use crate::aacs;
use crate::css;
use rayon::prelude::*;
use std::sync::atomic::{AtomicUsize, Ordering};
use std::sync::{Arc, RwLock};
const PARALLEL_MIN_UNITS: usize = 8;
pub const MAX_THREADS: usize = 64;
static DECRYPT_THREADS: AtomicUsize = AtomicUsize::new(0);
static DECRYPT_POOL: RwLock<Option<Arc<rayon::ThreadPool>>> = RwLock::new(None);
pub fn set_decrypt_threads(n: usize) {
let clamped = n.min(MAX_THREADS);
DECRYPT_THREADS.store(clamped, Ordering::Relaxed);
if let Ok(mut guard) = DECRYPT_POOL.write() {
*guard = None;
}
}
fn decrypt_pool() -> Option<Arc<rayon::ThreadPool>> {
{
let guard = DECRYPT_POOL.read().unwrap_or_else(|e| e.into_inner());
if let Some(pool) = guard.as_ref() {
return Some(Arc::clone(pool));
}
}
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)
}
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)
}
#[derive(Clone)]
pub enum DecryptKeys {
None,
Aacs {
unit_keys: Vec<(u32, [u8; 16])>,
read_data_key: Option<[u8; 16]>,
},
Css { title_key: [u8; 5] },
}
impl DecryptKeys {
pub fn is_encrypted(&self) -> bool {
!matches!(self, DecryptKeys::None)
}
}
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)
}
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)))
}
pub(crate) fn lba_in_ranges(lba: u32, ranges: &[(u32, u32)]) -> bool {
match ranges.binary_search_by(|&(start, _)| start.cmp(&lba)) {
Ok(_) => true, Err(0) => false, Err(i) => {
let (start, count) = ranges[i - 1];
lba < start.saturating_add(count) }
}
}
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,
} => {
if unit_keys.get(unit_key_idx).is_none() {
return Err(crate::error::Error::DecryptFailed);
}
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;
let partial_len = buf.len() % unit_len;
if partial_len != 0 {
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;
let last_key_idx = AtomicUsize::new(unit_key_idx);
let dropped_bytes = AtomicUsize::new(0);
let decrypt_one = |chunk: &mut [u8]| {
if chunk.len() != unit_len || !aacs::aacs_unit_needs_decrypt(chunk) {
return;
}
let original: Vec<u8> = chunk.to_vec();
if let Some(ref rdk_key) = rdk {
aacs::decrypt_bus(chunk, rdk_key);
}
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) {
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;
}
}
}
chunk.copy_from_slice(&original);
dropped_bytes.fetch_add(chunk.len(), Ordering::Relaxed);
};
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 {
for (idx, chunk) in buf.chunks_mut(unit_len).enumerate() {
process(idx, chunk);
}
} else {
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 } => {
for chunk in buf.chunks_mut(2048) {
if chunk.len() < 2048 || !css::is_scrambled(chunk) {
continue;
}
let crib = css::stevenson::attack_crib(chunk);
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[..] {
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::*;
#[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"
);
}
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
}
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 {
v[off] = 0xA5;
off += 192;
}
let mut u = 0;
while u < len {
v[u] |= 0xC0;
u += aacs::ALIGNED_UNIT_LEN;
}
v
}
#[test]
fn lba_in_ranges_membership() {
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");
}
#[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);
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"
);
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"
);
}
#[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);
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"
);
}
#[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() {
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"
);
assert!(
!lba_in_ranges(200, &[(10, 5), (100, 10)]),
"past the last range"
);
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"
);
}
#[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");
}
#[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");
}
#[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);
}
#[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"
);
}
#[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)); buf[u..2 * u].copy_from_slice(&clear_ts_region(u)); buf[2 * u..].copy_from_slice(&scrambled_region(u)); 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");
}
#[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);
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");
}
#[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,
};
let mut buf = clear_ts_region(aacs::ALIGNED_UNIT_LEN);
buf.extend_from_slice(&scrambled_region(2048));
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"
);
}
#[test]
fn aacs_clear_trailing_partial_is_tolerated_unchanged() {
let mut keys = DecryptKeys::Aacs {
unit_keys: vec![(0, [0xAB; 16])],
read_data_key: None,
};
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"
);
}
#[test]
fn aacs_scrambled_trailing_partial_is_rejected() {
let mut keys = DecryptKeys::Aacs {
unit_keys: vec![(0, [0xAB; 16])],
read_data_key: None,
};
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"
);
}
#[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());
}
#[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"
);
}
#[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");
}
#[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()
);
}
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; sector[0x54..0x59].copy_from_slice(seed);
let plaintext = sector.clone();
css::lfsr::scramble_sector(title_key, &mut sector);
(sector, 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!(
§or[0x80..2048],
&plaintext[0x80..2048],
"CSS body must round-trip to plaintext"
);
assert_eq!(
sector[0x14] & 0x30,
0,
"scramble flag cleared after CSS decrypt"
);
}
#[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)"
);
}
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; 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); let body = plaintext.clone();
css::lfsr::scramble_sector(title_key, &mut plaintext);
(plaintext, body)
}
#[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]; 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);
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);
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"
);
match keys {
DecryptKeys::Css { title_key } => assert_eq!(
title_key, key_b,
"cache must hold region B's key after the rekey"
),
_ => unreachable!(),
}
}
#[test]
fn css_leaves_clear_sector_unchanged() {
let title_key = [0x01, 0x02, 0x03, 0x04, 0x05];
let mut sector = vec![0x77u8; 2048];
sector[0x14] = 0x00; 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");
}
#[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());
}
#[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"
);
}
#[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());
}
fn aacs_encrypt_unit_for_test(unit: &mut [u8], unit_key: &[u8; 16]) {
use aes::Aes128;
use aes::cipher::{BlockEncrypt, KeyInit, generic_array::GenericArray};
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]);
}
}
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
}
#[test]
fn aacs_multi_cps_unit_disc_decrypts_under_non_zero_key() {
let key0 = [0x11u8; 16]; let key1 = [0x22u8; 16];
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)], read_data_key: None,
};
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)"
);
assert_eq!(
aacs::ts_sync_count(&buf),
aacs::ts_packet_total(&buf),
"all TS sync bytes must be restored after decrypting under key1"
);
}
#[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"
);
}
#[test]
fn aacs_undecryptable_unit_reports_dropped_bytes() {
let real_key = [0x33u8; 16];
let wrong_key = [0x44u8; 16];
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"
);
}
#[test]
fn aacs_mixed_buffer_tallies_only_failed_units() {
let key = [0x55u8; 16];
let wrong = [0x66u8; 16];
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"
);
}
#[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");
}
#[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}"
);
}
}