libfreemkv 1.1.0

Open source raw disc access library for optical drives
Documentation
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//! Decrypt-on-read layer.
//!
//! Decrypts sectors in-place using resolved keys from disc scanning.
//! Handles AACS 1.0, AACS 2.0, and CSS transparently.
//! The caller never sees encrypted data unless explicitly bypassed.
//!
//! ## Parallel AACS decrypt
//!
//! Each AACS aligned unit (6144 bytes) is decrypted INDEPENDENTLY of
//! every other unit — per-unit key derivation from the unit_key plus
//! the unit's own first-16-byte header. There is no cross-unit
//! dependency, so a buffer of N units can be decrypted on N threads
//! in parallel via a persistent rayon thread pool.
//!
//! Small buffers (< [`PARALLEL_MIN_UNITS`] units) fall through to the
//! serial path to avoid pool dispatch overhead beating the per-unit
//! AES work.
//!
//! ## Thread-count configuration — three layers
//!
//! Resolution order (highest wins):
//! 1. The most recent [`set_decrypt_threads`] call with `n > 0`.
//!    Calling this *replaces* the live thread pool — useful for a
//!    settings-page slider in a long-running daemon.
//! 2. `FREEMKV_THREADS` env var, if set and `> 0`. Single knob
//!    covering decrypt today, intended to also drive any future
//!    input-side / output-side worker pools.
//! 3. Default: all available cores. Algorithm optimisation comes
//!    first — we measure single-thread performance to find serial
//!    bottlenecks before throwing parallelism at it — but once a
//!    pool is engaged we use the whole box. Hard cap at
//!    [`MAX_THREADS`] (rayon stack memory).

use crate::aacs;
use crate::css;
use rayon::prelude::*;
use std::sync::atomic::{AtomicUsize, Ordering};
use std::sync::{Arc, RwLock};

/// Minimum units in a buffer before we pay the pool-dispatch cost of
/// fanning out. Below this, serial is faster.
const PARALLEL_MIN_UNITS: usize = 8;

/// Hard upper bound on configurable thread count. Anything larger is
/// almost certainly a misconfiguration; rayon would happily allocate
/// thousands of worker stacks otherwise.
pub const MAX_THREADS: usize = 64;

/// Process-wide decrypt thread count override. `0` means "use env
/// var, else default" — see [`decrypt_threads`] for the resolution
/// order.
static DECRYPT_THREADS: AtomicUsize = AtomicUsize::new(0);

/// Current rayon pool. `RwLock<Option<Arc<...>>>` so that
/// [`set_decrypt_threads`] can swap the pool out without leaking the
/// old one and without blocking ongoing decrypt work (in-flight calls
/// hold an `Arc` clone via [`decrypt_pool`] and finish on the old
/// pool; new calls pick up the new pool).
static DECRYPT_POOL: RwLock<Option<Arc<rayon::ThreadPool>>> = RwLock::new(None);

/// Configure how many threads to use for AACS unit decryption. A value
/// of `0` resets to the env / default resolution. `1` forces serial.
/// `N > 1` builds a new rayon pool of size N (capped at [`MAX_THREADS`])
/// and atomically replaces the live pool.
///
/// Thread-safe. Live decrypt calls keep their previously-acquired
/// pool reference for the rest of the call — no mid-call pool
/// switch. Subsequent calls see the new pool.
///
/// Pool construction is ~ms-scale; safe to call from a settings POST
/// handler.
pub fn set_decrypt_threads(n: usize) {
    let clamped = n.min(MAX_THREADS);
    DECRYPT_THREADS.store(clamped, Ordering::Relaxed);
    // Drop the existing pool. Next decrypt_pool() call rebuilds with
    // the new resolved thread count.
    if let Ok(mut guard) = DECRYPT_POOL.write() {
        *guard = None;
    }
}

/// Get (or lazily build) the active rayon thread pool. Returns an
/// `Arc` so in-flight work survives a concurrent
/// [`set_decrypt_threads`] swap.
///
/// Returns `None` if the pool cannot be built (e.g. the OS refuses the
/// worker threads under a pid/thread limit). The caller falls back to
/// the serial decrypt path — library code never panics here.
fn decrypt_pool() -> Option<Arc<rayon::ThreadPool>> {
    // Fast path: pool already built. A poisoned read lock still yields a
    // usable guard (the pool Arc is immutable once stored).
    {
        let guard = DECRYPT_POOL.read().unwrap_or_else(|e| e.into_inner());
        if let Some(pool) = guard.as_ref() {
            return Some(Arc::clone(pool));
        }
    }
    // Slow path: build a new one under the write lock. Recover the guard
    // on poisoning (a prior panic) rather than propagating a secondary
    // panic — we simply rebuild. Double-check after acquiring in case
    // another caller built it first.
    let mut guard = DECRYPT_POOL.write().unwrap_or_else(|e| e.into_inner());
    if let Some(pool) = guard.as_ref() {
        return Some(Arc::clone(pool));
    }
    let n = decrypt_threads();
    let pool = rayon::ThreadPoolBuilder::new()
        .num_threads(n)
        .thread_name(|i| format!("freemkv-decrypt-{i}"))
        .build()
        .ok()
        .map(Arc::new)?;
    *guard = Some(Arc::clone(&pool));
    Some(pool)
}

/// Current effective decrypt thread count. Resolution order:
/// 1. Most recent [`set_decrypt_threads`] value (if > 0)
/// 2. `FREEMKV_THREADS` env var (if set and > 0)
/// 3. Default: all available cores, capped at [`MAX_THREADS`].
pub fn decrypt_threads() -> usize {
    let explicit = DECRYPT_THREADS.load(Ordering::Relaxed);
    if explicit > 0 {
        return explicit;
    }
    let env = std::env::var("FREEMKV_THREADS")
        .ok()
        .and_then(|v| v.parse::<usize>().ok())
        .unwrap_or(0);
    if env > 0 {
        return env.min(MAX_THREADS);
    }
    let cores = std::thread::available_parallelism()
        .map(|n| n.get())
        .unwrap_or(2);
    cores.clamp(1, MAX_THREADS)
}

/// Resolved decryption state from disc scanning.
/// Passed to `decrypt_sectors()` — the caller doesn't need to know
/// which encryption scheme is in use.
#[derive(Clone)]
pub enum DecryptKeys {
    /// No encryption on this disc.
    None,
    /// AACS (Blu-ray / UHD). Unit keys + optional read data key.
    Aacs {
        unit_keys: Vec<(u32, [u8; 16])>,
        read_data_key: Option<[u8; 16]>,
    },
    /// CSS (DVD). Title key for sector descrambling.
    Css { title_key: [u8; 5] },
}

impl DecryptKeys {
    /// True if there are keys to decrypt with.
    pub fn is_encrypted(&self) -> bool {
        !matches!(self, DecryptKeys::None)
    }
}

/// Decrypt a buffer of sectors in-place.
///
/// For AACS: processes in 6144-byte aligned units (3 sectors).
/// For CSS: processes per 2048-byte sector.
/// For None: no-op.
///
/// `unit_key_idx` is the initial AACS unit-key hint (0 for most discs). On a
/// multi-CPS-unit disc every key is tried per unit until the TS-sync verify
/// passes; `unit_key_idx` is tried first so single-CPS-unit discs pay zero
/// overhead. An out-of-range `unit_key_idx` is always an error.
///
/// Returns `Err` if decryption was expected but keys are missing or invalid.
/// Never produces silently corrupted output.
///
/// On success returns the number of bytes belonging to scrambled AACS units
/// that **no available key could decrypt** — those units are restored to their
/// original encrypted bytes (so a clear nav-file is never corrupted), but for
/// genuine encrypted content this is silent data loss the downstream TS
/// assembler will drop without a sync. The decrypt-on-read decorator folds this
/// count into the mux loss accounting so a partial key failure can't be reported
/// as a perfect rip. `0` for `None` / `Css` and for any AACS buffer where every
/// scrambled unit decrypted.
pub fn decrypt_sectors(
    buf: &mut [u8],
    keys: &mut DecryptKeys,
    unit_key_idx: usize,
) -> Result<usize, crate::error::Error> {
    decrypt_sectors_impl(buf, keys, unit_key_idx, None)
}

/// Like [`decrypt_sectors`], but ONLY decrypts/verifies units whose absolute LBA
/// falls inside `content_ranges` — the disc's AACS-encrypted content (the m2ts
/// stream extents). Units OUTSIDE content (UDF filesystem / nav) are left
/// untouched and never counted as decrypt loss: they are clear by definition, so
/// [`ts_sync_destroyed`] must not be consulted about them (a filesystem unit has
/// no TS sync, which would otherwise be mistaken for ciphertext). `base_lba` is
/// the absolute LBA of `buf`'s first sector; aligned units are 3 sectors.
///
/// `content_ranges` is sorted, merged, disjoint `[start_lba, end_lba)`.
pub fn decrypt_sectors_in_content(
    buf: &mut [u8],
    keys: &mut DecryptKeys,
    unit_key_idx: usize,
    base_lba: u32,
    content_ranges: &[(u32, u32)],
) -> Result<usize, crate::error::Error> {
    decrypt_sectors_impl(buf, keys, unit_key_idx, Some((base_lba, content_ranges)))
}

/// True if `lba` falls inside one of the sorted, merged, disjoint
/// `(start, count)` ranges (same representation as [`crate::udf::merge_ranges`]
/// and `Extent`). O(log n) binary search — cheap enough to run per unit.
pub(crate) fn lba_in_ranges(lba: u32, ranges: &[(u32, u32)]) -> bool {
    match ranges.binary_search_by(|&(start, _)| start.cmp(&lba)) {
        Ok(_) => true,   // lba is exactly a range start
        Err(0) => false, // before the first range
        Err(i) => {
            let (start, count) = ranges[i - 1];
            lba < start.saturating_add(count) // inside the range that starts before lba?
        }
    }
}

fn decrypt_sectors_impl(
    buf: &mut [u8],
    keys: &mut DecryptKeys,
    unit_key_idx: usize,
    content: Option<(u32, &[(u32, u32)])>,
) -> Result<usize, crate::error::Error> {
    let dropped: usize = match keys {
        DecryptKeys::None => 0,
        DecryptKeys::Aacs {
            unit_keys,
            read_data_key,
        } => {
            // Validate that unit_key_idx is in-range before doing anything else.
            // This preserves the existing contract: an out-of-range explicit index
            // is always an error (tested by `aacs_out_of_range_unit_key_idx_errors`).
            if unit_keys.get(unit_key_idx).is_none() {
                return Err(crate::error::Error::DecryptFailed);
            }

            // Strip CPS-unit IDs — the decrypt primitives only want the raw key bytes.
            let raw_keys: Vec<[u8; 16]> = unit_keys.iter().map(|(_, k)| *k).collect();
            let rdk: Option<[u8; 16]> = *read_data_key;
            let unit_len = aacs::ALIGNED_UNIT_LEN;
            // AACS decrypts whole 6144-byte aligned units. The live mux path
            // (mux/disc.rs::fill_extents) issues 1- or 2-sector reads at every
            // extent tail, so a buffer is commonly NOT a multiple of the unit
            // length. We process the whole leading units exactly as a fully
            // aligned buffer would be, then make a deliberate decision about any
            // trailing partial unit.
            //
            // Trailing-partial contract:
            //   * A clear partial (incomplete final unit / clear nav-TS tail) is
            //     what AACS legitimately leaves in the clear on disc, so we leave
            //     it untouched and return Ok. This is the proven, shipped
            //     behavior every production UHD MKV was made with — no regression
            //     on conformant discs.
            //   * A *scrambled* partial can only arise from a structurally
            //     malformed UDF layout that splits an encrypted unit across an
            //     extent boundary. Those bytes are encrypted content that cannot
            //     be decrypted standalone; passing them through as clear would be
            //     silent corruption. We fail loud (Error::DecryptFailed), matching
            //     the highway path's Error::ExtentNotUnitAligned policy.
            //
            // Detection: ts_sync_destroyed() short-circuits to false for any
            // buffer shorter than a full unit, so it cannot judge a partial. We
            // instead apply the same TS-sync-intactness test it uses internally
            // (ts_sync_count vs ts_packet_total) directly to the available
            // partial bytes. A clear TS tail carries 0x47 syncs at the 192-byte
            // stride (> half the packets) → intact → not scrambled → tolerate. An
            // encrypted tail has those syncs destroyed (≤ half) → scrambled →
            // reject. If the partial is too short to hold even one TS packet
            // (< 192 bytes, ts_packet_total == 0) we cannot judge confidently and
            // tolerate rather than risk a false positive on conformant tails.
            let partial_len = buf.len() % unit_len;
            if partial_len != 0 {
                // Gate the trailing partial on content too: a scrambled partial
                // OUTSIDE the encrypted m2ts extents is just clear non-TS bytes
                // (filesystem tail), not a malformed encrypted unit, so it must
                // not hard-fail. `nfull * 3` is the partial's absolute LBA.
                let nfull = (buf.len() / unit_len) as u32;
                let partial_in_content = match content {
                    Some((base, ranges)) => lba_in_ranges(base.saturating_add(nfull * 3), ranges),
                    None => true,
                };
                if partial_in_content {
                    let partial = &buf[buf.len() - partial_len..];
                    let packets = aacs::ts_packet_total(partial);
                    if packets > 0 && aacs::ts_sync_count(partial) <= packets / 2 {
                        return Err(crate::error::Error::DecryptFailed);
                    }
                }
            }
            let nthreads = decrypt_threads();
            let nunits = buf.len() / unit_len;

            // Cache the last successfully-validated key index so that runs of
            // units under the same CPS unit hit on the first try. Initialised to
            // unit_key_idx (the caller's hint — 0 for almost all discs). An
            // AtomicUsize lets the parallel path share it cheaply; relaxed
            // ordering is fine because a stale read just causes one extra try,
            // never a wrong result (TS-sync verify gates correctness).
            let last_key_idx = AtomicUsize::new(unit_key_idx);

            // Count bytes of scrambled units that NO key could decrypt. Shared
            // across the rayon workers (relaxed is fine — it's a pure tally, not
            // a synchronisation point). A non-zero total is silent decrypt loss:
            // the bytes pass downstream still encrypted and the TS assembler
            // drops them without a sync. The caller folds this into mux loss
            // accounting so a partial key failure isn't reported as a clean rip.
            let dropped_bytes = AtomicUsize::new(0);

            // Per-unit decrypt closure. For a scrambled full aligned unit:
            //   1. Try the cached key index first (avoids scanning all keys on the
            //      common case where a disc run uses one CPS unit throughout).
            //   2. On miss, try every key in order (multi-CPS-unit discs).
            //   3. Accept the first key whose output passes the TS-sync verify.
            //   4. Only restore-to-original if NO key validates (non-m2ts unit or
            //      genuine decrypt failure). See test
            //      `nav_file_unit_survives_decrypt_attempt`.
            //
            // If a read_data_key is present (AACS 2.0 bus encryption), bus-decrypt
            // must happen first — it's a shared layer on top that is key-independent
            // across all CPS units on the disc.
            let decrypt_one = |chunk: &mut [u8]| {
                if chunk.len() != unit_len || !aacs::aacs_unit_needs_decrypt(chunk) {
                    return;
                }
                // Save original bytes so we can restore if no key validates.
                let original: Vec<u8> = chunk.to_vec();

                // Build a bus-decrypted copy to try unit keys against, or work
                // in-place when there is no bus layer.
                if let Some(ref rdk_key) = rdk {
                    aacs::decrypt_bus(chunk, rdk_key);
                }

                // Reorder the key iterator: try the cached hint first, then fall
                // back to the full list skipping the hint.
                let hint = last_key_idx.load(Ordering::Relaxed);
                let try_order =
                    std::iter::once(hint).chain((0..raw_keys.len()).filter(move |&i| i != hint));

                for idx in try_order {
                    if let Some(key) = raw_keys.get(idx) {
                        // Work on a per-key copy so a failing attempt doesn't
                        // clobber the bus-decrypted base we'll retry on.
                        let mut attempt: Vec<u8> = chunk.to_vec();
                        if aacs::decrypt_unit(&mut attempt, key) {
                            chunk.copy_from_slice(&attempt);
                            last_key_idx.store(idx, Ordering::Relaxed);
                            return;
                        }
                    }
                }

                // No key validated — restore the original encrypted bytes and
                // tally the loss. The unit is flagged encrypted (we only reach
                // here past the CPI gate) but no key applied: genuine encrypted
                // content with a missing/wrong sub-key. We always tally; the mux
                // read path treats
                // the count as loss (its extents are real content), while
                // metadata-probe callers that don't install a loss sink ignore it.
                chunk.copy_from_slice(&original);
                dropped_bytes.fetch_add(chunk.len(), Ordering::Relaxed);
            };

            // Content gate wrapper: when a gate is supplied, skip any unit whose
            // absolute LBA lies OUTSIDE the encrypted-content extents — it is
            // clear non-TS data (filesystem / nav) and must never be decrypted,
            // verified, or counted as loss. Each aligned unit is 3 sectors.
            let unit_sectors = (unit_len / 2048) as u32;
            let process = |idx: usize, chunk: &mut [u8]| {
                if let Some((base, ranges)) = content {
                    let unit_lba = base.saturating_add((idx as u32) * unit_sectors);
                    if !lba_in_ranges(unit_lba, ranges) {
                        return;
                    }
                }
                decrypt_one(chunk);
            };

            if nthreads <= 1 || nunits < PARALLEL_MIN_UNITS {
                // Serial path: avoids thread-pool overhead for tiny
                // buffers; also the only path when caller pinned
                // single-threaded via FREEMKV_THREADS=1. Iterate the
                // chunks directly — no Vec of slice pointers needed.
                for (idx, chunk) in buf.chunks_mut(unit_len).enumerate() {
                    process(idx, chunk);
                }
            } else {
                // Parallel path via rayon's persistent thread pool.
                // The pool is built once on first use and reused across
                // every decrypt_sectors call — no per-call OS thread
                // spawn. Each unit decrypts independently (own key
                // derivation), so par_iter is sound. On a pool-build
                // failure (e.g. thread/pid-limit exhaustion) we fall
                // back to the serial path rather than panic.
                match decrypt_pool() {
                    Some(pool) => {
                        let chunks: Vec<&mut [u8]> = buf.chunks_mut(unit_len).collect();
                        pool.install(|| {
                            chunks.into_par_iter().enumerate().for_each(|(idx, chunk)| {
                                process(idx, chunk);
                            });
                        });
                    }
                    None => {
                        for (idx, chunk) in buf.chunks_mut(unit_len).enumerate() {
                            process(idx, chunk);
                        }
                    }
                }
            }
            dropped_bytes.into_inner()
        }
        DecryptKeys::Css { title_key } => {
            // CSS has no supplied key list: the ONLY source of a title key is
            // cracking the data, and the key changes per VTS/VOB region. So
            // `title_key` is a CACHE of the last crack, not a fixed disc key —
            // applying it blindly across a region boundary descrambles with the
            // wrong key (valid headers, garbage payload). Validate it on every
            // scrambled sector and re-crack on a miss (libdvdcss's on-demand
            // per-region rekey; the same validate-then-rekey shape the AACS arm
            // above uses, but re-cracking instead of picking from a list).
            //
            // The clear header (<0x80) is never scrambled, so its periodic crib
            // predicts the plaintext at 0x80. Descramble with the cached key; if
            // the crib fails to reappear the key region changed (or the primed
            // key was wrong) — restore the ciphertext, re-crack from this very
            // sector, and descramble again. A crib-less sector (no periodic run)
            // can be neither validated nor cracked, so it rides the cached key —
            // correct, because it lives in the same region as the nearby crib
            // sector that set the cache.
            for chunk in buf.chunks_mut(2048) {
                if chunk.len() < 2048 || !css::is_scrambled(chunk) {
                    continue;
                }
                let crib = css::stevenson::attack_crib(chunk);
                // Snapshot the ciphertext into a stack buffer (chunk is exactly
                // 2048 here — guaranteed by the `< 2048` continue above) only
                // when there's a crib to validate against, so the common
                // cache-hit path costs no per-sector heap allocation.
                let mut original = [0u8; 2048];
                if crib.is_some() {
                    original.copy_from_slice(chunk);
                }
                css::lfsr::descramble_sector(title_key, chunk);
                if let Some(crib) = crib {
                    if chunk[0x80..0x80 + 10] != crib[..] {
                        // Cached key is stale for this region — restore the
                        // ciphertext and crack this sector's own key.
                        chunk.copy_from_slice(&original);
                        if let Some(fresh) = css::stevenson::crack_title_key(chunk) {
                            *title_key = fresh;
                        }
                        css::lfsr::descramble_sector(title_key, chunk);
                    }
                }
            }
            0
        }
    };
    Ok(dropped)
}

#[cfg(test)]
mod tests {
    use super::*;

    /// Regression for the 0.18.1 nav-file scramble bug. A non-m2ts unit (here
    /// an MPLS file: starts "MPLS", carries no TS syncs) reads as scrambled
    /// under `ts_sync_destroyed`, gets AES-decrypted with the unit key, fails
    /// the TS-sync verification, and must be restored to its original bytes —
    /// not left scrambled.
    #[test]
    fn nav_file_unit_survives_decrypt_attempt() {
        let mut unit = vec![0u8; aacs::ALIGNED_UNIT_LEN];
        unit[0] = b'M';
        unit[1] = b'P';
        unit[2] = b'L';
        unit[3] = b'S';
        for (i, b) in unit.iter_mut().enumerate().skip(4) {
            *b = (i as u8).wrapping_mul(31);
        }
        let snapshot = unit.clone();

        let mut keys = DecryptKeys::Aacs {
            unit_keys: vec![(0, [0xAB; 16])],
            read_data_key: None,
        };
        decrypt_sectors(&mut unit, &mut keys, 0).unwrap();
        assert_eq!(
            unit, snapshot,
            "non-m2ts unit must be restored after failed decrypt"
        );
    }

    /// Build a clear-TS region: a 0x47 sync byte at offset 4 of every 192-byte
    /// BD-TS packet (matching `ts_sync_count`'s probe stride), filler elsewhere.
    /// Reads as NOT scrambled.
    fn clear_ts_region(len: usize) -> Vec<u8> {
        let mut v: Vec<u8> = (0..len).map(|i| (i as u8).wrapping_mul(31)).collect();
        let mut off = 4;
        while off < len {
            v[off] = 0x47;
            off += 192;
        }
        v
    }

    /// Build a scrambled region: the 192-byte-stride sync positions are NOT
    /// 0x47 (encrypted content destroys them), so it reads as scrambled.
    fn scrambled_region(len: usize) -> Vec<u8> {
        let mut v: Vec<u8> = (0..len).map(|i| (i as u8).wrapping_mul(31)).collect();
        let mut off = 4;
        while off < len {
            // Force a non-sync byte at every probe position.
            v[off] = 0xA5;
            off += 192;
        }
        // Flag every aligned unit's CPI bits (byte 0) so it reads as encrypted
        // under the authoritative `aacs_unit_encrypted`/`aacs_unit_needs_decrypt`
        // gate — real encrypted content always carries these.
        let mut u = 0;
        while u < len {
            v[u] |= 0xC0;
            u += aacs::ALIGNED_UNIT_LEN;
        }
        v
    }

    // ── Content-extent gate (`decrypt_sectors_in_content` / `lba_in_ranges`) ──

    #[test]
    fn lba_in_ranges_membership() {
        // (start, count) ⇒ [10,15) and [100,110).
        let r = &[(10u32, 5u32), (100, 10)];
        assert!(!lba_in_ranges(0, r), "before first range");
        assert!(!lba_in_ranges(9, r), "just before first range");
        assert!(lba_in_ranges(10, r), "at first range start");
        assert!(lba_in_ranges(14, r), "inside first range");
        assert!(!lba_in_ranges(15, r), "first range end is exclusive");
        assert!(!lba_in_ranges(50, r), "in the gap between ranges");
        assert!(lba_in_ranges(100, r), "at second range start");
        assert!(lba_in_ranges(109, r), "inside second range");
        assert!(!lba_in_ranges(110, r), "second range end is exclusive");
        assert!(!lba_in_ranges(5, &[]), "empty set has no members");
    }

    /// The content gate at the decrypt primitive: a scrambled-LOOKING unit
    /// OUTSIDE the content extents (e.g. UDF filesystem) must be SKIPPED — never
    /// decrypted, never counted as loss. The SAME bytes INSIDE content are
    /// checked and counted. This is the first-2 GB false-positive fix.
    #[test]
    fn content_gate_skips_non_content_units() {
        let mut keys = DecryptKeys::Aacs {
            unit_keys: vec![(0, [0xAB; 16])],
            read_data_key: None,
        };
        let original = scrambled_region(aacs::ALIGNED_UNIT_LEN);

        // base_lba 0, content = [(100,10)] ⇒ the unit at LBA 0 is OUTSIDE content.
        let mut buf = original.clone();
        let dropped = decrypt_sectors_in_content(&mut buf, &mut keys, 0, 0, &[(100, 10)]).unwrap();
        assert_eq!(
            dropped, 0,
            "a non-content unit must not count as decrypt loss"
        );
        assert_eq!(
            buf, original,
            "a non-content unit must be left byte-for-byte untouched"
        );

        // Same bytes INSIDE content (base_lba 100, range covers LBA 100..103).
        let mut buf2 = original.clone();
        let dropped2 =
            decrypt_sectors_in_content(&mut buf2, &mut keys, 0, 100, &[(100, 10)]).unwrap();
        assert_eq!(
            dropped2,
            aacs::ALIGNED_UNIT_LEN,
            "an undecryptable CONTENT unit IS counted as loss"
        );
    }

    /// Per-unit gating across a content boundary: in a 2-unit buffer where only
    /// the second unit (LBA 3..6) is content, only the second is decrypt-checked.
    #[test]
    fn content_gate_is_per_unit_across_a_boundary() {
        let mut keys = DecryptKeys::Aacs {
            unit_keys: vec![(0, [0xAB; 16])],
            read_data_key: None,
        };
        let mut buf = scrambled_region(2 * aacs::ALIGNED_UNIT_LEN);
        // unit0 @ LBA 0 (clear/skip), unit1 @ LBA 3 (content). Content = [(3,3)].
        let dropped = decrypt_sectors_in_content(&mut buf, &mut keys, 0, 0, &[(3, 3)]).unwrap();
        assert_eq!(
            dropped,
            aacs::ALIGNED_UNIT_LEN,
            "only the in-content unit (unit1) is checked; clear unit0 is skipped"
        );
    }

    /// A content range covering the whole buffer must behave EXACTLY like the
    /// ungated `decrypt_sectors` — the gate adds nothing when everything is content.
    #[test]
    fn content_gate_covering_whole_buffer_matches_ungated() {
        let mut keys_g = DecryptKeys::Aacs {
            unit_keys: vec![(0, [0xAB; 16])],
            read_data_key: None,
        };
        let mut keys_u = keys_g.clone();
        let original = scrambled_region(aacs::ALIGNED_UNIT_LEN);
        let mut g = original.clone();
        let mut u = original.clone();
        let gated = decrypt_sectors_in_content(&mut g, &mut keys_g, 0, 0, &[(0, 3)]).unwrap();
        let ungated = decrypt_sectors(&mut u, &mut keys_u, 0).unwrap();
        assert_eq!(
            gated, ungated,
            "gated-covering-all == ungated dropped count"
        );
        assert_eq!(g, u, "gated-covering-all == ungated bytes");
    }

    #[test]
    fn lba_in_ranges_more_edges() {
        // Single range [5,8).
        assert!(!lba_in_ranges(4, &[(5, 3)]), "just before single range");
        assert!(lba_in_ranges(5, &[(5, 3)]), "at single range start");
        assert!(lba_in_ranges(7, &[(5, 3)]), "inside single range");
        assert!(
            !lba_in_ranges(8, &[(5, 3)]),
            "single range end is exclusive"
        );
        // After the last range.
        assert!(
            !lba_in_ranges(200, &[(10, 5), (100, 10)]),
            "past the last range"
        );
        // Saturating: a range whose start+count overflows u32 must not panic. The
        // end saturates to u32::MAX, so the very top LBA is excluded — a harmless
        // edge (real disc LBAs never reach u32::MAX). The range start is still in.
        assert!(
            lba_in_ranges(u32::MAX - 1, &[(u32::MAX - 1, 5)]),
            "saturating range start is in"
        );
        assert!(
            !lba_in_ranges(u32::MAX, &[(u32::MAX - 1, 5)]),
            "saturated end excludes the top"
        );
    }

    /// An EMPTY content map gates EVERYTHING out — even a scrambled unit is
    /// skipped (treated as non-content). This is the no-titles fallback at the
    /// primitive level.
    #[test]
    fn content_gate_empty_ranges_skips_everything() {
        let mut keys = DecryptKeys::Aacs {
            unit_keys: vec![(0, [0xAB; 16])],
            read_data_key: None,
        };
        let original = scrambled_region(aacs::ALIGNED_UNIT_LEN);
        let mut buf = original.clone();
        let dropped = decrypt_sectors_in_content(&mut buf, &mut keys, 0, 0, &[]).unwrap();
        assert_eq!(
            dropped, 0,
            "empty content map ⇒ nothing is content ⇒ no loss"
        );
        assert_eq!(buf, original, "empty content map ⇒ buffer untouched");
    }

    /// A CLEAR (sync-intact) unit INSIDE content is not ciphertext, so even though
    /// it is in-content it is skipped by the ts-sync check and never counted.
    #[test]
    fn content_gate_clear_unit_in_content_not_counted() {
        let mut keys = DecryptKeys::Aacs {
            unit_keys: vec![(0, [0xAB; 16])],
            read_data_key: None,
        };
        let original = clear_ts_region(aacs::ALIGNED_UNIT_LEN);
        let mut buf = original.clone();
        let dropped = decrypt_sectors_in_content(&mut buf, &mut keys, 0, 0, &[(0, 3)]).unwrap();
        assert_eq!(dropped, 0, "a clear in-content unit is not ciphertext");
        assert_eq!(buf, original, "a clear in-content unit is left untouched");
    }

    /// `DecryptKeys::None` is a no-op even with a content map + scrambled bytes.
    #[test]
    fn content_gate_none_keys_is_noop() {
        let mut keys = DecryptKeys::None;
        let original = scrambled_region(aacs::ALIGNED_UNIT_LEN);
        let mut buf = original.clone();
        let dropped = decrypt_sectors_in_content(&mut buf, &mut keys, 0, 0, &[(0, 3)]).unwrap();
        assert_eq!(dropped, 0);
        assert_eq!(buf, original);
    }

    /// CSS ignores the content gate (it lives in the AACS arm) and always reports
    /// `0` — confirming the gate is a no-op for CSS and the read stays
    /// scheme-agnostic (the litmus test: adding CSS verify touches only the CSS
    /// arm, never the read).
    #[test]
    fn content_gate_css_keys_is_noop() {
        let mut keys = DecryptKeys::Css { title_key: [0; 5] };
        let mut buf = vec![0u8; 2048];
        let dropped = decrypt_sectors_in_content(&mut buf, &mut keys, 0, 0, &[(0, 3)]).unwrap();
        assert_eq!(
            dropped, 0,
            "CSS arm returns 0; content gate is a no-op for CSS"
        );
    }

    /// Mixed 3-unit buffer: only the in-content SCRAMBLED unit is counted; an
    /// in-content CLEAR unit and an out-of-content SCRAMBLED unit are both skipped.
    #[test]
    fn content_gate_mixed_three_units() {
        let mut keys = DecryptKeys::Aacs {
            unit_keys: vec![(0, [0xAB; 16])],
            read_data_key: None,
        };
        let u = aacs::ALIGNED_UNIT_LEN;
        let mut buf = vec![0u8; 3 * u];
        buf[..u].copy_from_slice(&scrambled_region(u)); // unit0 @ LBA0 scrambled
        buf[u..2 * u].copy_from_slice(&clear_ts_region(u)); // unit1 @ LBA3 clear
        buf[2 * u..].copy_from_slice(&scrambled_region(u)); // unit2 @ LBA6 scrambled
        // Content = LBA 0..6 (units 0 and 1); unit2 (LBA6) is out of content.
        let dropped = decrypt_sectors_in_content(&mut buf, &mut keys, 0, 0, &[(0, 6)]).unwrap();
        assert_eq!(dropped, u, "only unit0 (in-content + scrambled) counts");
    }

    /// Mirror of the boundary test: content covers the FIRST unit only.
    #[test]
    fn content_gate_covers_first_unit_only() {
        let mut keys = DecryptKeys::Aacs {
            unit_keys: vec![(0, [0xAB; 16])],
            read_data_key: None,
        };
        let mut buf = scrambled_region(2 * aacs::ALIGNED_UNIT_LEN);
        // unit0 @ LBA0 content, unit1 @ LBA3 out. Content = [(0,3)].
        let dropped = decrypt_sectors_in_content(&mut buf, &mut keys, 0, 0, &[(0, 3)]).unwrap();
        assert_eq!(dropped, aacs::ALIGNED_UNIT_LEN, "only unit0 counts");
    }

    /// The trailing-partial reject is ALSO content-gated: a scrambled partial
    /// OUTSIDE content is clear filesystem tail, not a malformed encrypted unit,
    /// so it must NOT hard-fail.
    #[test]
    fn content_gate_scrambled_partial_outside_content_is_tolerated() {
        let mut keys = DecryptKeys::Aacs {
            unit_keys: vec![(0, [0xAB; 16])],
            read_data_key: None,
        };
        // One full clear unit + a scrambled single-sector partial, all OUTSIDE
        // content → the partial must be tolerated (Ok), not DecryptFailed.
        let mut buf = clear_ts_region(aacs::ALIGNED_UNIT_LEN);
        buf.extend_from_slice(&scrambled_region(2048));
        // content far away → both the full unit and the partial are non-content.
        let res = decrypt_sectors_in_content(&mut buf, &mut keys, 0, 0, &[(1000, 3)]);
        assert!(
            res.is_ok(),
            "a scrambled partial outside content must not hard-fail"
        );
    }

    /// Whole leading units plus a CLEAR trailing partial (the benign,
    /// conformant case): AACS leaves an incomplete final unit / clear nav-TS
    /// tail in the clear on disc. We must return `Ok` and leave the partial
    /// bytes byte-for-byte unchanged — no regression on real discs.
    #[test]
    fn aacs_clear_trailing_partial_is_tolerated_unchanged() {
        let mut keys = DecryptKeys::Aacs {
            unit_keys: vec![(0, [0xAB; 16])],
            read_data_key: None,
        };
        // One full scrambled unit + a 2048-byte (single-sector) CLEAR tail.
        let unit = scrambled_region(aacs::ALIGNED_UNIT_LEN);
        let tail = clear_ts_region(2048);
        let mut buf = unit;
        buf.extend_from_slice(&tail);

        decrypt_sectors(&mut buf, &mut keys, 0).expect("clear trailing partial is Ok");

        assert_eq!(
            &buf[aacs::ALIGNED_UNIT_LEN..],
            &tail[..],
            "clear trailing partial unit must be left unchanged"
        );
    }

    /// Whole leading units plus a SCRAMBLED trailing partial (the malformed
    /// danger case): an encrypted unit split across an extent boundary cannot be
    /// decrypted standalone. Passing it through as clear would be silent
    /// corruption, so we must fail loud with `DecryptFailed`.
    #[test]
    fn aacs_scrambled_trailing_partial_is_rejected() {
        let mut keys = DecryptKeys::Aacs {
            unit_keys: vec![(0, [0xAB; 16])],
            read_data_key: None,
        };
        // One full unit + a 4096-byte (two-sector) SCRAMBLED tail.
        let unit = clear_ts_region(aacs::ALIGNED_UNIT_LEN);
        let tail = scrambled_region(4096);
        let mut buf = unit;
        buf.extend_from_slice(&tail);

        let err = decrypt_sectors(&mut buf, &mut keys, 0)
            .expect_err("scrambled trailing partial must be rejected");
        assert_eq!(
            err.code(),
            crate::error::Error::DecryptFailed.code(),
            "scrambled trailing partial must fail with DecryptFailed"
        );
    }

    /// An empty buffer is a valid no-op (zero units), not an error.
    #[test]
    fn aacs_empty_buffer_is_ok() {
        let mut keys = DecryptKeys::Aacs {
            unit_keys: vec![(0, [0xAB; 16])],
            read_data_key: None,
        };
        let mut buf: Vec<u8> = Vec::new();
        assert!(decrypt_sectors(&mut buf, &mut keys, 0).is_ok());
    }

    /// An exact multiple of the unit length has no trailing partial: behavior
    /// is unchanged — clear units stay clear, scrambled units are decrypt-
    /// attempted. Two clear units must round-trip untouched and return `Ok`.
    #[test]
    fn aacs_exact_multiple_unchanged() {
        let mut keys = DecryptKeys::Aacs {
            unit_keys: vec![(0, [0xAB; 16])],
            read_data_key: None,
        };
        let mut buf = clear_ts_region(aacs::ALIGNED_UNIT_LEN * 2);
        let snapshot = buf.clone();

        decrypt_sectors(&mut buf, &mut keys, 0).expect("exact-multiple buffer is Ok");

        assert_eq!(
            buf, snapshot,
            "clear exact-multiple buffer must be left unchanged"
        );
    }

    // ── DecryptKeys::None and is_encrypted ─────────────────────────────────

    /// DecryptKeys::None is a pure no-op: the buffer must be returned
    /// byte-for-byte unchanged with Ok, regardless of content (even content
    /// that looks scrambled).
    ///
    /// Grounding: the `DecryptKeys::None => {}` match arm does nothing.
    /// Mutation: replace the empty arm with a call that mutates buf -> the
    /// unchanged assert fails.
    #[test]
    fn none_keys_is_noop() {
        let mut buf: Vec<u8> = (0..4096u32).map(|i| (i % 256) as u8).collect();
        let snapshot = buf.clone();
        decrypt_sectors(&mut buf, &mut DecryptKeys::None, 0).expect("None is always Ok");
        assert_eq!(buf, snapshot, "None must not touch the buffer");
    }

    /// is_encrypted reflects the variant: None -> false, Css/Aacs -> true.
    ///
    /// Grounding: `!matches!(self, DecryptKeys::None)`.
    /// Mutation: invert the `!` -> None reports true, this fails.
    #[test]
    fn is_encrypted_matches_variant() {
        assert!(!DecryptKeys::None.is_encrypted());
        assert!(DecryptKeys::Css { title_key: [0; 5] }.is_encrypted());
        assert!(
            DecryptKeys::Aacs {
                unit_keys: vec![(0, [0; 16])],
                read_data_key: None,
            }
            .is_encrypted()
        );
    }

    // ── CSS dispatch (DecryptKeys::Css) ────────────────────────────────────

    /// Build a CSS-scrambled 2048-byte sector by scrambling a known plaintext
    /// body with the exact inverse of `descramble_sector`, so decrypt_sectors
    /// will descramble it back to the plaintext. The content cipher applies
    /// TAB1 to the ciphertext (`plain = TAB1[cipher] ^ ks`), so it is NOT a
    /// self-inverse XOR — `scramble_sector` is the true inverse and sets the
    /// scramble flag.
    fn make_css_sector(title_key: &[u8; 5], seed: &[u8; 5], body_fill: u8) -> (Vec<u8>, Vec<u8>) {
        let mut sector = vec![body_fill; 2048];
        sector[0x14] = 0x30; // scramble flag (bits 4-5)
        sector[0x54..0x59].copy_from_slice(seed);
        let plaintext = sector.clone();
        css::lfsr::scramble_sector(title_key, &mut sector);
        (sector, plaintext)
    }

    /// The CSS path descrambles each 2048-byte sector with the title key. A
    /// scrambled sector run through decrypt_sectors must come back to its
    /// plaintext body (keystream XOR is involutive), proving the title key is
    /// actually applied.
    ///
    /// Grounding: `DecryptKeys::Css { title_key } => for chunk in
    /// buf.chunks_mut(2048) { descramble_sector(title_key, chunk) }`.
    /// Mutation: change `chunks_mut(2048)` to `chunks_mut(2049)` or pass a
    /// fixed wrong key -> the body no longer matches the plaintext.
    #[test]
    fn css_descrambles_with_title_key() {
        let title_key = [0x42, 0x13, 0x37, 0xBE, 0xEF];
        let seed = [0xDE, 0xAD, 0xBE, 0xEF, 0x42];
        let (mut sector, plaintext) = make_css_sector(&title_key, &seed, 0xA5);
        let mut keys = DecryptKeys::Css { title_key };
        decrypt_sectors(&mut sector, &mut keys, 0).expect("CSS decrypt is Ok");
        assert_eq!(
            &sector[0x80..2048],
            &plaintext[0x80..2048],
            "CSS body must round-trip to plaintext"
        );
        // Flag cleared by the descrambler.
        assert_eq!(
            sector[0x14] & 0x30,
            0,
            "scramble flag cleared after CSS decrypt"
        );
    }

    /// The CSS path processes EACH 2048-byte sector independently in a
    /// multi-sector buffer. Two scrambled sectors (with different seeds) in
    /// one buffer must both round-trip — pinning that the loop steps by 2048
    /// and applies the key to every sector, not just the first.
    ///
    /// Grounding: `for chunk in buf.chunks_mut(2048)`.
    /// Mutation: change the loop to descramble only the first chunk (e.g.
    /// `.next()`) -> the second sector stays scrambled, assert fails.
    #[test]
    fn css_processes_every_sector_in_buffer() {
        let title_key = [0x01, 0x02, 0x03, 0x04, 0x05];
        let (s0, p0) = make_css_sector(&title_key, &[0x11, 0x22, 0x33, 0x44, 0x55], 0x3C);
        let (s1, p1) = make_css_sector(&title_key, &[0x66, 0x77, 0x88, 0x99, 0xAA], 0xC3);
        let mut buf = s0;
        buf.extend_from_slice(&s1);
        let mut keys = DecryptKeys::Css { title_key };
        decrypt_sectors(&mut buf, &mut keys, 0).expect("CSS multi-sector decrypt is Ok");
        assert_eq!(
            &buf[0x80..2048],
            &p0[0x80..2048],
            "sector 0 body must round-trip"
        );
        assert_eq!(
            &buf[2048 + 0x80..4096],
            &p1[0x80..2048],
            "sector 1 body must round-trip (loop must reach the 2nd sector)"
        );
    }

    /// Build a CSS sector whose clear header ends in a periodic run that
    /// continues into the encrypted region — the crackable shape `attack_crib`/
    /// `crack_title_key` recover a key from (a constant body fill gives a
    /// degenerate crib the cracker can't pin a unique key on). Returns
    /// (scrambled_sector, plaintext_body).
    fn make_crackable_css_sector(
        title_key: &[u8; 5],
        seed: &[u8; 5],
        period: usize,
    ) -> (Vec<u8>, Vec<u8>) {
        let mut plaintext = vec![0u8; 2048];
        plaintext[0x14] = 0x10; // scramble flag
        // Periodic run from 0x59 (just above the seed) through 0x80 and on into
        // the encrypted region; phase anchored to offset 0 so it is continuous
        // across the 0x80 boundary.
        let pat: Vec<u8> = (0..period)
            .map(|k| (0xA0u8.wrapping_add(k as u8)) ^ 0x5A)
            .collect();
        for (i, b) in plaintext.iter_mut().enumerate().skip(0x59) {
            *b = pat[i % period];
        }
        plaintext[0x54..0x59].copy_from_slice(seed); // seed sits below the run
        let body = plaintext.clone();
        css::lfsr::scramble_sector(title_key, &mut plaintext);
        (plaintext, body)
    }

    /// CSS title keys are per-VTS/VOB region: a real disc holds DIFFERENT keys
    /// for different regions and the only way to get each is to crack it. The
    /// decrypt path must re-crack when the cached key stops descrambling (its
    /// crib no longer reappears at 0x80) instead of blindly applying one key
    /// across a region boundary — the bug that pixelated every freemkv DVD rip.
    ///
    /// Two sectors scrambled under DIFFERENT keys, cache primed to ONLY the
    /// first (exactly what the one-shot scan crack leaves). Sector 0 validates +
    /// descrambles with the cached key; sector 1's cached-key descramble fails
    /// the crib, so the path re-cracks sector 1's own key and recovers its
    /// plaintext. Before the fix (blind single-key apply) sector 1 was garbage.
    ///
    /// Grounding: the CSS arm's `attack_crib` → `chunk[0x80..] != crib` →
    /// `crack_title_key` → `*title_key = fresh` rekey.
    /// Mutation: drop the rekey branch (apply the cached key always) → sector 1's
    /// body no longer matches its plaintext; this fails.
    #[test]
    fn css_rekeys_when_title_key_region_changes() {
        let key_a = [0x42, 0x13, 0x37, 0xBE, 0xEF];
        let key_b = [0x07, 0x5A, 0xC3, 0x10, 0x88]; // a DIFFERENT region's key
        let (s0, p0) = make_crackable_css_sector(&key_a, &[0x11, 0x22, 0x33, 0x44, 0x55], 4);
        let (s1, p1) = make_crackable_css_sector(&key_b, &[0x66, 0x77, 0x88, 0x99, 0xAA], 4);
        // Precondition: each sector must be crackable on its own (the rekey
        // depends on it). If this fails the fixture, not the path, is at fault.
        assert_eq!(
            crate::css::stevenson::crack_title_key(&s0),
            Some(key_a),
            "fixture s0 must crack to key_a standalone"
        );
        assert_eq!(
            crate::css::stevenson::crack_title_key(&s1),
            Some(key_b),
            "fixture s1 must crack to key_b standalone"
        );
        let mut buf = s0;
        buf.extend_from_slice(&s1);

        // Cache primed to key_a only — exactly what the one-shot scan crack yields.
        let mut keys = DecryptKeys::Css { title_key: key_a };
        decrypt_sectors(&mut buf, &mut keys, 0).expect("CSS multi-region decrypt is Ok");

        assert_eq!(
            &buf[0x80..2048],
            &p0[0x80..2048],
            "region A sector descrambles with the cached (primed) key"
        );
        assert_eq!(
            &buf[2048 + 0x80..4096],
            &p1[0x80..2048],
            "region B sector must descramble after the path re-cracks its own key"
        );
        // The cache must have advanced to region B's key.
        match keys {
            DecryptKeys::Css { title_key } => assert_eq!(
                title_key, key_b,
                "cache must hold region B's key after the rekey"
            ),
            _ => unreachable!(),
        }
    }

    /// The CSS path leaves UNSCRAMBLED sectors (flag clear) byte-for-byte
    /// untouched — descramble_sector early-returns on a zero flag. A clear
    /// sector mixed into the buffer must not be corrupted.
    ///
    /// Grounding: descramble_sector returns immediately when
    /// `(sector[0x14] >> 4) & 0x03 == 0`.
    /// Mutation: remove that early return in lfsr.rs -> a clear sector would
    /// be XORed with a keystream and change; this fails.
    #[test]
    fn css_leaves_clear_sector_unchanged() {
        let title_key = [0x01, 0x02, 0x03, 0x04, 0x05];
        let mut sector = vec![0x77u8; 2048];
        sector[0x14] = 0x00; // not scrambled
        let snapshot = sector.clone();
        let mut keys = DecryptKeys::Css { title_key };
        decrypt_sectors(&mut sector, &mut keys, 0).unwrap();
        assert_eq!(sector, snapshot, "clear CSS sector must be left untouched");
    }

    /// CSS decrypt always returns Ok (it cannot fail — descrambling is XOR,
    /// no key validity check), even for an empty buffer.
    ///
    /// Grounding: the CSS arm has no `return Err` path; `chunks_mut` over an
    /// empty slice is a no-op; the function ends `Ok(())`.
    /// Mutation: make the CSS arm return Err -> this fails.
    #[test]
    fn css_empty_buffer_is_ok() {
        let mut buf: Vec<u8> = Vec::new();
        let mut keys = DecryptKeys::Css { title_key: [0; 5] };
        assert!(decrypt_sectors(&mut buf, &mut keys, 0).is_ok());
    }

    // ── AACS unit-key index selection ──────────────────────────────────────

    /// AACS decrypt with an out-of-range unit_key_idx must fail loud with
    /// DecryptFailed — never silently fall back to a wrong key or pass
    /// encrypted data through as clear.
    ///
    /// Grounding: `let uk = match unit_keys.get(unit_key_idx) { Some => ...,
    /// None => return Err(DecryptFailed) }`.
    /// Mutation: change `unit_keys.get(unit_key_idx)` to `unit_keys.get(0)` or
    /// `.unwrap_or` a default -> the out-of-range index would not error; this
    /// fails.
    #[test]
    fn aacs_out_of_range_unit_key_idx_errors() {
        let mut keys = DecryptKeys::Aacs {
            unit_keys: vec![(0, [0xAB; 16])],
            read_data_key: None,
        };
        let mut buf = clear_ts_region(aacs::ALIGNED_UNIT_LEN);
        let err = decrypt_sectors(&mut buf, &mut keys, 5)
            .expect_err("unit_key_idx 5 is out of range for a 1-key list");
        assert_eq!(
            err.code(),
            crate::error::Error::DecryptFailed.code(),
            "out-of-range unit key index must be DecryptFailed"
        );
    }

    /// AACS with an empty unit_keys list and any index errors (no key to use).
    ///
    /// Grounding: `unit_keys.get(0)` on an empty Vec is None -> DecryptFailed.
    /// Mutation: defaulting to [0u8;16] on None would proceed; this fails.
    #[test]
    fn aacs_empty_unit_keys_errors() {
        let mut keys = DecryptKeys::Aacs {
            unit_keys: vec![],
            read_data_key: None,
        };
        let mut buf = clear_ts_region(aacs::ALIGNED_UNIT_LEN);
        let err = decrypt_sectors(&mut buf, &mut keys, 0).expect_err("empty unit_keys must error");
        assert_eq!(err.code(), crate::error::Error::DecryptFailed.code());
    }

    // ── Multi-CPS-unit key selection ──────────────────────────────────────

    /// Encrypt an aligned unit with the AACS algorithm run in reverse so that
    /// `aacs::decrypt_unit` with the same key recovers the plaintext. Mirrors
    /// the `aacs_encrypt_unit` helper in `aacs::decrypt::tests`.
    fn aacs_encrypt_unit_for_test(unit: &mut [u8], unit_key: &[u8; 16]) {
        use aes::Aes128;
        use aes::cipher::{BlockEncrypt, KeyInit, generic_array::GenericArray};
        // CPI bits on byte 0 so the unit reads as encrypted; set before deriving
        // the per-unit key so the recovered plaintext header matches.
        unit[0] |= 0xC0;
        let header: [u8; 16] = unit[..16].try_into().unwrap();
        let derived = crate::aacs::decrypt::aes_ecb_encrypt(unit_key, &header);
        let mut k = [0u8; 16];
        for i in 0..16 {
            k[i] = derived[i] ^ header[i];
        }
        let cipher = Aes128::new(GenericArray::from_slice(&k));
        let mut prev = crate::aacs::decrypt::AACS_IV;
        let num_blocks = (aacs::ALIGNED_UNIT_LEN - 16) / 16;
        for i in 0..num_blocks {
            let off = 16 + i * 16;
            for j in 0..16 {
                unit[off + j] ^= prev[j];
            }
            let mut block = GenericArray::clone_from_slice(&unit[off..off + 16]);
            cipher.encrypt_block(&mut block);
            unit[off..off + 16].copy_from_slice(&block);
            prev.copy_from_slice(&unit[off..off + 16]);
        }
    }

    /// Build a clear aligned unit with TS sync bytes placed at the BD-TS stride
    /// (offset 4 + k*192) so `ts_sync_destroyed` reports false and
    /// `decrypt_unit` verifies it as clear after decryption.
    fn clear_ts_unit() -> Vec<u8> {
        let mut unit = vec![0u8; aacs::ALIGNED_UNIT_LEN];
        let mut off = 4;
        while off < aacs::ALIGNED_UNIT_LEN {
            unit[off] = 0x47;
            off += 192;
        }
        unit
    }

    /// A unit encrypted under unit_keys[1] (the second CPS unit) on a
    /// two-key disc must be correctly decrypted — not left as garbage —
    /// when `decrypt_sectors` is called with unit_key_idx=0 (the default).
    ///
    /// Before the fix, `decrypt_one` used only `unit_keys[unit_key_idx]`
    /// (i.e. always key 0). On a multi-CPS-unit disc this produced silent
    /// garbage for content under key ≥ 1. The fix tries every key and
    /// accepts the one whose output passes the TS-sync verify.
    ///
    /// Grounding: `for idx in try_order { … if aacs::decrypt_unit(&mut attempt, key) { … } }`
    /// Mutation: revert to the pre-fix `decrypt_unit_full(chunk, &uk, …)` where
    /// `uk = raw_keys[unit_key_idx]` (always key 0) → the unit comes out as
    /// garbled bytes that still look scrambled, failing the `!ts_sync_destroyed`
    /// assert.
    #[test]
    fn aacs_multi_cps_unit_disc_decrypts_under_non_zero_key() {
        let key0 = [0x11u8; 16]; // CPS unit 0 key — NOT the correct key for this unit
        let key1 = [0x22u8; 16]; // CPS unit 1 key — the correct key

        // Build and encrypt a clear unit under key1 (the non-default CPS unit).
        let mut unit = clear_ts_unit();
        aacs_encrypt_unit_for_test(&mut unit, &key1);
        assert!(
            aacs::ts_sync_destroyed(&unit),
            "encrypted unit must look scrambled before decrypt"
        );

        let mut keys = DecryptKeys::Aacs {
            unit_keys: vec![(0, key0), (1, key1)], // two CPS units
            read_data_key: None,
        };

        // Call with the default hint (idx 0) — the fix must fall back to key1.
        let mut buf = unit;
        decrypt_sectors(&mut buf, &mut keys, 0).expect("multi-CPS decrypt must succeed");

        assert!(
            !aacs::ts_sync_destroyed(&buf),
            "unit encrypted under key1 must be fully decrypted (TS syncs restored)"
        );
        // Every sync position must carry 0x47.
        assert_eq!(
            aacs::ts_sync_count(&buf),
            aacs::ts_packet_total(&buf),
            "all TS sync bytes must be restored after decrypting under key1"
        );
    }

    /// Single-key disc: the common case is unaffected — the single key is
    /// tried first (via the hint) and validates, so no second-pass overhead.
    ///
    /// Grounding: the `hint = last_key_idx.load(…)` path returns on the first
    /// `try_order` iteration. A regression that always tried all keys (instead
    /// of accepting the first hit) would still pass this test — correctness is
    /// the invariant here, not the performance shortcut.
    #[test]
    fn aacs_single_key_disc_still_decrypts_correctly() {
        let key = [0x55u8; 16];
        let mut unit = clear_ts_unit();
        aacs_encrypt_unit_for_test(&mut unit, &key);

        let mut keys = DecryptKeys::Aacs {
            unit_keys: vec![(0, key)],
            read_data_key: None,
        };
        let mut buf = unit;
        decrypt_sectors(&mut buf, &mut keys, 0).expect("single-key disc must decrypt");
        assert!(
            !aacs::ts_sync_destroyed(&buf),
            "single-key disc: TS syncs must be restored"
        );
        assert_eq!(
            aacs::ts_sync_count(&buf),
            aacs::ts_packet_total(&buf),
            "all TS sync bytes must be restored for single-key disc"
        );
    }

    /// Regression for the silent partial-decrypt-loss defect: a scrambled AACS
    /// unit that NO supplied key can decrypt is restored to its original
    /// ciphertext (so a clear nav-file is never corrupted) AND `decrypt_sectors`
    /// returns the unit's byte length as the dropped count. Before the fix this
    /// returned `()` and the still-encrypted bytes flowed downstream to be
    /// silently dropped by the TS assembler with zero loss accounting — a rip
    /// missing real content reported `lost_video_secs=0` and passed the abort
    /// gate even under `abort_on_lost_secs=0`.
    ///
    /// Grounding: the `dropped_bytes.fetch_add(chunk.len(), …)` on the
    /// no-key-validated restore path; the function returns that tally.
    /// Mutation: drop the `fetch_add` (or return a constant 0) → dropped == 0,
    /// this fails.
    #[test]
    fn aacs_undecryptable_unit_reports_dropped_bytes() {
        let real_key = [0x33u8; 16];
        let wrong_key = [0x44u8; 16]; // not the encrypting key

        // Encrypt a clear unit under real_key, then offer ONLY the wrong key.
        let mut unit = clear_ts_unit();
        aacs_encrypt_unit_for_test(&mut unit, &real_key);
        let ciphertext = unit.clone();
        assert!(
            aacs::ts_sync_destroyed(&unit),
            "encrypted unit must look scrambled going in"
        );

        let mut keys = DecryptKeys::Aacs {
            unit_keys: vec![(0, wrong_key)],
            read_data_key: None,
        };
        let mut buf = unit;
        let dropped = decrypt_sectors(&mut buf, &mut keys, 0)
            .expect("undecryptable unit is not a hard error");

        assert_eq!(
            dropped,
            aacs::ALIGNED_UNIT_LEN,
            "the whole scrambled unit must be reported as dropped when no key validates"
        );
        assert_eq!(
            buf, ciphertext,
            "an undecryptable unit must be restored to its original ciphertext, not garbled"
        );
    }

    /// The dropped-byte tally accumulates across a multi-unit buffer where some
    /// units decrypt and others don't: a 2-unit buffer with one good and one
    /// bad unit reports exactly one unit's worth of loss, and the good unit is
    /// fully decrypted. Confirms the count is per-unit, not all-or-nothing.
    ///
    /// Grounding: the per-chunk `decrypt_one` closure tallies only the units
    /// that fail; the good unit takes the `return` before the tally.
    #[test]
    fn aacs_mixed_buffer_tallies_only_failed_units() {
        let key = [0x55u8; 16];
        let wrong = [0x66u8; 16];

        // Unit A: encrypted under `key` (decryptable). Unit B: encrypted under
        // `wrong` (NOT in the key list → undecryptable).
        let mut unit_a = clear_ts_unit();
        aacs_encrypt_unit_for_test(&mut unit_a, &key);
        let mut unit_b = clear_ts_unit();
        aacs_encrypt_unit_for_test(&mut unit_b, &wrong);
        let unit_b_ciphertext = unit_b.clone();

        let mut buf = Vec::with_capacity(2 * aacs::ALIGNED_UNIT_LEN);
        buf.extend_from_slice(&unit_a);
        buf.extend_from_slice(&unit_b);

        let mut keys = DecryptKeys::Aacs {
            unit_keys: vec![(0, key)],
            read_data_key: None,
        };
        let dropped = decrypt_sectors(&mut buf, &mut keys, 0).expect("partial decrypt is Ok");

        assert_eq!(
            dropped,
            aacs::ALIGNED_UNIT_LEN,
            "exactly one unit's worth of bytes must be reported dropped"
        );
        assert!(
            !aacs::ts_sync_destroyed(&buf[..aacs::ALIGNED_UNIT_LEN]),
            "the decryptable unit must come out clear"
        );
        assert_eq!(
            &buf[aacs::ALIGNED_UNIT_LEN..],
            &unit_b_ciphertext[..],
            "the undecryptable unit must be restored to ciphertext"
        );
    }

    /// A fully-decryptable single-key buffer reports zero dropped bytes — the
    /// loss tally must not fire on the clean path.
    #[test]
    fn aacs_all_units_decrypt_reports_zero_dropped() {
        let key = [0x77u8; 16];
        let mut unit = clear_ts_unit();
        aacs_encrypt_unit_for_test(&mut unit, &key);
        let mut keys = DecryptKeys::Aacs {
            unit_keys: vec![(0, key)],
            read_data_key: None,
        };
        let mut buf = unit;
        let dropped = decrypt_sectors(&mut buf, &mut keys, 0).expect("clean decrypt");
        assert_eq!(dropped, 0, "a fully-decrypted buffer must report no loss");
    }

    // ── decrypt_threads resolution (read-only; no global mutation) ─────────

    /// The default (auto) decrypt thread count is always a usable pool size:
    /// at least 1 (a 0-thread rayon pool is invalid) and never above
    /// MAX_THREADS (rayon stack-memory cap). This test reads the resolved
    /// value without mutating the process-global override, so it is safe to
    /// run in parallel with other tests.
    ///
    /// Grounding: `cores.clamp(1, MAX_THREADS)` in the default branch;
    /// `env.min(MAX_THREADS)` in the env branch.
    /// Mutation: change `.clamp(1, MAX_THREADS)` to `.clamp(0, MAX_THREADS)`
    /// on a 0-core probe (unlikely) — more robustly, change the cap to
    /// `MAX_THREADS * 2` -> on a many-core CI box the upper-bound assert can
    /// fail. The lower-bound (>=1) guard is the load-bearing invariant.
    #[test]
    fn decrypt_threads_within_valid_pool_range() {
        let n = decrypt_threads();
        assert!(n >= 1, "decrypt thread count must be at least 1, got {n}");
        assert!(
            n <= MAX_THREADS,
            "decrypt thread count must not exceed MAX_THREADS ({MAX_THREADS}), got {n}"
        );
    }
}