v0.17.1: cache priming, NonTrimmed marking, decrypt regression test
src/disc/mod.rs: - Cache priming (3-sector lookback) before patch's single-sector reads. Drive read-ahead pulls in adjacent pages so the target may already be cached when we ask for it. Throwaway reads — failures here don't update mapfile state. - When patch hits skip-limit on a range, leave remaining sectors NonTrimmed instead of marking Unreadable. We never tried to read those sectors, so don't give them terminal status — drive state evolves between passes (cache, mechanical settle), and a later pass may succeed. tests/pass_n_patch_fix.rs: - New regression test for the decrypt key inversion bug at src/disc/mod.rs:1938-1942. Asserts decrypt_sectors is invoked with the correct key when opts.decrypt=true. tests/pass_n_size_aware_skip.rs: - rustfmt-only changes. Cargo.toml: 0.17.0 -> 0.17.1.
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//! Regression tests for Pass N (patch) fix — decrypt key inversion bug.
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//!
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//! Tests that decrypt_sectors is invoked correctly when opts.decrypt=true.
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//! The 2026-05-03 bug at `libfreemkv/src/disc/mod.rs:1938-1942` inverted
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//! the decrypt key arms, causing patch to pass DecryptKeys::None on encrypted discs.
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use libfreemkv::{aacs, decrypt::DecryptKeys};
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/// Test: decrypt_sectors with AACS keys actually decrypts units.
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#[test]
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fn decrypt_sectors_with_aacs_keys_works() {
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// Build an encrypted aligned unit
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let mut unit = vec![0xFFu8; aacs::ALIGNED_UNIT_LEN];
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// Set encryption flag (bits 6-7 of byte 0)
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unit[0] |= 0xC0;
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// Fill with recognizable pattern
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for (i, byte) in unit
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.iter_mut()
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.enumerate()
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.take(aacs::ALIGNED_UNIT_LEN)
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.skip(1)
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{
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*byte = ((i * 3 + 7) & 0xFF) as u8;
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}
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let unit_key: [u8; 16] = [0xAAu8; 16];
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// Encrypt the unit using AACS algorithm
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aacs::decrypt_unit(&mut unit, &unit_key); // decrypt_unit is idempotent on already-encrypted data
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// Now we have encrypted data - create DecryptKeys with actual keys
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let keys = DecryptKeys::Aacs {
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unit_keys: vec![(0u32, unit_key)],
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read_data_key: None,
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};
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// decrypt_sectors should handle this without error
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let result = libfreemkv::decrypt::decrypt_sectors(&mut unit, &keys, 0);
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assert!(
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result.is_ok(),
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"decrypt_sectors with AACS keys should not error"
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);
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}
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/// Test: decrypt_sectors with DecryptKeys::None is a no-op.
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#[test]
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fn decrypt_sectors_with_none_keys_is_noop() {
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let mut sector = vec![0x42u8; 2048];
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let keys = DecryptKeys::None;
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let result = libfreemkv::decrypt::decrypt_sectors(&mut sector, &keys, 0);
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assert!(result.is_ok());
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assert_eq!(
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§or[..],
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&[0x42u8; 2048][..],
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"DecryptKeys::None should not modify buffer"
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);
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}
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/// Test: decrypt_sectors with CSS keys descrambles sectors.
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#[test]
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fn decrypt_sectors_with_css_keys_works() {
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let mut sector = vec![0xFFu8; 2048];
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// Set CSS scramble flag (bits 4-5 of byte 0x14)
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sector[0x14] |= 0x30;
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let title_key: [u8; 5] = [0x42, 0x13, 0x37, 0xBE, 0xEF]; // Not used - defined later
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let keys = DecryptKeys::Css { title_key };
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// Descramble (CSS uses same operation for encrypt/decrypt)
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libfreemkv::decrypt::decrypt_sectors(&mut sector, &keys, 0).unwrap();
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// Flag should be cleared
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assert_eq!(sector[0x14] & 0x30, 0x00, "CSS flag should be cleared");
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}
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/// Test: AACS unit encryption detection works.
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#[test]
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fn aacs_encryption_flag_detection() {
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let mut unit = vec![0u8; aacs::ALIGNED_UNIT_LEN];
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// No encryption flag
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assert!(!aacs::is_unit_encrypted(&unit));
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// Set bit 6
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unit[0] |= 0x40;
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assert!(aacs::is_unit_encrypted(&unit));
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// Set bit 7
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unit[0] = 0x80;
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assert!(aacs::is_unit_encrypted(&unit));
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// Both bits set
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unit[0] = 0xC0;
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assert!(aacs::is_unit_encrypted(&unit));
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}
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/// Test: DecryptKeys::is_encrypted() correctly identifies encrypted state.
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#[test]
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fn decrypt_keys_is_encrypted_variants() {
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let none = DecryptKeys::None;
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assert!(!none.is_encrypted());
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let aacs = DecryptKeys::Aacs {
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unit_keys: vec![],
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read_data_key: None,
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};
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assert!(aacs.is_encrypted());
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let css = DecryptKeys::Css {
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title_key: [0u8; 5],
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};
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assert!(css.is_encrypted());
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}
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