_variant(mkb_records, pk) -> Km
- PK-input only. Deriving Kp from device keys (DK -> PK) is a separate
concern (walk_processing_key); a leaked 2.1 key is a PK, and the chain
starts at Kp. A bare PK arrives without its subset-difference slot, so
the primitive tries it against every slot and returns the Km for the
slot that passes the MKB's Verify-Media-Key record -- mirroring the
classical bare-PK derive_media_key_from_pk, gated by the chain's own
verify so an unverified key is never returned.
- VID-free: the Media Key is MKB-scoped. VUK stays the separate
derive_vuk(Km, VID) step.
- KCD is a fixed algorithm constant compiled in, not a caller parameter
(removes the kcd argument, the placeholder const, and KcdNotProvided).
- Soft-correction / online-challenge slots are treated as non-covering;
surfaced over the generic miss so a disc needing those modes is
distinguishable from a non-covering key.
resolve_keys_v21 updated to walk DK -> PK first, then call the primitive
and derive the VUK from Km + VID. Module + helper docs refreshed to the
pinned record layout; tests reworked for the PK-only signature.
variants_for_uv previously returned None (placeholder), dead-stopping the
Media Key Variant chain at VariantsTableUnavailable on any real disc. Layout
now pinned against two real 2.1 variant MKBs (Zombieland v70, Stand By Me v70):
the 0x2d Encrypted-Media-Key-Variant-Data body is sd_count u16 VARIANTS entries
(1:1 with 0x0c cvalues / 0x04 subset-diffs) followed by the 16-byte per-disc
Nonce at the tail. variants_for_uv reads the sd_slot_index-th u16.
With this the chain runs fully: Kmp -> Kpnew(=Kmp^KCD, extracted CyberLink
constant) -> VKD(0x2f) -> Km -> Kvu. The only remaining input is a covering
2.1 Processing Key to validate against a known answer; until then the final
Verify-Media-Key (0x86) gate rejects any wrong layout pick, so a bad key can
never be emitted. Tests updated to reflect the wired lookup; 1.86 precommit
green (fmt+clippy+tests).
The volume_key module was only 34 lines and is just the tail of the same
DK/PK -> MK -> VUK -> UK derivation ladder as media_key. Fold both into one
derive module so every aacs module is a substantial, distinct responsibility
(crypto/mkb/derive/inf/content/variant/resolve). Relocation only; logic hash
identical (95fb9924); 2210 tests green.
Break the 2800-line keys.rs into four responsibility-scoped modules:
- media_key.rs: DK/PK -> Media Key subset-difference walk (+ probe harness)
- volume_key.rs: VUK derivation, unit-key unwrap
- inf.rs: Unit_Key_RO.inf parsing, disc_hash, content cert, in-drive MKB read
- resolve.rs: the resolve_keys_* orchestration (keys.rs renamed)
Relocation only; the (white-box) test suite stays in resolve.rs and pulls
the moved items via glob imports. Proven byte-identical to the pre-refactor
state via the logic hash (95fb9924); 2210 tests green.
Relocate the shared MKB machinery into a single mkb module: the record
framing walker + MkbRecord view (from variant), the MkbType/AacsVersion
classification, the MKB-file utilities, and the record-body finders (from
keys). Fixes the inversion where the MKB parser lived in the 2.1-only
variant module. variant.rs keeps its local MkbRecord-based mkb_find_mk_dv
(name collision with the raw one; unified in the dedup follow-up).
Relocation only. Proven byte-identical to the pre-refactor state via the
function-body logic hash (imports normalized out); 2210 tests green.
Relocate the shared low-level primitives into a single crypto module:
aes_ecb_encrypt/decrypt, aes_cbc_decrypt, aes_g (from content/variant) and
aesg3 + AESG3_SEED (from keys), plus AACS_IV. Fixes the scatter where AES-G
lived in the 2.1 file and AES-G3 in keys. Relocation only — no rename, no
logic change (logic-hash identical to baseline; 277 items; 2210 tests green).
Pure file+module-path rename. 'content' names the AACS unit-decrypt layer
(distinct from the top-level sector-decrypt driver crate::decrypt), and
'variant' (singular, spec term 'Media Key Variant') names the 2.1 chain.
Logic-hash identical to baseline; 277 items intact; tests green.
Add [C]/[PR]/[BD]/[libaacs] §x.y provenance markers across the AACS
crypto so each primitive links to the spec section it implements, with a
source-tag legend in mod.rs. Doc-comments only — no logic, constant, or
signature changes.
Also: correct two stale record-type comments in variants.rs (0x82/0x83 →
the real 0x2d/0x2f) and document the Variant Number width (spec lsb_10 vs
the 2.1 chain's lsb_16, driven by the 65,535-entry VKD table).
The Media Key Variant scheme is detected and parsed via the actual MKB
record types found on a real variant disc:
- 0x2d Encrypted Media Key Variant Data (C)
- 0x2f Variant Key Data table (65,535 x 16)
- 0x0c variant cvalues (one per 0x04 subset-difference slot)
Replaces the earlier placeholder 0x82/0x83 record types, which were a
guess and appear on no real MKB. is_variant_mkb, the record finders, and
the subset-difference cvalue source (now 0x0c, falling back to 0x07/0x05)
are updated accordingly, along with the V20->V21 upgrade detection in
resolve_keys_v2 and its fixtures.
The variant chain still halts at variants_for_uv (the VARIANTS[uv] /
Nonce sub-field offsets need a covering key to confirm end-to-end
against the 0x86 verify), so a best-effort offset is never silently
trusted. All 27 variant tests pass on Rust 1.86.
A Processing Key is the key at its Subset-Difference node — one AES-G from
the Media Key — so it is tried directly against the MKB cvalue tables,
matching libaacs _calc_mk_pks (iterate PKs × cvalues). The prior code
treated every PK entry as a device-node label at unknown depth and BFS-walked
the SD tree (depth 3, capped 5), which was both wrong for terminal PKs and
~15x slower on a large UHD MKB (~181k cvalues): PK derivation on UHD dropped
from ~37s to ~2.4s.
The Subset-Difference tree walk now lives solely in the device-key path
(derive_media_key_from_dk), which owns per-node path bits; the PK path never
descends. Removed PK_WALK_MAX_DEPTH / _CAP / _walked / walk_pk_against_tables_impl;
renamed the core scan try_pk_against_tables and its probe test.
Precommit (Rust 1.86): fmt + clippy + tests green.
resolve_candidate(candidate, mkb, unit_key_ro, vid) -> ResolvedChain: one
composed, PURE-DERIVATION boil-down for a candidate key at any ladder rung
(KeyCandidate::{Uk,Vuk,Mk,Pk,Dk}, each carrying the module's newtype). Walks
DK/PK/MK/VUK -> terminal unit keys, parsing Unit_Key_RO.inf at the version
the disc's MKB declares, and returns every CPS unit key as (cps_unit, key)
(matching ResolvedKeys) plus the intermediate chain. No sampling/validation
(that's the caller's unit_key_validates) and no position recovery (Dk is a
positioned DeviceKey; recover_dk_position first). Adds ProcessingKey newtype.
Consumers stop re-composing the ladder; every client hardens one impl.
Correct mk_from_dk: real Subset-Difference walk (derive_media_key_and_pk_from_dk)
instead of the Media-Key-Variant path, which needed integrator KCD absent
in-tree and Err'd for every real disc -- dead for both consumers. Drops the
now-unused vid arg.
Rewire the three unlock dispatch points through the freemkv-unlock crate via a
private `unlock_bridge`: drive-prep (kind=Unknown) at `Drive::init`, AACS cert
(kind=Aacs) at `do_handshake_cert`, CSS bus-auth (kind=Css) at scan. The bridge
news up `all_unlockers()` and runs the first matching one, mapping its
`Unlocked` result to the bus-key gate. After a successful drive unlock,
libfreemkv issues a generic SET CD SPEED (max) itself — the old per-unlocker
trait method is gone.
Delete the in-tree unlock code now owned by freemkv-unlock: the AACS cert
handshake (`aacs/handshake.rs`), the CSS bus-auth (`css/auth.rs`), and the
unlock registry (`unlock.rs`). Host-cert collection (a keysource concern) stays
in a small `aacs/host_certs.rs`. No public unlock surface remains — clients
touch libfreemkv only, oblivious to unlockers (as they are to SCSI). 2277 tests
pass.
Pull the wedge-guarded cert loop and host-cert collection out of the in-tree
AacsCertUnlocker into public aacs::handshake primitives (run_cert_handshake +
CertHandshake, collect_host_certs). The in-tree path now delegates to them, so
the external freemkv-unlock-aacs plugin runs the IDENTICAL cert handshake — one
implementation, two callers. Pure refactor of the live AACS path; the existing
handshake + collect_host_certs unit tests validate it unchanged.
Replace route_unlock's Option<(name, Vid)> with a structured UnlockRoute
{ Unlocked(name, Unlocked) | Failed(UnlockError) | NoMatch } so a single
dispatch serves every caller: drive-prep wants "did anything unlock", and the
AACS cert route (next) needs the FAILURE REASON to render "missing keys" vs
"host cert rejected" instead of collapsing it to a bare None. Only a genuine
SCSI transport fault still returns Err (abort). UnlockCtx gains an optional
ScanOptions (the cert route's host-cert source), and read_mkb_from_drive now
takes &mut dyn ScsiTransport — both prerequisites for the cert handshake to
become an external freemkv-unlock-aacs unlocker. Drive-prep + CSS callers fold
the new outcome; no behavior change.
The AACS cert-auth primitives (aacs_authenticate, the AACS 2.0 P-256
variants, read_volume_id, read_data_keys) and their scsi_read/scsi_write
helpers touched the drive ONLY through Drive::scsi_execute — a pure
pass-through to the transport. Thread &mut dyn ScsiTransport instead of
&mut Drive so these primitives are transport-level, matching the firmware
Unlocker seam (which hands out &mut dyn ScsiTransport for testability).
Pure mechanical signature change, no logic change; the cert orchestrator
(do_handshake_cert) keeps &mut Drive for the OEM-VID shortcut and passes
session.scsi_mut() into the primitives. Step toward making the cert
handshake a uniform registry unlocker.
The bus-key gate only credited the cert handshake's read_data_key as proof
bus encryption was removed. A firmware unlocker removes it AT THE DRIVE
(serves clear content) and yields no read_data_key — so a SUCCESSFUL
firmware unlock (VID present, read_data_key None) tripped the gate and
blocked ALL key resolution, including the online source. That was the
root cause of live UHD discs reporting "missing keys" after an unlock.
Now a single predicate answers "is bus encryption gone?": never-had-it ||
file/ISO || firmware-unlocked || cert-bus-key. The gate is just
`if !bus_encryption_removed { error }` — no enumerated cases. HandshakeResult
gains `drive_unlocked`, and the read_data_key failure reason is captured so
the warn says WHY the bus key is missing.
Also: reword the first hardware-sense escalation as "fast-fail escalation"
(it is often transient — the drive recovers), reserving "wedge" for a
persistent run; and scrub the product name from core comments (it belongs
only in the unlocker crate).
Non-blocking follow-ups from the 1.2.0 audit:
- conceal loop: if decrypt reported loss but the padding-aware predicate
matched nothing to conceal (a ~256^-31 contradiction), fall back to the
strict predicate and conceal whatever it flags, loudly — belt-and-
suspenders so ciphertext can never reach the mux.
- decrypt_dropped doc: reflect 1.2.0 (mux-path loss is concealed + tallied,
not silently dropped).
- direct unit test for aacs_unit_still_ciphertext (the padding-aware
conceal predicate): clear/all-zero/full-decrypted/full-ciphertext/
decrypted-short-tail.
- fix three stale "v1.1.1" comment refs (the fragment-tail fix ships in
1.2.0; there is no v1.1.1 release).
Closes the three residual holes where a concealed/lost gap could still let
a dangling-reference frame reach the muxer (degraded/undecryptable-disc
path only; clean rips are byte-identical and untouched). Root cause: the
discontinuity signal was reconstructed from the 4-bit continuity counter
and applied per-PES, both of which are lossy.
Three coordinated changes:
1. CC-INDEPENDENT marker. fill_null_ts_unit now tags its NULL packets with
an adaptation-field discontinuity_indicator; the demuxer recognises a
0x1FFF packet carrying it as a concealed gap and forces a discontinuity
on every tracked PID (the lost unit's PID is unknowable). This survives
a loss that is an exact multiple of 16 packets (CC aliases to in-sequence
— hole 3) and a loss at a PID's very start (no prior CC — hole 4); it
also drops any open, potentially-truncated partial PES.
2. PUSI ATTRIBUTION. A gap landing on a PES boundary now flags the PES
STARTING after it, not the one flushed at the boundary (hole 1) —
stamping the pre-gap frame could arm-then-disarm the gate on a keyframe
and admit the real post-gap inter frame.
3. PER-FRAME signal. codec::Frame gains `discontinuity`; each parser
propagates it onto the first post-gap frame. MPEG-2 buffers whole GOPs
asynchronously, so it associates the gap by ES OFFSET (like PTS/source),
landing it on the exact post-gap picture mid-GOP (hole 2) — a per-PES
flag stamped the previous picture. consume_ts (and the EOF flush drain)
gate on frame.discontinuity.
Tests: CC-independent marker with in-sequence CC + leading-loss; PUSI
attribution flags the post-gap PES; MPEG-2 offset-mark stamps the post-gap
picture through GOP reorder, not the previous one. Existing B1 gate + EOF
tests still green (2270 lib tests).
The P3 concealment loop in DecryptingSectorSource::read_sectors keyed on
aacs_unit_needs_decrypt, whose sync check is the majority-vote
ts_sync_destroyed (<=16 of 32 syncs). A successfully padding-aware-
decrypted content-fragment TAIL unit (e.g. 11 content packets + 21 zero
padding) has only 11 syncs, so the majority vote called it "still
encrypted" — and when such a good unit shared a read buffer with a
genuinely-undecryptable one (dropped>0), the loop overwrote the GOOD
decrypted tail with NULL-TS, silently discarding correct video and
over-counting concealed units vs the tallied dropped bytes.
Add aacs_unit_still_ciphertext (padding-aware): encrypted AND at least
one non-zero (non-padding) 192-byte packet missing its 0x47 sync — the
same discriminator decrypt_unit uses to accept a fragment tail. The
conceal loop now uses it, so only genuinely-unrestored ciphertext is
concealed. Full and fully-ciphertext units are unchanged. Regression
test: a decrypted short-padding-tail co-resident with a failed unit is
left byte-for-byte intact while the failed unit is concealed.
Decrypt-verify is a RIP gate, not a MUX gate. On the mux read path an
undecryptable content unit must never abort the mux:
- DecryptingSectorSource gains tolerate_decrypt_loss(): when set, an
undecryptable in-content unit is tallied, overwritten with valid NULL
TS packets (PID 0x1FFF) via aacs::fill_null_ts_unit, logged loud with
its LBA, and the read returns Ok — the stream keeps flowing. The rip
paths keep the fail-loud DECRYPT_VERIFY_READ decorator (re-read off the
disc); only the mux opts in.
- Wire it into both mux read paths: the file-backed highway
(build_iso_pipeline) and the inline DiscStream.
- NULL-TS fill keeps the demuxer byte-synced on the 192-byte stride; the
lost video/audio PID packets surface as a CC gap the TS assembler
already drops a partial PES on (the B1 foundation). Ciphertext is never
passed downstream either way.
- Fix stale resolve_vid_only no-cert test: default is UHD (audit #4).
Tests: conceal-as-NULL-TS, fill well-formedness, fail-loud still holds.
- read_aacs_inputs* now returns the AACS major version; DiscInputs carries it,
and DiscInputsCtx parses Unit_Key_RO.inf at the disc's own stride (fixes the
hardcoded-V20 read-time fetch for V10 discs). One source of truth, no version
argument to drift.
- Disc::inputs() is the single complete AACS-input source (inf/MKB/VID/hash/
version); the out-of-band duplicate readers go away.
- Named constants for AACS file paths (aacs::PATH_*) and the AACS majors
(aacs::AACS_MAJOR_*, AacsVersion::major/from_major) replace magic strings/ints.
- push_ranges saturating (corrupt-disc panic guard).
- decrypt_unit: padding-aware acceptance — recover real video at content-
fragment tails (the phantom mux-loss class) without weakening wrong-key
rejection (a full content unit still needs all 32 TS syncs).
- scan: read the MKB via the bounded read_mkb_content so Disc::inputs()
carries it. Online key resolution was shipping mkb=0 (a full read of the
~128 MiB MKB_RO allocation fails) → the decode service 404'd.
- resolve_vid_only: surface an MKB read error instead of silently emptying.
- fetch: a per-sample dry-set replaces the global fetch_spent latch, so a
second CPS unit's key can still be fetched after the first came back empty.
- verify::push_ranges: saturating arithmetic (corrupt-disc panic guard).
- Tests for all of the above.
ContainerKind {Ts,Ps} + ClipLayout.container thread the post-decrypt structural check per clip; decryptability() dispatches it (TS: unit_is_clean_ts, PS: unit_is_clean_ps). New decrypt_unit_checked(unit,key,accept) decouples the container-agnostic AACS crypto from the format-specific acceptance (decrypt_unit delegates with the TS check). unit_is_clean_ps is the MPEG-2 PS pack-start check, documented UNVALIDATED for HD-DVD (.evo unit/seed/pack alignment must be confirmed on real media). clip_layouts assigns Ts today; .evo->Ps is the one-line HD-DVD hook.
reverify_iso now takes an is_finished predicate and SKIPS any unit with a non-Finished backing sector: we can't verify what wasn't read (a non-Finished sector is zero-filled because the drive read failed there), and must never waste a key lookup on a block the read already knows is bad. observe() (sweep) was already safe (only fed Good bytes).
Post-read verify gate (new src/disc/verify.rs): UnitVerifier buffers/aligns the disc-absolute read stream into clip-file 6144-byte units, then makes one decryptability() decision per unit (CPI gate -> held keys -> key_fetch -> strict TS). POST_READ_VERIFY const kill-switch; fail-safe contract (only ever downgrades units it is confident are undecryptable; every doubt skips). Hooked into Disc::sweep (producer observes ciphertext -> WorkItem::MarkBad after the Good, FIFO-ordered) and Disc::patch (post-loop reverify_iso reads recovered units whole from the patched ISO). extract::clip_layouts enumerates AACS clips for the gate.
Standards-correct AACS verify: aacs::unit_is_clean_ts is a strict port of libaacs _verify_ts (all 32 TS syncs, not a majority vote); decrypt_unit accepts a key only on it; the majority verify_ts is removed. Deleted the Disc::verify_clips post-pass bolt-on (its primitive is absorbed by the read-path gate).
libaacs/DVD audit fixes: content-cert bus_encryption flag now read from bit 7 (was bit 0 - defeated the bus-key fail-loud gate); cc_id read from offset 14; title_cps_unit range-validated + 1->0 index-converted per libaacs. Corrected attack_crib ("functionally-equivalent" not "exact" port) and read_disc_key (READ DVD STRUCTURE 0xAD, not REPORT KEY) doc comments.
Also includes accumulated uncommitted work: key-fetch seam and TrueHD/DTS audio fix.
Surgical fixes (each with a regression test that fails without the change):
mux/mkv.rs, mux/demux_sink.rs: drive the clip-boundary timeline epoch
off the resolved PRIMARY VIDEO track, not the literal stream index 0.
An M2TS/PMT title can list an audio ES before video, so streams[0] may
be audio; a non-video epoch driver ratchets the frontier and inflates
the timeline. mkv cluster-opening falls back to track 0 for audio-only
titles so they still open clusters.
mux/codec/ac3.rs: correct ACMOD_CHANNELS — acmod=5 (3/1) is 4 channels,
not 3 (was undercounting a 3/1 stream); fix the A/52 Table 5.8 doc.
disc/mod.rs: HDMV coding_type 0x91 (Interactive Graphics / menus) no
longer maps to PGS subtitle — it falls through to Unknown so the PMT/STN
walker drops it instead of surfacing a bogus subtitle track.
mux/videomap.rs + mux/mkv.rs: FVI colour now mirrors the MKV muxer's CICP
precedence (measured CICP authoritative; HDR-driven PQ/HLG transfer
override) via a shared cicp_for_video helper, so the two sinks can't
disagree (HDR10 BT.2020 no longer emits SDR transfer 14).
mux/mkvstream.rs: saturating_add on cluster_ts + rel_ts so an adversarial
CLUSTER_TIMESTAMP near i64::MAX can't overflow/panic before the existing
saturating_mul.
mux/timeline.rs: tighten the tail-straggler clamp so a normal new-epoch
non-video frame leading the sparse video frontier by >3s is not demoted
into the previous clip's epoch.
mux/m2ts_mux/mod.rs: re-stamp PCR per video TS packet (mid-PES), not only
at PES boundaries, so a large UHD I-frame can't open a multi-second PCR
gap; modular 33-bit PTS rebasing so a real 90 kHz clock wrap is not
collapsed to PTS 0 (pre-base frames still floor to 0).
io/byte_prefetcher.rs, sector/prefetched.rs: wrap the producer feed loop
in catch_unwind and emit a typed error sentinel on panic, so a mid-stream
producer panic is not read as a clean EOF at the demux boundary (which
would silently truncate the mux).
mux/codec/h264.rs: extend HIGH_PROFILES to the full ISO/IEC 14496-15 set
that mandates the avcC chroma/bit-depth extension (adds 244 et al.).
Doc/comment accuracy: css/mod.rs (50000 sectors, not scrambled-sectors),
aacs/decrypt.rs (decrypt_unit already-clear path), ifo.rs (TT_SRPT at
0xC4), css/lfsr.rs (LFSR0 24-bit; TAB1-then-XOR cipher; real scramble-flag
predicate), disc/read_error.rs (for_sweep does bounded transient retries).
Skipped: keydb.rs SSRF guard (low/latent, no live caller) — a hard
loopback block breaks an existing behavioral test that exercises the
header-EOF path over a loopback server; a clean fix needs a resolver test
seam beyond this surgical pass. The sibling keydb_fetch.rs comment fix is
out of scope (freemkv crate).
mux/mkv: assert emitted CODEC_PRIVATE bytes verbatim for H.264/HEVC/VC-1/
MPEG-2 (direct TrackEntry child, not nested in Video) and DefaultDuration ns
for all eight frame rates, read back out of a real MkvMuxer.
disc/sweep: end-to-end Disc::sweep against a synthetic MockReader with an
injected bad region, asserting the resulting mapfile marks the clean lead
Finished and the failed batch + zero-filled skip-ahead gap NonTrimmed,
proving the Pass-1 damage-jump engaged.
disc/patch: introduce a minimal clock seam (fn() -> Instant on the internal
PatchLoopState, defaulting to Instant::now) so the per-range and whole-pass
watchdogs are deterministically testable; public API and callers unchanged,
production behavior identical. Add tests that advance a fake clock to trip the
range budget and whole-pass stall predicate.
aacs: add an AES-128-CBC known-answer test for aes_cbc_decrypt using the
published NIST SP 800-38A F.2.2 vector (blocks 1..3 exact; block 0 via the
documented fixed-AACS-IV substitution).
Targeted tests for the rc.6 surfaces, strengthening (not duplicating) the
regression tests the rc.6 commits already shipped. No production code changes.
aacs/keys.rs — resolve_keys_with_reason / classify_resolve_failure:
The E7021/E7022 split is already proven end-to-end through the
ensure_decryptable gate (disc/mod.rs). These pin the classifier directly at
the keys.rs seam for the branches the gate test does not reach:
- processing-keys-only + zero VID -> VidUnavailable (the gate test only
exercises the device-keys arm of has_derivation_material).
- VID PRESENT + material -> NoMaterial: a non-zero VID must never be
reported as VidUnavailable however much material is on hand (the has_vid
short-circuit; the gate test only uses the zero-VID sentinel).
- VID present + no material -> NoMaterial.
- version dispatch: version 1 routes the V10 resolver (stamps V10), any
other value routes the V20->V21 chain; a resolved disc returns Ok, never
Err(ResolveFailure).
unlock.rs — Unlocker seam introspection + ordering:
- matching_name reports the first matching unlocker without running it, and
is None for an unsupported drive; registered_count grows after a
registration (monotonic check — the registry is process-wide and shared
across the unlock tests, so no exact-delta assertion).
- route_unlock first-registered-match-wins: two unlockers matching the same
identity, the earlier-registered one runs and the later is never consulted.
When key resolution had derivation material (device or processing keys)
but no Volume ID was available to derive the unit key, surface
Error::AacsVidUnavailable instead of the generic NoDiscKey. When there
was no usable key material at all, keep NoDiscKey.
resolve_keys_classical / resolve_keys_v21 still return a bare
Option<ResolvedKeys> (all existing callers unchanged); a new
resolve_keys_with_reason wrapper threads the typed ResolveFailure
(VidUnavailable | NoMaterial) out. decrypt_with uses it; the
ensure_decryptable_keys gate maps a captured AacsVidUnavailable reason to
E7021, otherwise E7022. No decryption math, key derivation, or descramble
logic changed -- only the reason reported on a resolution failure.
Adds ensure_decryptable_aacs_vid_unavailable_vs_no_key proving both
branches (device-keys + zero VID -> E7021; no keys -> E7022).
1. HEVC CRA->BLA false-trigger on 33-bit PTS wraparound
(src/mux/codec/hevc.rs): the clip-boundary auto-detect compared the
RAW 33-bit PES PTS against the high-water mark, so a single-clip title
crossing 2^33->0 (~26.5h) false-armed pending_clip_boundary and rewrote
a legitimate in-clip CRA(21)->BLA_W_LP(16), dropping valid RASL pictures
(visible corruption) and breaking the single-clip byte-identical
guarantee. Now unwrap the PTS onto a monotonic 64-bit timeline first
(a near-full-period backstep is a wrap: add 2^33, update the watermark,
do not arm). Regression test cra_after_33bit_pts_wrap_not_rewritten;
the genuine-clip-join test still passes.
2. Single-pass recovery read bypassed the transport-failure abort
(src/mux/disc.rs): the line-442 short-circuit only inspected the 10s
read res. A transport failure (status 0xFF, wedged USB bridge) on the
60s recovery read fell into the skip_errors branch and zero-filled/
advanced, marching the disc at one bridge-recovery per probe
(run-forever, hard rule #2). Re-check the recovery error for
is_scsi_transport_failure() before the skip block and abort with
Error::DiscRead. Test transport_failure_on_recovery_read_aborts_even_with_skip_errors.
3. Recovery-read SUCCESS branch had no coverage (src/mux/disc.rs tests):
added RecoverableReader (errors when recovery=false, succeeds when
recovery=true) and test recovery_read_success_muxes_recovered_data_no_skip
driving fill_extents to the size-1 bottom-out and asserting the recovered
data is muxed (counters advance, no skip).
4. TrueHD channel-correction probe omitted set_unit_base
(src/disc/mod.rs correct_truehd_channels): the probe read via a
DecryptingSectorSource without anchoring the AACS unit-alignment gate,
so it degraded to absolute start_lba % 3 and returned DecryptFailed on a
non-3-aligned extent, silently understating Atmos/7.1 as 5.1. Now call
set_unit_base(ext.start_lba) before the probe read (no-op for CSS/None).
5. is_unit_aligned lba<unit_base latent trap (src/aacs/decrypt.rs):
wrapping_sub mis-gated when lba < unit_base (2^32 == 1 mod 3). Switched
to saturating_sub (clamps offset to 0, a unit boundary) and pinned the
contract with is_unit_aligned_lba_below_base_is_well_defined plus
is_unit_aligned_relative_to_base.
cargo +1.86 fmt --check / clippy -D warnings / test --tests all green.
The AACS unit-alignment gate measured `lba % 3` against absolute disc LBA 0,
but aligned units are anchored at each clip's encrypted-region start. A clip
whose start_lba is not 3-aligned had its readable units wrongly rejected with
"Decryption failed" (the big-title-only failure on some Blu-rays). One
canonical clip-anchored helper (`aacs::is_unit_aligned`) is now the single
source of truth for the decrypt-on-read gate; both mux read paths set the
per-extent `unit_base = start_lba` via a new `SectorSource::set_unit_base`.
Also moves key *mechanism* into the library: the encrypted sample reader
(`read_encrypted_units`) and the candidate-key resolution loop
(`resolve_and_apply`) now live here, so a key source is purely a lookup.
Regression test covers a clip based at a non-3-aligned LBA.
- keydb.rs: separate default_path()/no_home_dir() doc blocks; correct the
false XDG lock-step claim (Linux write path uses $HOME, ignores
XDG_CONFIG_HOME; read-side search also checks XDG_CONFIG_HOME).
- io/pipeline.rs: use Release/Acquire on the abandoned flag so a leaked
consumer reliably skips close() on weak memory models (ARM64/POWER),
not just x86 TSO.
- mux/disc.rs: cache the decrypt-loss Arc at construction; lost_bytes()
no longer clones an Arc per frame on the mux hot path.
- disc/dvd.rs: assert display_aspect mapping for both 16:9 (PAL test) and
4:3 (NTSC test).
- mux/resolve.rs: extract css_error_aborts() helper and unit-test the
scrambled-but-uncracked CSS guard (Fix 6) incl. the --raw exemption.
- aacs/keys.rs: add unit tests for mkb_type_raw/mkb_type/mkb_is_uhd and
MkbType (Category C 2.0 UHD, prerecorded 1.0, no-0x10-record None).
- release.yml: publish job needs [verify, test] so a failing test suite
blocks crates.io publication.
Expose the MKB Type field (record 0x10) as a typed MkbType enum with mkb_type()
/ mkb_type_raw() / mkb_is_uhd() helpers, so callers can distinguish AACS 1.0
(Blu-ray) from AACS 2.0/2.1 (UHD) discs without poking raw bytes.
A SEND KEY / REPORT KEY step in the bus-auth handshake mapped every
SCSI error to a cert/key-specific code (AacsCertRejected, AacsCertRead,
AacsKeyRead, AacsKeyRejected, etc.) via map_err(|_| ...). That discarded
the underlying SCSI error, so a transport-layer wedge (bridge crash / USB
disconnect) mid-handshake was reported as 'drive rejected your host cert',
sending operators down a keydb/host-cert dead end for what is really a
replug/power-cycle situation.
Add a handshake_err() helper that keeps the original error when it is a
transport failure (is_scsi_transport_failure) and only substitutes the
handshake-specific code for genuine SCSI rejections. Apply it at every
SEND KEY / REPORT KEY / REPORT DISC STRUCTURE step in both the AACS 1.0
and AACS 2.0 paths. Add a regression test covering both branches.
The doc comment claimed the version was a BE u32 at offset 8 of the
record body (offset 12 from pos), but the code correctly reads pos+8
(body offset 4): a 4-byte record header at pos, the Type field at body
offset 0, then the version at body offset 4. Rewrite the comment to
match the actual read so a maintainer does not 'correct' the offset and
break MKB version parsing. Clarify the matching test comment too.
The subset-difference slots are independent, so rayon find_map_any scans them
in parallel and cancels on first match. UHD MKB no-match scan ~26s -> ~4.6s on
8 cores. Bit-identical result; 58 aacs tests pass.
calc_pk_from_dk derived all three children (left/pk/right) at every tree
level but used only the one it descended into; the Processing Key only
matters at the final node. Derive just the descended child per level + the
PK once at the end. Bit-for-bit identical; speeds every DK->MK derivation
(disc decryption + unpositioned-DK recovery). 60.8s -> 22.9s on a UHD
worst-case recovery scan.
Add recover_dk_position: boil a position-less device key down against a
disc MKB to its invariant subset-difference position (node/uv/u_mask_shift)
— zero-descent probe + ancestor walk-up, hoisted verify. Consolidate the
SD-walk surface (drop the research-only probe::walk_pk_against_tables;
make derive_media_key_from_pk_walked internal).
Two byte-identical copies of the subset-difference walk lived in keys.rs
and variants.rs. Consolidate the pure helpers (aesg3, calc_v_mask,
calc_pk_from_dk) into keys.rs (pub(super)); variants.rs imports them.
Add derive_media_key_and_pk_from_dk(mkb, dks) -> Option<(mk, pk)>, which
returns the intermediate Processing Key the walk already computes;
derive_media_key_from_dk becomes a thin wrapper. This lets callers bank
the PK on a DK boil instead of re-deriving it via a second, divergent
walk (the classical-vs-variant cvalues order made that miss silently).
216 AACS tests pass (incl. a new (mk,pk) regression); precommit (1.86) green.