| author | |
| committer | |
| log | b782cdb9b37ba61476cf28632a2f1e10d631dcab |
| tree | db3c1ca75f3a87926c9b6cd86b580aa96607dcb7 |
| parent | 4406127cca3b4dcf92ae7587e2e6f8b4e267abf6 |
| parent | b1b2cd7ef8d1935479212d8eb21508b8b51111ad |
| signature |
std.crypto: add AES-SIV and AES-GCM-SIV5 files changed, 1029 insertions(+), 37 deletions(-)
lib/std/crypto.zig+16| ... | @@ -31,6 +31,16 @@ pub const aead = struct { | ... | @@ -31,6 +31,16 @@ pub const aead = struct { |
| 31 | pub const Aes256Gcm = @import("crypto/aes_gcm.zig").Aes256Gcm; | 31 | pub const Aes256Gcm = @import("crypto/aes_gcm.zig").Aes256Gcm; |
| 32 | }; | 32 | }; |
| 33 | 33 | ||
| 34 | pub const aes_gcm_siv = struct { | ||
| 35 | pub const Aes128GcmSiv = @import("crypto/aes_gcm_siv.zig").Aes128GcmSiv; | ||
| 36 | pub const Aes256GcmSiv = @import("crypto/aes_gcm_siv.zig").Aes256GcmSiv; | ||
| 37 | }; | ||
| 38 | |||
| 39 | pub const aes_siv = struct { | ||
| 40 | pub const Aes128Siv = @import("crypto/aes_siv.zig").Aes128Siv; | ||
| 41 | pub const Aes256Siv = @import("crypto/aes_siv.zig").Aes256Siv; | ||
| 42 | }; | ||
| 43 | |||
| 34 | pub const aes_ocb = struct { | 44 | pub const aes_ocb = struct { |
| 35 | pub const Aes128Ocb = @import("crypto/aes_ocb.zig").Aes128Ocb; | 45 | pub const Aes128Ocb = @import("crypto/aes_ocb.zig").Aes128Ocb; |
| 36 | pub const Aes256Ocb = @import("crypto/aes_ocb.zig").Aes256Ocb; | 46 | pub const Aes256Ocb = @import("crypto/aes_ocb.zig").Aes256Ocb; |
| ... | @@ -261,6 +271,12 @@ test { | ... | @@ -261,6 +271,12 @@ test { |
| 261 | _ = aead.aes_gcm.Aes128Gcm; | 271 | _ = aead.aes_gcm.Aes128Gcm; |
| 262 | _ = aead.aes_gcm.Aes256Gcm; | 272 | _ = aead.aes_gcm.Aes256Gcm; |
| 263 | 273 | ||
| 274 | _ = aead.aes_gcm_siv.Aes128GcmSiv; | ||
| 275 | _ = aead.aes_gcm_siv.Aes256GcmSiv; | ||
| 276 | |||
| 277 | _ = aead.aes_siv.Aes128Siv; | ||
| 278 | _ = aead.aes_siv.Aes256Siv; | ||
| 279 | |||
| 264 | _ = aead.aes_ocb.Aes128Ocb; | 280 | _ = aead.aes_ocb.Aes128Ocb; |
| 265 | _ = aead.aes_ocb.Aes256Ocb; | 281 | _ = aead.aes_ocb.Aes256Ocb; |
| 266 | 282 |
lib/std/crypto/aes.zig-25| ... | @@ -28,31 +28,6 @@ pub const AesDecryptCtx = impl.AesDecryptCtx; | ... | @@ -28,31 +28,6 @@ pub const AesDecryptCtx = impl.AesDecryptCtx; |
| 28 | pub const Aes128 = impl.Aes128; | 28 | pub const Aes128 = impl.Aes128; |
| 29 | pub const Aes256 = impl.Aes256; | 29 | pub const Aes256 = impl.Aes256; |
| 30 | 30 | ||
| 31 | test "ctr" { | ||
| 32 | // NIST SP 800-38A pp 55-58 | ||
| 33 | const ctr = @import("modes.zig").ctr; | ||
| 34 | |||
| 35 | const key = [_]u8{ 0x2b, 0x7e, 0x15, 0x16, 0x28, 0xae, 0xd2, 0xa6, 0xab, 0xf7, 0x15, 0x88, 0x09, 0xcf, 0x4f, 0x3c }; | ||
| 36 | const iv = [_]u8{ 0xf0, 0xf1, 0xf2, 0xf3, 0xf4, 0xf5, 0xf6, 0xf7, 0xf8, 0xf9, 0xfa, 0xfb, 0xfc, 0xfd, 0xfe, 0xff }; | ||
| 37 | const in = [_]u8{ | ||
| 38 | 0x6b, 0xc1, 0xbe, 0xe2, 0x2e, 0x40, 0x9f, 0x96, 0xe9, 0x3d, 0x7e, 0x11, 0x73, 0x93, 0x17, 0x2a, | ||
| 39 | 0xae, 0x2d, 0x8a, 0x57, 0x1e, 0x03, 0xac, 0x9c, 0x9e, 0xb7, 0x6f, 0xac, 0x45, 0xaf, 0x8e, 0x51, | ||
| 40 | 0x30, 0xc8, 0x1c, 0x46, 0xa3, 0x5c, 0xe4, 0x11, 0xe5, 0xfb, 0xc1, 0x19, 0x1a, 0x0a, 0x52, 0xef, | ||
| 41 | 0xf6, 0x9f, 0x24, 0x45, 0xdf, 0x4f, 0x9b, 0x17, 0xad, 0x2b, 0x41, 0x7b, 0xe6, 0x6c, 0x37, 0x10, | ||
| 42 | }; | ||
| 43 | const exp_out = [_]u8{ | ||
| 44 | 0x87, 0x4d, 0x61, 0x91, 0xb6, 0x20, 0xe3, 0x26, 0x1b, 0xef, 0x68, 0x64, 0x99, 0x0d, 0xb6, 0xce, | ||
| 45 | 0x98, 0x06, 0xf6, 0x6b, 0x79, 0x70, 0xfd, 0xff, 0x86, 0x17, 0x18, 0x7b, 0xb9, 0xff, 0xfd, 0xff, | ||
| 46 | 0x5a, 0xe4, 0xdf, 0x3e, 0xdb, 0xd5, 0xd3, 0x5e, 0x5b, 0x4f, 0x09, 0x02, 0x0d, 0xb0, 0x3e, 0xab, | ||
| 47 | 0x1e, 0x03, 0x1d, 0xda, 0x2f, 0xbe, 0x03, 0xd1, 0x79, 0x21, 0x70, 0xa0, 0xf3, 0x00, 0x9c, 0xee, | ||
| 48 | }; | ||
| 49 | |||
| 50 | var out: [exp_out.len]u8 = undefined; | ||
| 51 | const ctx = Aes128.initEnc(key); | ||
| 52 | ctr(AesEncryptCtx(Aes128), ctx, out[0..], in[0..], iv, std.builtin.Endian.big); | ||
| 53 | try testing.expectEqualSlices(u8, exp_out[0..], out[0..]); | ||
| 54 | } | ||
| 55 | |||
| 56 | test "encrypt" { | 31 | test "encrypt" { |
| 57 | // Appendix B | 32 | // Appendix B |
| 58 | { | 33 | { |
lib/std/crypto/aes_gcm_siv.zig created+340| ... | @@ -0,0 +1,340 @@ | ||
| 1 | const std = @import("std"); | ||
| 2 | const assert = std.debug.assert; | ||
| 3 | const crypto = std.crypto; | ||
| 4 | const debug = std.debug; | ||
| 5 | const mem = std.mem; | ||
| 6 | const math = std.math; | ||
| 7 | const modes = @import("modes.zig"); | ||
| 8 | const Polyval = @import("ghash_polyval.zig").Polyval; | ||
| 9 | const AuthenticationError = crypto.errors.AuthenticationError; | ||
| 10 | |||
| 11 | pub const Aes128GcmSiv = AesGcmSiv(crypto.core.aes.Aes128); | ||
| 12 | pub const Aes256GcmSiv = AesGcmSiv(crypto.core.aes.Aes256); | ||
| 13 | |||
| 14 | /// AES-GCM-SIV: Authenticated encryption that remains secure even if you accidentally reuse a nonce. | ||
| 15 | /// | ||
| 16 | /// What it does: Encrypts data and protects it from tampering. You can also attach | ||
| 17 | /// unencrypted metadata (like headers) that will be authenticated but not encrypted. | ||
| 18 | /// | ||
| 19 | /// When to use AES-GCM-SIV: | ||
| 20 | /// - When you can't guarantee unique nonces (though you should still try to use unique nonces) | ||
| 21 | /// | ||
| 22 | /// When to use regular AES-GCM instead: | ||
| 23 | /// - When you can guarantee unique nonces (e.g., using a counter) | ||
| 24 | /// - When you need slightly better performance | ||
| 25 | /// | ||
| 26 | /// Security: If you accidentally reuse a nonce with the same key, AES-GCM-SIV only | ||
| 27 | /// reveals whether two messages are identical. Regular AES-GCM would be catastrophically | ||
| 28 | /// broken in this scenario, potentially revealing the authentication key. | ||
| 29 | /// | ||
| 30 | /// Performance: Slightly slower than AES-GCM due to the additional key derivation step. | ||
| 31 | /// | ||
| 32 | /// Defined in RFC 8452. | ||
| 33 | fn AesGcmSiv(comptime Aes: anytype) type { | ||
| 34 | debug.assert(Aes.block.block_length == 16); | ||
| 35 | |||
| 36 | return struct { | ||
| 37 | pub const tag_length = 16; | ||
| 38 | pub const nonce_length = 12; | ||
| 39 | pub const key_length = Aes.key_bits / 8; | ||
| 40 | |||
| 41 | const zeros: [16]u8 = @splat(0); | ||
| 42 | |||
| 43 | /// Derives the authentication and message encryption keys from the master key and nonce. | ||
| 44 | /// This implements the key derivation as specified in RFC 8452 Section 4. | ||
| 45 | /// Generates a 128-bit authentication key for POLYVAL and a message encryption key | ||
| 46 | /// (128 or 256 bits depending on the AES variant). | ||
| 47 | fn deriveKeys(message_key: *[key_length]u8, auth_key: *[16]u8, key: [key_length]u8, nonce: [nonce_length]u8) void { | ||
| 48 | const aes = Aes.initEnc(key); | ||
| 49 | |||
| 50 | // Derive authentication and message keys per RFC 8452 Section 4 | ||
| 51 | // Each encryption produces 16 bytes, but we only use first 8 bytes of each block | ||
| 52 | |||
| 53 | if (key_length == 16) { | ||
| 54 | // AES-128-GCM-SIV: Process 4 blocks in parallel | ||
| 55 | var key_blocks: [4 * 16]u8 = undefined; | ||
| 56 | var cipher_outs: [4 * 16]u8 = undefined; | ||
| 57 | |||
| 58 | // Set up all 4 blocks with counters 0-3 and nonce | ||
| 59 | inline for (0..4) |i| { | ||
| 60 | mem.writeInt(u32, key_blocks[i * 16 ..][0..4], @intCast(i), .little); | ||
| 61 | key_blocks[i * 16 + 4 .. i * 16 + 16].* = nonce; | ||
| 62 | } | ||
| 63 | |||
| 64 | // Encrypt all 4 blocks in parallel | ||
| 65 | aes.encryptWide(4, &cipher_outs, &key_blocks); | ||
| 66 | |||
| 67 | // Extract the key material (first 8 bytes of each block) | ||
| 68 | @memcpy(auth_key[0..8], cipher_outs[0..8]); | ||
| 69 | @memcpy(auth_key[8..16], cipher_outs[16..24]); | ||
| 70 | @memcpy(message_key[0..8], cipher_outs[32..40]); | ||
| 71 | @memcpy(message_key[8..16], cipher_outs[48..56]); | ||
| 72 | } else { | ||
| 73 | // AES-256-GCM-SIV: Process 6 blocks in parallel | ||
| 74 | var key_blocks: [6 * 16]u8 = undefined; | ||
| 75 | var cipher_outs: [6 * 16]u8 = undefined; | ||
| 76 | |||
| 77 | // Set up all 6 blocks with counters 0-5 and nonce | ||
| 78 | inline for (0..6) |i| { | ||
| 79 | mem.writeInt(u32, key_blocks[i * 16 ..][0..4], @intCast(i), .little); | ||
| 80 | key_blocks[i * 16 + 4 .. i * 16 + 16].* = nonce; | ||
| 81 | } | ||
| 82 | |||
| 83 | // Encrypt all 6 blocks in parallel | ||
| 84 | aes.encryptWide(6, &cipher_outs, &key_blocks); | ||
| 85 | |||
| 86 | // Extract the key material (first 8 bytes of each block) | ||
| 87 | @memcpy(auth_key[0..8], cipher_outs[0..8]); | ||
| 88 | @memcpy(auth_key[8..16], cipher_outs[16..24]); | ||
| 89 | @memcpy(message_key[0..8], cipher_outs[32..40]); | ||
| 90 | @memcpy(message_key[8..16], cipher_outs[48..56]); | ||
| 91 | @memcpy(message_key[16..24], cipher_outs[64..72]); | ||
| 92 | @memcpy(message_key[24..32], cipher_outs[80..88]); | ||
| 93 | } | ||
| 94 | } | ||
| 95 | |||
| 96 | /// Encrypts and authenticates a message using AES-GCM-SIV. | ||
| 97 | /// | ||
| 98 | /// `c`: The ciphertext buffer to write the encrypted data to. | ||
| 99 | /// `tag`: The authentication tag buffer to write the computed tag to. | ||
| 100 | /// `m`: The plaintext message to encrypt. | ||
| 101 | /// `ad`: The associated data to authenticate. | ||
| 102 | /// `npub`: The nonce to use for encryption. | ||
| 103 | /// `key`: The encryption key. | ||
| 104 | pub fn encrypt(c: []u8, tag: *[tag_length]u8, m: []const u8, ad: []const u8, npub: [nonce_length]u8, key: [key_length]u8) void { | ||
| 105 | debug.assert(c.len == m.len); | ||
| 106 | debug.assert(m.len <= (1 << 36)); | ||
| 107 | debug.assert(ad.len <= (1 << 36)); | ||
| 108 | |||
| 109 | var auth_key: [16]u8 = undefined; | ||
| 110 | var message_key: [key_length]u8 = undefined; | ||
| 111 | deriveKeys(&message_key, &auth_key, key, npub); | ||
| 112 | |||
| 113 | // Calculate POLYVAL over additional data and plaintext | ||
| 114 | const block_count = (math.divCeil(usize, ad.len, Polyval.block_length) catch unreachable) + | ||
| 115 | (math.divCeil(usize, m.len, Polyval.block_length) catch unreachable) + 1; | ||
| 116 | var mac = Polyval.initForBlockCount(&auth_key, block_count); | ||
| 117 | |||
| 118 | // Process additional data | ||
| 119 | mac.update(ad); | ||
| 120 | mac.pad(); | ||
| 121 | |||
| 122 | // Process plaintext | ||
| 123 | mac.update(m); | ||
| 124 | mac.pad(); | ||
| 125 | |||
| 126 | // Length block | ||
| 127 | var length_block: [16]u8 = undefined; | ||
| 128 | mem.writeInt(u64, length_block[0..8], @as(u64, ad.len) * 8, .little); | ||
| 129 | mem.writeInt(u64, length_block[8..16], @as(u64, m.len) * 8, .little); | ||
| 130 | mac.update(&length_block); | ||
| 131 | |||
| 132 | // Get POLYVAL result | ||
| 133 | var s: [16]u8 = undefined; | ||
| 134 | mac.final(&s); | ||
| 135 | |||
| 136 | // XOR with nonce to get pre-tag | ||
| 137 | for (npub, 0..) |b, i| { | ||
| 138 | s[i] ^= b; | ||
| 139 | } | ||
| 140 | |||
| 141 | // Clear most significant bit of last byte | ||
| 142 | s[15] &= 0x7f; | ||
| 143 | |||
| 144 | // Encrypt to get tag | ||
| 145 | const tag_aes = Aes.initEnc(message_key); | ||
| 146 | tag_aes.encrypt(tag, &s); | ||
| 147 | |||
| 148 | // Use tag as initial counter for CTR mode | ||
| 149 | var counter: [16]u8 = tag.*; | ||
| 150 | counter[15] |= 0x80; // Set most significant bit | ||
| 151 | |||
| 152 | // Encrypt message using CTR mode with 32-bit little-endian counter | ||
| 153 | const aes_ctx = Aes.initEnc(message_key); | ||
| 154 | modes.ctrSlice(@TypeOf(aes_ctx), aes_ctx, c, m, counter, .little, 0, 4); | ||
| 155 | } | ||
| 156 | |||
| 157 | /// Decrypts and authenticates a message using AES-GCM-SIV. | ||
| 158 | /// | ||
| 159 | /// `m`: Message buffer to write the decrypted data to. | ||
| 160 | /// `c`: The ciphertext to decrypt. | ||
| 161 | /// `tag`: The authentication tag. | ||
| 162 | /// `ad`: The associated data. | ||
| 163 | /// `npub`: The nonce. | ||
| 164 | /// `key`: The decryption key. | ||
| 165 | /// Asserts `c.len == m.len`. | ||
| 166 | pub fn decrypt(m: []u8, c: []const u8, tag: [tag_length]u8, ad: []const u8, npub: [nonce_length]u8, key: [key_length]u8) AuthenticationError!void { | ||
| 167 | assert(c.len == m.len); | ||
| 168 | assert(c.len <= (1 << 36)); | ||
| 169 | assert(ad.len <= (1 << 36)); | ||
| 170 | |||
| 171 | var auth_key: [16]u8 = undefined; | ||
| 172 | var message_key: [key_length]u8 = undefined; | ||
| 173 | deriveKeys(&message_key, &auth_key, key, npub); | ||
| 174 | |||
| 175 | // Decrypt message using CTR mode with 32-bit little-endian counter | ||
| 176 | var counter: [16]u8 = tag; | ||
| 177 | counter[15] |= 0x80; // Set most significant bit | ||
| 178 | |||
| 179 | const aes_ctx = Aes.initEnc(message_key); | ||
| 180 | modes.ctrSlice(@TypeOf(aes_ctx), aes_ctx, m, c, counter, .little, 0, 4); | ||
| 181 | |||
| 182 | // Verify tag by recalculating POLYVAL | ||
| 183 | const block_count = (math.divCeil(usize, ad.len, Polyval.block_length) catch unreachable) + | ||
| 184 | (math.divCeil(usize, m.len, Polyval.block_length) catch unreachable) + 1; | ||
| 185 | var mac = Polyval.initForBlockCount(&auth_key, block_count); | ||
| 186 | |||
| 187 | // Process additional data | ||
| 188 | mac.update(ad); | ||
| 189 | mac.pad(); | ||
| 190 | |||
| 191 | // Process decrypted plaintext | ||
| 192 | mac.update(m); | ||
| 193 | mac.pad(); | ||
| 194 | |||
| 195 | // Length block | ||
| 196 | var length_block: [16]u8 = undefined; | ||
| 197 | mem.writeInt(u64, length_block[0..8], @as(u64, ad.len) * 8, .little); | ||
| 198 | mem.writeInt(u64, length_block[8..16], @as(u64, m.len) * 8, .little); | ||
| 199 | mac.update(&length_block); | ||
| 200 | |||
| 201 | // Get POLYVAL result | ||
| 202 | var s: [16]u8 = undefined; | ||
| 203 | mac.final(&s); | ||
| 204 | |||
| 205 | // XOR with nonce to get pre-tag | ||
| 206 | for (npub, 0..) |b, i| { | ||
| 207 | s[i] ^= b; | ||
| 208 | } | ||
| 209 | |||
| 210 | // Clear most significant bit of last byte | ||
| 211 | s[15] &= 0x7f; | ||
| 212 | |||
| 213 | // Encrypt to get expected tag | ||
| 214 | const tag_aes = Aes.initEnc(message_key); | ||
| 215 | var computed_tag: [tag_length]u8 = undefined; | ||
| 216 | tag_aes.encrypt(&computed_tag, &s); | ||
| 217 | |||
| 218 | // Verify tag | ||
| 219 | const verify = crypto.timing_safe.eql([tag_length]u8, computed_tag, tag); | ||
| 220 | if (!verify) { | ||
| 221 | crypto.secureZero(u8, &computed_tag); | ||
| 222 | @memset(m, undefined); | ||
| 223 | return error.AuthenticationFailed; | ||
| 224 | } | ||
| 225 | } | ||
| 226 | }; | ||
| 227 | } | ||
| 228 | |||
| 229 | const htest = @import("test.zig"); | ||
| 230 | const testing = std.testing; | ||
| 231 | |||
| 232 | test "Aes128GcmSiv - RFC 8452 Test Vector 1" { | ||
| 233 | // Test vector from RFC 8452 Appendix C.1 | ||
| 234 | const key = [_]u8{ | ||
| 235 | 0x01, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, | ||
| 236 | 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, | ||
| 237 | }; | ||
| 238 | const nonce = [_]u8{ | ||
| 239 | 0x03, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, | ||
| 240 | 0x00, 0x00, 0x00, 0x00, | ||
| 241 | }; | ||
| 242 | const ad = ""; | ||
| 243 | const m = ""; | ||
| 244 | var c: [m.len]u8 = undefined; | ||
| 245 | var tag: [Aes128GcmSiv.tag_length]u8 = undefined; | ||
| 246 | |||
| 247 | Aes128GcmSiv.encrypt(&c, &tag, m, ad, nonce, key); | ||
| 248 | try htest.assertEqual("dc20e2d83f25705bb49e439eca56de25", &tag); | ||
| 249 | } | ||
| 250 | |||
| 251 | test "Aes128GcmSiv - RFC 8452 Test Vector 2" { | ||
| 252 | // Test vector from RFC 8452 Appendix C.1 | ||
| 253 | const key = [_]u8{ | ||
| 254 | 0x01, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, | ||
| 255 | 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, | ||
| 256 | }; | ||
| 257 | const nonce = [_]u8{ | ||
| 258 | 0x03, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, | ||
| 259 | 0x00, 0x00, 0x00, 0x00, | ||
| 260 | }; | ||
| 261 | const plaintext = [_]u8{ | ||
| 262 | 0x01, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, | ||
| 263 | }; | ||
| 264 | const ad = ""; | ||
| 265 | var c: [plaintext.len]u8 = undefined; | ||
| 266 | var tag: [Aes128GcmSiv.tag_length]u8 = undefined; | ||
| 267 | |||
| 268 | Aes128GcmSiv.encrypt(&c, &tag, &plaintext, ad, nonce, key); | ||
| 269 | try htest.assertEqual("b5d839330ac7b786", &c); | ||
| 270 | try htest.assertEqual("578782fff6013b815b287c22493a364c", &tag); | ||
| 271 | |||
| 272 | var m2: [plaintext.len]u8 = undefined; | ||
| 273 | try Aes128GcmSiv.decrypt(&m2, &c, tag, ad, nonce, key); | ||
| 274 | try testing.expectEqualSlices(u8, &plaintext, &m2); | ||
| 275 | } | ||
| 276 | |||
| 277 | test "Aes128GcmSiv - RFC 8452 Test Vector 3" { | ||
| 278 | // Test vector from RFC 8452 Appendix C.1 | ||
| 279 | const key = [_]u8{ | ||
| 280 | 0x01, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, | ||
| 281 | 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, | ||
| 282 | }; | ||
| 283 | const nonce = [_]u8{ | ||
| 284 | 0x03, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, | ||
| 285 | 0x00, 0x00, 0x00, 0x00, | ||
| 286 | }; | ||
| 287 | const plaintext = [_]u8{ | ||
| 288 | 0x01, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, | ||
| 289 | 0x00, 0x00, 0x00, 0x00, | ||
| 290 | }; | ||
| 291 | const ad = ""; | ||
| 292 | var c: [plaintext.len]u8 = undefined; | ||
| 293 | var tag: [Aes128GcmSiv.tag_length]u8 = undefined; | ||
| 294 | |||
| 295 | Aes128GcmSiv.encrypt(&c, &tag, &plaintext, ad, nonce, key); | ||
| 296 | try htest.assertEqual("7323ea61d05932260047d942", &c); | ||
| 297 | try htest.assertEqual("a4978db357391a0bc4fdec8b0d106639", &tag); | ||
| 298 | |||
| 299 | var m2: [plaintext.len]u8 = undefined; | ||
| 300 | try Aes128GcmSiv.decrypt(&m2, &c, tag, ad, nonce, key); | ||
| 301 | try testing.expectEqualSlices(u8, &plaintext, &m2); | ||
| 302 | } | ||
| 303 | |||
| 304 | test "Aes256GcmSiv - RFC 8452 Test Vector" { | ||
| 305 | // Test vector from RFC 8452 Appendix C.2 | ||
| 306 | const key = [_]u8{ | ||
| 307 | 0x01, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, | ||
| 308 | 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, | ||
| 309 | 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, | ||
| 310 | 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, | ||
| 311 | }; | ||
| 312 | const nonce = [_]u8{ | ||
| 313 | 0x03, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, | ||
| 314 | 0x00, 0x00, 0x00, 0x00, | ||
| 315 | }; | ||
| 316 | const ad = ""; | ||
| 317 | const m = ""; | ||
| 318 | var c: [m.len]u8 = undefined; | ||
| 319 | var tag: [Aes256GcmSiv.tag_length]u8 = undefined; | ||
| 320 | |||
| 321 | Aes256GcmSiv.encrypt(&c, &tag, m, ad, nonce, key); | ||
| 322 | try htest.assertEqual("07f5f4169bbf55a8400cd47ea6fd400f", &tag); | ||
| 323 | } | ||
| 324 | |||
| 325 | test "Aes128GcmSiv - Decrypt with wrong tag" { | ||
| 326 | const key: [Aes128GcmSiv.key_length]u8 = @splat(0x69); | ||
| 327 | const nonce: [Aes128GcmSiv.nonce_length]u8 = @splat(0x42); | ||
| 328 | const m = "Test message"; | ||
| 329 | const ad = ""; | ||
| 330 | var c: [m.len]u8 = undefined; | ||
| 331 | var tag: [Aes128GcmSiv.tag_length]u8 = undefined; | ||
| 332 | |||
| 333 | Aes128GcmSiv.encrypt(&c, &tag, m, ad, nonce, key); | ||
| 334 | |||
| 335 | // Corrupt the tag | ||
| 336 | tag[0] ^= 0x01; | ||
| 337 | |||
| 338 | var m2: [m.len]u8 = undefined; | ||
| 339 | try testing.expectError(error.AuthenticationFailed, Aes128GcmSiv.decrypt(&m2, &c, tag, ad, nonce, key)); | ||
| 340 | } | ||
lib/std/crypto/aes_siv.zig created+481| ... | @@ -0,0 +1,481 @@ | ||
| 1 | const std = @import("std"); | ||
| 2 | const assert = std.debug.assert; | ||
| 3 | const crypto = std.crypto; | ||
| 4 | const debug = std.debug; | ||
| 5 | const mem = std.mem; | ||
| 6 | const math = std.math; | ||
| 7 | const modes = crypto.core.modes; | ||
| 8 | const Cmac = @import("cmac.zig").Cmac; | ||
| 9 | const AuthenticationError = crypto.errors.AuthenticationError; | ||
| 10 | |||
| 11 | pub const Aes128Siv = AesSiv(crypto.core.aes.Aes128); | ||
| 12 | pub const Aes256Siv = AesSiv(crypto.core.aes.Aes256); | ||
| 13 | |||
| 14 | /// AES-SIV: Deterministic authenticated encryption - the same message always produces the same ciphertext. | ||
| 15 | /// | ||
| 16 | /// What it does: Encrypts data and protects it from tampering. Unlike most encryption modes, | ||
| 17 | /// AES-SIV is deterministic: encrypting the same message with the same key always produces | ||
| 18 | /// the same ciphertext (unless you provide an optional nonce). | ||
| 19 | /// | ||
| 20 | /// When to use AES-SIV: | ||
| 21 | /// - When you need deterministic encryption (e.g., for deduplication in encrypted storage) | ||
| 22 | /// - When you can't store or generate nonces | ||
| 23 | /// - For key wrapping (protecting cryptographic keys) | ||
| 24 | /// - When you need to search encrypted data without decrypting it | ||
| 25 | /// | ||
| 26 | /// When NOT to use AES-SIV: | ||
| 27 | /// - When identical plaintexts must produce different ciphertexts (use AES-GCM or AES-GCM-SIV) | ||
| 28 | /// - For network protocols where replay attacks are a concern | ||
| 29 | /// | ||
| 30 | /// Unique features: | ||
| 31 | /// - Optional nonce: You can add a nonce to make encryption non-deterministic, but this is optional | ||
| 32 | /// - Multiple associated data: Supports a vector of associated data strings instead of just one. | ||
| 33 | /// The algorithm cryptographically ensures each component is properly separated, preventing | ||
| 34 | /// canonicalization attacks where different splits of data could be accepted as valid. | ||
| 35 | /// | ||
| 36 | /// Security properties: | ||
| 37 | /// - Deterministic: Same input always gives same output (this can leak information about patterns) | ||
| 38 | /// - Nonce misuse resistant: Doesn't catastrophically fail if you reuse a nonce | ||
| 39 | /// - Key commitment: Ciphertext can only be decrypted with the exact key that encrypted it | ||
| 40 | /// | ||
| 41 | /// AES-SIV has better security properties than AES-GCM-SIV, but is must slower. | ||
| 42 | /// | ||
| 43 | /// How it works: Combines two keys - one for authentication (S2V) and one for encryption (CTR mode). | ||
| 44 | /// The total key size is double the AES key size (256 bits for AES-128-SIV, 512 bits for AES-256-SIV). | ||
| 45 | /// | ||
| 46 | /// Defined in RFC 5297. | ||
| 47 | fn AesSiv(comptime Aes: anytype) type { | ||
| 48 | debug.assert(Aes.block.block_length == 16); | ||
| 49 | |||
| 50 | return struct { | ||
| 51 | pub const tag_length = 16; | ||
| 52 | pub const key_length = Aes.key_bits / 8 * 2; // SIV uses 2x key size | ||
| 53 | |||
| 54 | const CmacImpl = Cmac(Aes); | ||
| 55 | |||
| 56 | /// S2V (String to Vector) - RFC 5297 Section 2.4 | ||
| 57 | /// Derives a synthetic IV from the key and input strings using CMAC. | ||
| 58 | /// This function implements a cryptographic pseudo-random function that maps | ||
| 59 | /// a variable-length vector of strings to a fixed 128-bit output. | ||
| 60 | fn s2v(iv: *[16]u8, key: [Aes.key_bits / 8]u8, strings: []const []const u8) void { | ||
| 61 | assert(strings.len > 0); | ||
| 62 | assert(strings.len <= 127); // S2V limitation | ||
| 63 | |||
| 64 | var d: [16]u8 = undefined; | ||
| 65 | |||
| 66 | // Special case: single empty string | ||
| 67 | if (strings.len == 1 and strings[0].len == 0) { | ||
| 68 | CmacImpl.create(&d, &[_]u8{}, &key); | ||
| 69 | iv.* = d; | ||
| 70 | return; | ||
| 71 | } | ||
| 72 | |||
| 73 | // Initialize with CMAC of zero block | ||
| 74 | const zero_block: [16]u8 = @splat(0); | ||
| 75 | CmacImpl.create(&d, &zero_block, &key); | ||
| 76 | |||
| 77 | // Process all strings except the last one | ||
| 78 | var i: usize = 0; | ||
| 79 | while (i < strings.len - 1) : (i += 1) { | ||
| 80 | d = dbl(d); | ||
| 81 | var tmp: [16]u8 = undefined; | ||
| 82 | CmacImpl.create(&tmp, strings[i], &key); | ||
| 83 | for (&d, tmp) |*b, t| { | ||
| 84 | b.* ^= t; | ||
| 85 | } | ||
| 86 | } | ||
| 87 | |||
| 88 | // Process the final string | ||
| 89 | const sn = strings[strings.len - 1]; | ||
| 90 | if (sn.len >= 16) { | ||
| 91 | // XOR d with the first 16 bytes of Sn | ||
| 92 | var xored_msg_buf: [4096]u8 = undefined; | ||
| 93 | const xored_len = @min(sn.len, xored_msg_buf.len); | ||
| 94 | @memcpy(xored_msg_buf[0..xored_len], sn[0..xored_len]); | ||
| 95 | |||
| 96 | for (d, 0..) |b, j| { | ||
| 97 | xored_msg_buf[j] ^= b; | ||
| 98 | } | ||
| 99 | |||
| 100 | CmacImpl.create(iv, xored_msg_buf[0..xored_len], &key); | ||
| 101 | } else { | ||
| 102 | // Pad and XOR | ||
| 103 | d = dbl(d); | ||
| 104 | var padded: [16]u8 = @splat(0); | ||
| 105 | @memcpy(padded[0..sn.len], sn); | ||
| 106 | padded[sn.len] = 0x80; | ||
| 107 | for (&d, padded) |*b, p| { | ||
| 108 | b.* ^= p; | ||
| 109 | } | ||
| 110 | CmacImpl.create(iv, &d, &key); | ||
| 111 | } | ||
| 112 | } | ||
| 113 | |||
| 114 | /// Double operation as defined in RFC 5297. | ||
| 115 | /// Performs multiplication by x (i.e., left shift by 1) in GF(2^128). | ||
| 116 | /// This is the same operation used in CMAC subkey generation. | ||
| 117 | /// If the MSB is set, XORs with the polynomial 0x87 after shifting. | ||
| 118 | fn dbl(d: [16]u8) [16]u8 { | ||
| 119 | // Read as big-endian 128-bit integer | ||
| 120 | const val = mem.readInt(u128, &d, .big); | ||
| 121 | |||
| 122 | // Left shift by 1, and XOR with 0x87 if MSB was set | ||
| 123 | const doubled = (val << 1) ^ (0x87 & -%(@as(u128, val >> 127))); | ||
| 124 | |||
| 125 | // Write back as big-endian | ||
| 126 | var result: [16]u8 = undefined; | ||
| 127 | mem.writeInt(u128, &result, doubled, .big); | ||
| 128 | return result; | ||
| 129 | } | ||
| 130 | |||
| 131 | /// Encrypt plaintext using AES-SIV | ||
| 132 | /// `c`: Output buffer for ciphertext (same size as plaintext) | ||
| 133 | /// `tag`: Output buffer for authentication tag (synthetic IV) | ||
| 134 | /// `m`: Plaintext to encrypt | ||
| 135 | /// `ad`: Optional associated data | ||
| 136 | /// `nonce`: Optional nonce (if provided, will be added as last AD component) | ||
| 137 | /// `key`: Combined key (2x AES key size) | ||
| 138 | pub fn encrypt(c: []u8, tag: *[tag_length]u8, m: []const u8, ad: ?[]const u8, nonce: ?[]const u8, key: [key_length]u8) void { | ||
| 139 | debug.assert(c.len == m.len); | ||
| 140 | |||
| 141 | // Split key into K1 (for S2V) and K2 (for CTR) | ||
| 142 | const k1 = key[0 .. Aes.key_bits / 8]; | ||
| 143 | const k2 = key[Aes.key_bits / 8 ..]; | ||
| 144 | |||
| 145 | // Prepare strings for S2V: AD components followed by plaintext | ||
| 146 | var strings_buf: [128][]const u8 = undefined; | ||
| 147 | var strings_len: usize = 0; | ||
| 148 | |||
| 149 | if (ad) |a| { | ||
| 150 | strings_buf[strings_len] = a; | ||
| 151 | strings_len += 1; | ||
| 152 | } | ||
| 153 | if (nonce) |n| { | ||
| 154 | strings_buf[strings_len] = n; | ||
| 155 | strings_len += 1; | ||
| 156 | } | ||
| 157 | strings_buf[strings_len] = m; | ||
| 158 | strings_len += 1; | ||
| 159 | |||
| 160 | // Compute synthetic IV using S2V | ||
| 161 | s2v(tag, k1.*, strings_buf[0..strings_len]); | ||
| 162 | |||
| 163 | // Clear the 31st and 63rd bits for use as CTR IV | ||
| 164 | var ctr_iv = tag.*; | ||
| 165 | ctr_iv[8] &= 0x7f; | ||
| 166 | ctr_iv[12] &= 0x7f; | ||
| 167 | |||
| 168 | // Encrypt plaintext using CTR mode | ||
| 169 | const aes_ctx = Aes.initEnc(k2.*); | ||
| 170 | modes.ctr(@TypeOf(aes_ctx), aes_ctx, c, m, ctr_iv, .big); | ||
| 171 | } | ||
| 172 | |||
| 173 | /// Decrypt ciphertext using AES-SIV | ||
| 174 | /// `m`: Output buffer for decrypted plaintext | ||
| 175 | /// `c`: Ciphertext to decrypt | ||
| 176 | /// `tag`: Authentication tag (synthetic IV) | ||
| 177 | /// `ad`: Optional associated data (must match encryption) | ||
| 178 | /// `nonce`: Optional nonce (must match encryption) | ||
| 179 | /// `key`: Combined key (2x AES key size) | ||
| 180 | pub fn decrypt(m: []u8, c: []const u8, tag: [tag_length]u8, ad: ?[]const u8, nonce: ?[]const u8, key: [key_length]u8) AuthenticationError!void { | ||
| 181 | assert(c.len == m.len); | ||
| 182 | |||
| 183 | // Split key into K1 (for S2V) and K2 (for CTR) | ||
| 184 | const k1 = key[0 .. Aes.key_bits / 8]; | ||
| 185 | const k2 = key[Aes.key_bits / 8 ..]; | ||
| 186 | |||
| 187 | // Clear the 31st and 63rd bits for use as CTR IV | ||
| 188 | var ctr_iv = tag; | ||
| 189 | ctr_iv[8] &= 0x7f; | ||
| 190 | ctr_iv[12] &= 0x7f; | ||
| 191 | |||
| 192 | // Decrypt ciphertext using CTR mode | ||
| 193 | const aes_ctx = Aes.initEnc(k2.*); | ||
| 194 | modes.ctr(@TypeOf(aes_ctx), aes_ctx, m, c, ctr_iv, .big); | ||
| 195 | |||
| 196 | // Prepare strings for S2V: AD components followed by plaintext | ||
| 197 | var strings_buf: [128][]const u8 = undefined; | ||
| 198 | var strings_len: usize = 0; | ||
| 199 | |||
| 200 | if (ad) |a| { | ||
| 201 | strings_buf[strings_len] = a; | ||
| 202 | strings_len += 1; | ||
| 203 | } | ||
| 204 | if (nonce) |n| { | ||
| 205 | strings_buf[strings_len] = n; | ||
| 206 | strings_len += 1; | ||
| 207 | } | ||
| 208 | strings_buf[strings_len] = m; | ||
| 209 | strings_len += 1; | ||
| 210 | |||
| 211 | // Verify synthetic IV using S2V | ||
| 212 | var computed_tag: [tag_length]u8 = undefined; | ||
| 213 | s2v(&computed_tag, k1.*, strings_buf[0..strings_len]); | ||
| 214 | |||
| 215 | // Verify tag | ||
| 216 | const verify = crypto.timing_safe.eql([tag_length]u8, computed_tag, tag); | ||
| 217 | if (!verify) { | ||
| 218 | crypto.secureZero(u8, &computed_tag); | ||
| 219 | @memset(m, undefined); | ||
| 220 | return error.AuthenticationFailed; | ||
| 221 | } | ||
| 222 | } | ||
| 223 | |||
| 224 | /// Encrypts plaintext with multiple associated data components. | ||
| 225 | /// This is the most general form of AES-SIV encryption that accepts | ||
| 226 | /// an arbitrary vector of associated data strings as specified in RFC 5297. | ||
| 227 | pub fn encryptWithAdVector(c: []u8, tag: *[tag_length]u8, m: []const u8, ad: []const []const u8, key: [key_length]u8) void { | ||
| 228 | debug.assert(c.len == m.len); | ||
| 229 | |||
| 230 | // Split key into K1 (for S2V) and K2 (for CTR) | ||
| 231 | const k1 = key[0 .. Aes.key_bits / 8]; | ||
| 232 | const k2 = key[Aes.key_bits / 8 ..]; | ||
| 233 | |||
| 234 | // Prepare strings for S2V: AD components followed by plaintext | ||
| 235 | var strings_buf: [128][]const u8 = undefined; | ||
| 236 | var strings_len: usize = 0; | ||
| 237 | |||
| 238 | for (ad) |a| { | ||
| 239 | strings_buf[strings_len] = a; | ||
| 240 | strings_len += 1; | ||
| 241 | } | ||
| 242 | strings_buf[strings_len] = m; | ||
| 243 | strings_len += 1; | ||
| 244 | |||
| 245 | // Compute synthetic IV using S2V | ||
| 246 | s2v(tag, k1.*, strings_buf[0..strings_len]); | ||
| 247 | |||
| 248 | // Clear the 31st and 63rd bits for use as CTR IV | ||
| 249 | var ctr_iv = tag.*; | ||
| 250 | ctr_iv[8] &= 0x7f; | ||
| 251 | ctr_iv[12] &= 0x7f; | ||
| 252 | |||
| 253 | // Encrypt plaintext using CTR mode | ||
| 254 | const aes_ctx = Aes.initEnc(k2.*); | ||
| 255 | modes.ctr(@TypeOf(aes_ctx), aes_ctx, c, m, ctr_iv, .big); | ||
| 256 | } | ||
| 257 | |||
| 258 | /// Decrypts ciphertext with multiple associated data components. | ||
| 259 | /// This is the most general form of AES-SIV decryption that accepts | ||
| 260 | /// an arbitrary vector of associated data strings as specified in RFC 5297. | ||
| 261 | pub fn decryptWithAdVector(m: []u8, c: []const u8, tag: [tag_length]u8, ad: []const []const u8, key: [key_length]u8) AuthenticationError!void { | ||
| 262 | assert(c.len == m.len); | ||
| 263 | |||
| 264 | // Split key into K1 (for S2V) and K2 (for CTR) | ||
| 265 | const k1 = key[0 .. Aes.key_bits / 8]; | ||
| 266 | const k2 = key[Aes.key_bits / 8 ..]; | ||
| 267 | |||
| 268 | // Clear the 31st and 63rd bits for use as CTR IV | ||
| 269 | var ctr_iv = tag; | ||
| 270 | ctr_iv[8] &= 0x7f; | ||
| 271 | ctr_iv[12] &= 0x7f; | ||
| 272 | |||
| 273 | // Decrypt ciphertext using CTR mode | ||
| 274 | const aes_ctx = Aes.initEnc(k2.*); | ||
| 275 | modes.ctr(@TypeOf(aes_ctx), aes_ctx, m, c, ctr_iv, .big); | ||
| 276 | |||
| 277 | // Prepare strings for S2V: AD components followed by plaintext | ||
| 278 | var strings_buf: [128][]const u8 = undefined; | ||
| 279 | var strings_len: usize = 0; | ||
| 280 | |||
| 281 | for (ad) |a| { | ||
| 282 | strings_buf[strings_len] = a; | ||
| 283 | strings_len += 1; | ||
| 284 | } | ||
| 285 | strings_buf[strings_len] = m; | ||
| 286 | strings_len += 1; | ||
| 287 | |||
| 288 | // Verify synthetic IV using S2V | ||
| 289 | var computed_tag: [tag_length]u8 = undefined; | ||
| 290 | s2v(&computed_tag, k1.*, strings_buf[0..strings_len]); | ||
| 291 | |||
| 292 | // Verify tag | ||
| 293 | const verify = crypto.timing_safe.eql([tag_length]u8, computed_tag, tag); | ||
| 294 | if (!verify) { | ||
| 295 | crypto.secureZero(u8, &computed_tag); | ||
| 296 | @memset(m, undefined); | ||
| 297 | return error.AuthenticationFailed; | ||
| 298 | } | ||
| 299 | } | ||
| 300 | }; | ||
| 301 | } | ||
| 302 | |||
| 303 | const htest = @import("test.zig"); | ||
| 304 | const testing = std.testing; | ||
| 305 | |||
| 306 | test "AES-SIV double operation" { | ||
| 307 | const AesSivTest = AesSiv(crypto.core.aes.Aes128); | ||
| 308 | |||
| 309 | // Test vector from RFC 5297 | ||
| 310 | const input = [_]u8{ 0x0e, 0x04, 0x01, 0x02, 0x03, 0x04, 0x05, 0x06, 0x07, 0x08, 0x09, 0x0a, 0x0b, 0x0c, 0x0d, 0x0e }; | ||
| 311 | const expected = [_]u8{ 0x1c, 0x08, 0x02, 0x04, 0x06, 0x08, 0x0a, 0x0c, 0x0e, 0x10, 0x12, 0x14, 0x16, 0x18, 0x1a, 0x1c }; | ||
| 312 | |||
| 313 | const result = AesSivTest.dbl(input); | ||
| 314 | try testing.expectEqualSlices(u8, &expected, &result); | ||
| 315 | } | ||
| 316 | |||
| 317 | test "AES-SIV double operation with MSB set" { | ||
| 318 | const AesSivTest = AesSiv(crypto.core.aes.Aes128); | ||
| 319 | |||
| 320 | const input = [_]u8{ 0xe0, 0x40, 0x10, 0x20, 0x30, 0x40, 0x50, 0x60, 0x70, 0x80, 0x90, 0xa0, 0xb0, 0xc0, 0xd0, 0xe0 }; | ||
| 321 | const expected = [_]u8{ 0xc0, 0x80, 0x20, 0x40, 0x60, 0x80, 0xa0, 0xc0, 0xe1, 0x01, 0x21, 0x41, 0x61, 0x81, 0xa1, 0x47 }; | ||
| 322 | |||
| 323 | const result = AesSivTest.dbl(input); | ||
| 324 | try testing.expectEqualSlices(u8, &expected, &result); | ||
| 325 | } | ||
| 326 | |||
| 327 | test "Aes128Siv - RFC 5297 Test Vector A.1" { | ||
| 328 | // Test vector from RFC 5297 Appendix A.1 | ||
| 329 | const key = [_]u8{ | ||
| 330 | 0xff, 0xfe, 0xfd, 0xfc, 0xfb, 0xfa, 0xf9, 0xf8, 0xf7, 0xf6, 0xf5, 0xf4, 0xf3, 0xf2, 0xf1, 0xf0, | ||
| 331 | 0xf0, 0xf1, 0xf2, 0xf3, 0xf4, 0xf5, 0xf6, 0xf7, 0xf8, 0xf9, 0xfa, 0xfb, 0xfc, 0xfd, 0xfe, 0xff, | ||
| 332 | }; | ||
| 333 | const ad = [_]u8{ | ||
| 334 | 0x10, 0x11, 0x12, 0x13, 0x14, 0x15, 0x16, 0x17, 0x18, 0x19, 0x1a, 0x1b, 0x1c, 0x1d, 0x1e, 0x1f, | ||
| 335 | 0x20, 0x21, 0x22, 0x23, 0x24, 0x25, 0x26, 0x27, | ||
| 336 | }; | ||
| 337 | const plaintext = [_]u8{ | ||
| 338 | 0x11, 0x22, 0x33, 0x44, 0x55, 0x66, 0x77, 0x88, 0x99, 0xaa, 0xbb, 0xcc, 0xdd, 0xee, | ||
| 339 | }; | ||
| 340 | |||
| 341 | var ciphertext: [plaintext.len]u8 = undefined; | ||
| 342 | var tag: [16]u8 = undefined; | ||
| 343 | |||
| 344 | // Test using vector API for RFC compliance | ||
| 345 | const ad_components = [_][]const u8{&ad}; | ||
| 346 | Aes128Siv.encryptWithAdVector(&ciphertext, &tag, &plaintext, &ad_components, key); | ||
| 347 | |||
| 348 | // Expected values from RFC 5297 | ||
| 349 | try htest.assertEqual("85632d07c6e8f37f950acd320a2ecc93", &tag); | ||
| 350 | try htest.assertEqual("40c02b9690c4dc04daef7f6afe5c", &ciphertext); | ||
| 351 | |||
| 352 | // Test decryption | ||
| 353 | var decrypted: [plaintext.len]u8 = undefined; | ||
| 354 | try Aes128Siv.decryptWithAdVector(&decrypted, &ciphertext, tag, &ad_components, key); | ||
| 355 | try testing.expectEqualSlices(u8, &plaintext, &decrypted); | ||
| 356 | } | ||
| 357 | |||
| 358 | test "Aes128Siv - empty plaintext" { | ||
| 359 | const key: [32]u8 = @splat(0x42); | ||
| 360 | const plaintext = ""; | ||
| 361 | const ad = "additional data"; | ||
| 362 | |||
| 363 | var ciphertext: [plaintext.len]u8 = undefined; | ||
| 364 | var tag: [16]u8 = undefined; | ||
| 365 | |||
| 366 | Aes128Siv.encrypt(&ciphertext, &tag, plaintext, ad, null, key); | ||
| 367 | |||
| 368 | var decrypted: [plaintext.len]u8 = undefined; | ||
| 369 | try Aes128Siv.decrypt(&decrypted, &ciphertext, tag, ad, null, key); | ||
| 370 | } | ||
| 371 | |||
| 372 | test "Aes128Siv - with nonce" { | ||
| 373 | const key: [32]u8 = @splat(0x69); | ||
| 374 | const nonce: [16]u8 = @splat(0x42); | ||
| 375 | const plaintext = "Hello, AES-SIV!"; | ||
| 376 | const ad = "metadata"; | ||
| 377 | |||
| 378 | var ciphertext: [plaintext.len]u8 = undefined; | ||
| 379 | var tag: [16]u8 = undefined; | ||
| 380 | |||
| 381 | Aes128Siv.encrypt(&ciphertext, &tag, plaintext, ad, &nonce, key); | ||
| 382 | |||
| 383 | var decrypted: [plaintext.len]u8 = undefined; | ||
| 384 | try Aes128Siv.decrypt(&decrypted, &ciphertext, tag, ad, &nonce, key); | ||
| 385 | try testing.expectEqualSlices(u8, plaintext, &decrypted); | ||
| 386 | } | ||
| 387 | |||
| 388 | test "Aes256Siv - basic functionality" { | ||
| 389 | const key: [64]u8 = @splat(0x96); | ||
| 390 | const plaintext = "Test message for AES-256-SIV"; | ||
| 391 | const ad1 = "header"; | ||
| 392 | const ad2 = "more data"; | ||
| 393 | |||
| 394 | var ciphertext: [plaintext.len]u8 = undefined; | ||
| 395 | var tag: [16]u8 = undefined; | ||
| 396 | |||
| 397 | // Test with multiple AD components using the vector API | ||
| 398 | const ad_components = [_][]const u8{ ad1, ad2 }; | ||
| 399 | Aes256Siv.encryptWithAdVector(&ciphertext, &tag, plaintext, &ad_components, key); | ||
| 400 | |||
| 401 | var decrypted: [plaintext.len]u8 = undefined; | ||
| 402 | try Aes256Siv.decryptWithAdVector(&decrypted, &ciphertext, tag, &ad_components, key); | ||
| 403 | try testing.expectEqualSlices(u8, plaintext, &decrypted); | ||
| 404 | } | ||
| 405 | |||
| 406 | test "Aes128Siv - demonstrating optional parameters" { | ||
| 407 | const key: [32]u8 = @splat(0x77); | ||
| 408 | |||
| 409 | // Test 1: No AD, no nonce (pure deterministic) | ||
| 410 | { | ||
| 411 | const plaintext = "Deterministic encryption"; | ||
| 412 | var ciphertext: [plaintext.len]u8 = undefined; | ||
| 413 | var tag: [16]u8 = undefined; | ||
| 414 | |||
| 415 | Aes128Siv.encrypt(&ciphertext, &tag, plaintext, null, null, key); | ||
| 416 | |||
| 417 | var decrypted: [plaintext.len]u8 = undefined; | ||
| 418 | try Aes128Siv.decrypt(&decrypted, &ciphertext, tag, null, null, key); | ||
| 419 | try testing.expectEqualSlices(u8, plaintext, &decrypted); | ||
| 420 | } | ||
| 421 | |||
| 422 | // Test 2: With AD, no nonce | ||
| 423 | { | ||
| 424 | const plaintext = "With associated data"; | ||
| 425 | const ad = "some context"; | ||
| 426 | var ciphertext: [plaintext.len]u8 = undefined; | ||
| 427 | var tag: [16]u8 = undefined; | ||
| 428 | |||
| 429 | Aes128Siv.encrypt(&ciphertext, &tag, plaintext, ad, null, key); | ||
| 430 | |||
| 431 | var decrypted: [plaintext.len]u8 = undefined; | ||
| 432 | try Aes128Siv.decrypt(&decrypted, &ciphertext, tag, ad, null, key); | ||
| 433 | try testing.expectEqualSlices(u8, plaintext, &decrypted); | ||
| 434 | } | ||
| 435 | |||
| 436 | // Test 3: No AD, with nonce | ||
| 437 | { | ||
| 438 | const plaintext = "Nonce-based encryption"; | ||
| 439 | const nonce: [12]u8 = @splat(0x01); | ||
| 440 | var ciphertext: [plaintext.len]u8 = undefined; | ||
| 441 | var tag: [16]u8 = undefined; | ||
| 442 | |||
| 443 | Aes128Siv.encrypt(&ciphertext, &tag, plaintext, null, &nonce, key); | ||
| 444 | |||
| 445 | var decrypted: [plaintext.len]u8 = undefined; | ||
| 446 | try Aes128Siv.decrypt(&decrypted, &ciphertext, tag, null, &nonce, key); | ||
| 447 | try testing.expectEqualSlices(u8, plaintext, &decrypted); | ||
| 448 | } | ||
| 449 | |||
| 450 | // Test 4: With both AD and nonce | ||
| 451 | { | ||
| 452 | const plaintext = "Full featured"; | ||
| 453 | const ad = "context"; | ||
| 454 | const nonce: [16]u8 = @splat(0x02); | ||
| 455 | var ciphertext: [plaintext.len]u8 = undefined; | ||
| 456 | var tag: [16]u8 = undefined; | ||
| 457 | |||
| 458 | Aes128Siv.encrypt(&ciphertext, &tag, plaintext, ad, &nonce, key); | ||
| 459 | |||
| 460 | var decrypted: [plaintext.len]u8 = undefined; | ||
| 461 | try Aes128Siv.decrypt(&decrypted, &ciphertext, tag, ad, &nonce, key); | ||
| 462 | try testing.expectEqualSlices(u8, plaintext, &decrypted); | ||
| 463 | } | ||
| 464 | } | ||
| 465 | |||
| 466 | test "Aes128Siv - authentication failure" { | ||
| 467 | const key: [32]u8 = @splat(0x13); | ||
| 468 | const plaintext = "Secret message"; | ||
| 469 | const ad = ""; | ||
| 470 | |||
| 471 | var ciphertext: [plaintext.len]u8 = undefined; | ||
| 472 | var tag: [16]u8 = undefined; | ||
| 473 | |||
| 474 | Aes128Siv.encrypt(&ciphertext, &tag, plaintext, ad, null, key); | ||
| 475 | |||
| 476 | // Corrupt the tag | ||
| 477 | tag[0] ^= 0x01; | ||
| 478 | |||
| 479 | var decrypted: [plaintext.len]u8 = undefined; | ||
| 480 | try testing.expectError(error.AuthenticationFailed, Aes128Siv.decrypt(&decrypted, &ciphertext, tag, ad, null, key)); | ||
| 481 | } | ||
lib/std/crypto/modes.zig+192-12| ... | @@ -11,37 +11,217 @@ const debug = std.debug; | ... | @@ -11,37 +11,217 @@ const debug = std.debug; |
| 11 | /// Important: the counter mode doesn't provide authenticated encryption: the ciphertext can be trivially modified without this being detected. | 11 | /// Important: the counter mode doesn't provide authenticated encryption: the ciphertext can be trivially modified without this being detected. |
| 12 | /// As a result, applications should generally never use it directly, but only in a construction that includes a MAC. | 12 | /// As a result, applications should generally never use it directly, but only in a construction that includes a MAC. |
| 13 | pub fn ctr(comptime BlockCipher: anytype, block_cipher: BlockCipher, dst: []u8, src: []const u8, iv: [BlockCipher.block_length]u8, endian: std.builtin.Endian) void { | 13 | pub fn ctr(comptime BlockCipher: anytype, block_cipher: BlockCipher, dst: []u8, src: []const u8, iv: [BlockCipher.block_length]u8, endian: std.builtin.Endian) void { |
| 14 | ctrSlice(BlockCipher, block_cipher, dst, src, iv, endian, 0, BlockCipher.block_length); | ||
| 15 | } | ||
| 16 | |||
| 17 | /// Counter mode with configurable counter position and size. | ||
| 18 | /// | ||
| 19 | /// This extended version allows specifying where the counter is located within the IV block | ||
| 20 | /// and how many bytes it occupies. This is useful for modes like AES-GCM-SIV which use a | ||
| 21 | /// 32-bit counter at the beginning of the block. | ||
| 22 | /// | ||
| 23 | /// @param counter_offset: Byte offset where the counter starts | ||
| 24 | /// @param counter_size: Size of the counter in bytes | ||
| 25 | pub fn ctrSlice( | ||
| 26 | comptime BlockCipher: anytype, | ||
| 27 | block_cipher: BlockCipher, | ||
| 28 | dst: []u8, | ||
| 29 | src: []const u8, | ||
| 30 | iv: [BlockCipher.block_length]u8, | ||
| 31 | endian: std.builtin.Endian, | ||
| 32 | comptime counter_offset: usize, | ||
| 33 | comptime counter_size: usize, | ||
| 34 | ) void { | ||
| 14 | debug.assert(dst.len >= src.len); | 35 | debug.assert(dst.len >= src.len); |
| 15 | const block_length = BlockCipher.block_length; | 36 | const block_length = BlockCipher.block_length; |
| 16 | var counter: [BlockCipher.block_length]u8 = undefined; | 37 | debug.assert(counter_offset + counter_size <= block_length); |
| 17 | var counterInt = mem.readInt(u128, &iv, endian); | 38 | debug.assert(counter_size > 0 and counter_size <= block_length); |
| 39 | |||
| 40 | var counterBlock = iv; | ||
| 18 | var i: usize = 0; | 41 | var i: usize = 0; |
| 19 | 42 | ||
| 43 | const CounterInt = std.meta.Int(.unsigned, counter_size * 8); | ||
| 44 | |||
| 20 | const parallel_count = BlockCipher.block.parallel.optimal_parallel_blocks; | 45 | const parallel_count = BlockCipher.block.parallel.optimal_parallel_blocks; |
| 21 | const wide_block_length = parallel_count * 16; | 46 | const wide_block_length = parallel_count * block_length; |
| 47 | var cnt_val = mem.readInt(CounterInt, counterBlock[counter_offset..][0..counter_size], endian); | ||
| 22 | if (src.len >= wide_block_length) { | 48 | if (src.len >= wide_block_length) { |
| 23 | var counters: [parallel_count * 16]u8 = undefined; | 49 | var counters: [parallel_count * block_length]u8 = undefined; |
| 50 | inline for (0..parallel_count) |j| { | ||
| 51 | counters[j * block_length ..][0..block_length].* = iv; | ||
| 52 | } | ||
| 24 | while (i + wide_block_length <= src.len) : (i += wide_block_length) { | 53 | while (i + wide_block_length <= src.len) : (i += wide_block_length) { |
| 25 | comptime var j = 0; | 54 | comptime var j = 0; |
| 26 | inline while (j < parallel_count) : (j += 1) { | 55 | inline while (j < parallel_count) : (j += 1) { |
| 27 | mem.writeInt(u128, counters[j * 16 .. j * 16 + 16], counterInt, endian); | 56 | mem.writeInt(CounterInt, counters[j * block_length + counter_offset ..][0..counter_size], cnt_val +% j, endian); |
| 28 | counterInt +%= 1; | ||
| 29 | } | 57 | } |
| 58 | cnt_val += parallel_count; | ||
| 30 | block_cipher.xorWide(parallel_count, dst[i .. i + wide_block_length][0..wide_block_length], src[i .. i + wide_block_length][0..wide_block_length], counters); | 59 | block_cipher.xorWide(parallel_count, dst[i .. i + wide_block_length][0..wide_block_length], src[i .. i + wide_block_length][0..wide_block_length], counters); |
| 31 | } | 60 | } |
| 61 | mem.writeInt(CounterInt, counterBlock[counter_offset..][0..counter_size], cnt_val, endian); | ||
| 32 | } | 62 | } |
| 33 | while (i + block_length <= src.len) : (i += block_length) { | 63 | while (i + block_length <= src.len) : (i += block_length) { |
| 34 | mem.writeInt(u128, &counter, counterInt, endian); | 64 | block_cipher.xor(dst[i .. i + block_length][0..block_length], src[i .. i + block_length][0..block_length], counterBlock); |
| 35 | counterInt +%= 1; | 65 | cnt_val +%= 1; |
| 36 | block_cipher.xor(dst[i .. i + block_length][0..block_length], src[i .. i + block_length][0..block_length], counter); | 66 | mem.writeInt(CounterInt, counterBlock[counter_offset..][0..counter_size], cnt_val, endian); |
| 37 | } | 67 | } |
| 38 | if (i < src.len) { | 68 | if (i < src.len) { |
| 39 | mem.writeInt(u128, &counter, counterInt, endian); | 69 | var pad: [block_length]u8 = @splat(0); |
| 40 | var pad = [_]u8{0} ** block_length; | ||
| 41 | const src_slice = src[i..]; | 70 | const src_slice = src[i..]; |
| 42 | @memcpy(pad[0..src_slice.len], src_slice); | 71 | @memcpy(pad[0..src_slice.len], src_slice); |
| 43 | block_cipher.xor(&pad, &pad, counter); | 72 | block_cipher.xor(&pad, &pad, counterBlock); |
| 44 | const pad_slice = pad[0 .. src.len - i]; | 73 | const pad_slice = pad[0 .. src.len - i]; |
| 45 | @memcpy(dst[i..][0..pad_slice.len], pad_slice); | 74 | @memcpy(dst[i..][0..pad_slice.len], pad_slice); |
| 46 | } | 75 | } |
| 47 | } | 76 | } |
| 77 | |||
| 78 | test "ctr mode" { | ||
| 79 | const testing = std.testing; | ||
| 80 | const aes = std.crypto.core.aes; | ||
| 81 | |||
| 82 | // Test key and IV from NIST SP 800-38A | ||
| 83 | const key = [_]u8{ 0x2b, 0x7e, 0x15, 0x16, 0x28, 0xae, 0xd2, 0xa6, 0xab, 0xf7, 0x15, 0x88, 0x09, 0xcf, 0x4f, 0x3c }; | ||
| 84 | const iv = [_]u8{ 0xf0, 0xf1, 0xf2, 0xf3, 0xf4, 0xf5, 0xf6, 0xf7, 0xf8, 0xf9, 0xfa, 0xfb, 0xfc, 0xfd, 0xfe, 0xff }; | ||
| 85 | const ctx = aes.Aes128.initEnc(key); | ||
| 86 | |||
| 87 | // Test 1: Empty input | ||
| 88 | { | ||
| 89 | const in = [_]u8{}; | ||
| 90 | const expected = [_]u8{}; | ||
| 91 | var out: [0]u8 = undefined; | ||
| 92 | ctr(aes.AesEncryptCtx(aes.Aes128), ctx, out[0..], in[0..], iv, std.builtin.Endian.big); | ||
| 93 | try testing.expectEqualSlices(u8, expected[0..], out[0..]); | ||
| 94 | } | ||
| 95 | |||
| 96 | // Test 2: Single byte | ||
| 97 | { | ||
| 98 | const in = [_]u8{0x6b}; | ||
| 99 | const expected = [_]u8{0x87}; | ||
| 100 | var out: [1]u8 = undefined; | ||
| 101 | ctr(aes.AesEncryptCtx(aes.Aes128), ctx, out[0..], in[0..], iv, std.builtin.Endian.big); | ||
| 102 | try testing.expectEqualSlices(u8, expected[0..], out[0..]); | ||
| 103 | } | ||
| 104 | |||
| 105 | // Test 3: Less than one block (15 bytes) | ||
| 106 | { | ||
| 107 | const in = [_]u8{ 0x6b, 0xc1, 0xbe, 0xe2, 0x2e, 0x40, 0x9f, 0x96, 0xe9, 0x3d, 0x7e, 0x11, 0x73, 0x93, 0x17 }; | ||
| 108 | const expected = [_]u8{ 0x87, 0x4d, 0x61, 0x91, 0xb6, 0x20, 0xe3, 0x26, 0x1b, 0xef, 0x68, 0x64, 0x99, 0x0d, 0xb6 }; | ||
| 109 | var out: [15]u8 = undefined; | ||
| 110 | ctr(aes.AesEncryptCtx(aes.Aes128), ctx, out[0..], in[0..], iv, std.builtin.Endian.big); | ||
| 111 | try testing.expectEqualSlices(u8, expected[0..], out[0..]); | ||
| 112 | } | ||
| 113 | |||
| 114 | // Test 4: Exactly one block (16 bytes) | ||
| 115 | { | ||
| 116 | const in = [_]u8{ 0x6b, 0xc1, 0xbe, 0xe2, 0x2e, 0x40, 0x9f, 0x96, 0xe9, 0x3d, 0x7e, 0x11, 0x73, 0x93, 0x17, 0x2a }; | ||
| 117 | const expected = [_]u8{ 0x87, 0x4d, 0x61, 0x91, 0xb6, 0x20, 0xe3, 0x26, 0x1b, 0xef, 0x68, 0x64, 0x99, 0x0d, 0xb6, 0xce }; | ||
| 118 | var out: [16]u8 = undefined; | ||
| 119 | ctr(aes.AesEncryptCtx(aes.Aes128), ctx, out[0..], in[0..], iv, std.builtin.Endian.big); | ||
| 120 | try testing.expectEqualSlices(u8, expected[0..], out[0..]); | ||
| 121 | } | ||
| 122 | |||
| 123 | // Test 5: One block plus one byte (17 bytes) | ||
| 124 | { | ||
| 125 | const in = [_]u8{ 0x6b, 0xc1, 0xbe, 0xe2, 0x2e, 0x40, 0x9f, 0x96, 0xe9, 0x3d, 0x7e, 0x11, 0x73, 0x93, 0x17, 0x2a, 0xae }; | ||
| 126 | const expected = [_]u8{ 0x87, 0x4d, 0x61, 0x91, 0xb6, 0x20, 0xe3, 0x26, 0x1b, 0xef, 0x68, 0x64, 0x99, 0x0d, 0xb6, 0xce, 0x98 }; | ||
| 127 | var out: [17]u8 = undefined; | ||
| 128 | ctr(aes.AesEncryptCtx(aes.Aes128), ctx, out[0..], in[0..], iv, std.builtin.Endian.big); | ||
| 129 | try testing.expectEqualSlices(u8, expected[0..], out[0..]); | ||
| 130 | } | ||
| 131 | |||
| 132 | // Test 6: Exactly two blocks (32 bytes) | ||
| 133 | { | ||
| 134 | const in = [_]u8{ | ||
| 135 | 0x6b, 0xc1, 0xbe, 0xe2, 0x2e, 0x40, 0x9f, 0x96, 0xe9, 0x3d, 0x7e, 0x11, 0x73, 0x93, 0x17, 0x2a, | ||
| 136 | 0xae, 0x2d, 0x8a, 0x57, 0x1e, 0x03, 0xac, 0x9c, 0x9e, 0xb7, 0x6f, 0xac, 0x45, 0xaf, 0x8e, 0x51, | ||
| 137 | }; | ||
| 138 | const expected = [_]u8{ | ||
| 139 | 0x87, 0x4d, 0x61, 0x91, 0xb6, 0x20, 0xe3, 0x26, 0x1b, 0xef, 0x68, 0x64, 0x99, 0x0d, 0xb6, 0xce, | ||
| 140 | 0x98, 0x06, 0xf6, 0x6b, 0x79, 0x70, 0xfd, 0xff, 0x86, 0x17, 0x18, 0x7b, 0xb9, 0xff, 0xfd, 0xff, | ||
| 141 | }; | ||
| 142 | var out: [32]u8 = undefined; | ||
| 143 | ctr(aes.AesEncryptCtx(aes.Aes128), ctx, out[0..], in[0..], iv, std.builtin.Endian.big); | ||
| 144 | try testing.expectEqualSlices(u8, expected[0..], out[0..]); | ||
| 145 | } | ||
| 146 | |||
| 147 | // Test 7: Two blocks plus 5 bytes (37 bytes) | ||
| 148 | { | ||
| 149 | const in = [_]u8{ | ||
| 150 | 0x6b, 0xc1, 0xbe, 0xe2, 0x2e, 0x40, 0x9f, 0x96, 0xe9, 0x3d, 0x7e, 0x11, 0x73, 0x93, 0x17, 0x2a, | ||
| 151 | 0xae, 0x2d, 0x8a, 0x57, 0x1e, 0x03, 0xac, 0x9c, 0x9e, 0xb7, 0x6f, 0xac, 0x45, 0xaf, 0x8e, 0x51, | ||
| 152 | 0x30, 0xc8, 0x1c, 0x46, 0xa3, | ||
| 153 | }; | ||
| 154 | const expected = [_]u8{ | ||
| 155 | 0x87, 0x4d, 0x61, 0x91, 0xb6, 0x20, 0xe3, 0x26, 0x1b, 0xef, 0x68, 0x64, 0x99, 0x0d, 0xb6, 0xce, | ||
| 156 | 0x98, 0x06, 0xf6, 0x6b, 0x79, 0x70, 0xfd, 0xff, 0x86, 0x17, 0x18, 0x7b, 0xb9, 0xff, 0xfd, 0xff, | ||
| 157 | 0x5a, 0xe4, 0xdf, 0x3e, 0xdb, | ||
| 158 | }; | ||
| 159 | var out: [37]u8 = undefined; | ||
| 160 | ctr(aes.AesEncryptCtx(aes.Aes128), ctx, out[0..], in[0..], iv, std.builtin.Endian.big); | ||
| 161 | try testing.expectEqualSlices(u8, expected[0..], out[0..]); | ||
| 162 | } | ||
| 163 | |||
| 164 | // Test 8: Four blocks (64 bytes) - NIST test vector | ||
| 165 | { | ||
| 166 | const in = [_]u8{ | ||
| 167 | 0x6b, 0xc1, 0xbe, 0xe2, 0x2e, 0x40, 0x9f, 0x96, 0xe9, 0x3d, 0x7e, 0x11, 0x73, 0x93, 0x17, 0x2a, | ||
| 168 | 0xae, 0x2d, 0x8a, 0x57, 0x1e, 0x03, 0xac, 0x9c, 0x9e, 0xb7, 0x6f, 0xac, 0x45, 0xaf, 0x8e, 0x51, | ||
| 169 | 0x30, 0xc8, 0x1c, 0x46, 0xa3, 0x5c, 0xe4, 0x11, 0xe5, 0xfb, 0xc1, 0x19, 0x1a, 0x0a, 0x52, 0xef, | ||
| 170 | 0xf6, 0x9f, 0x24, 0x45, 0xdf, 0x4f, 0x9b, 0x17, 0xad, 0x2b, 0x41, 0x7b, 0xe6, 0x6c, 0x37, 0x10, | ||
| 171 | }; | ||
| 172 | const expected = [_]u8{ | ||
| 173 | 0x87, 0x4d, 0x61, 0x91, 0xb6, 0x20, 0xe3, 0x26, 0x1b, 0xef, 0x68, 0x64, 0x99, 0x0d, 0xb6, 0xce, | ||
| 174 | 0x98, 0x06, 0xf6, 0x6b, 0x79, 0x70, 0xfd, 0xff, 0x86, 0x17, 0x18, 0x7b, 0xb9, 0xff, 0xfd, 0xff, | ||
| 175 | 0x5a, 0xe4, 0xdf, 0x3e, 0xdb, 0xd5, 0xd3, 0x5e, 0x5b, 0x4f, 0x09, 0x02, 0x0d, 0xb0, 0x3e, 0xab, | ||
| 176 | 0x1e, 0x03, 0x1d, 0xda, 0x2f, 0xbe, 0x03, 0xd1, 0x79, 0x21, 0x70, 0xa0, 0xf3, 0x00, 0x9c, 0xee, | ||
| 177 | }; | ||
| 178 | var out: [64]u8 = undefined; | ||
| 179 | ctr(aes.AesEncryptCtx(aes.Aes128), ctx, out[0..], in[0..], iv, std.builtin.Endian.big); | ||
| 180 | try testing.expectEqualSlices(u8, expected[0..], out[0..]); | ||
| 181 | } | ||
| 182 | |||
| 183 | // Test 9: Large input (> 2*block_length, 100 bytes) | ||
| 184 | { | ||
| 185 | // Create a 100-byte input by extending with zeros | ||
| 186 | var in: [100]u8 = [_]u8{0} ** 100; | ||
| 187 | @memcpy(in[0..64], &[_]u8{ | ||
| 188 | 0x6b, 0xc1, 0xbe, 0xe2, 0x2e, 0x40, 0x9f, 0x96, 0xe9, 0x3d, 0x7e, 0x11, 0x73, 0x93, 0x17, 0x2a, | ||
| 189 | 0xae, 0x2d, 0x8a, 0x57, 0x1e, 0x03, 0xac, 0x9c, 0x9e, 0xb7, 0x6f, 0xac, 0x45, 0xaf, 0x8e, 0x51, | ||
| 190 | 0x30, 0xc8, 0x1c, 0x46, 0xa3, 0x5c, 0xe4, 0x11, 0xe5, 0xfb, 0xc1, 0x19, 0x1a, 0x0a, 0x52, 0xef, | ||
| 191 | 0xf6, 0x9f, 0x24, 0x45, 0xdf, 0x4f, 0x9b, 0x17, 0xad, 0x2b, 0x41, 0x7b, 0xe6, 0x6c, 0x37, 0x10, | ||
| 192 | }); | ||
| 193 | |||
| 194 | // Expected output: first 64 bytes from NIST, then CTR continues with zeros | ||
| 195 | var expected: [100]u8 = undefined; | ||
| 196 | @memcpy(expected[0..64], &[_]u8{ | ||
| 197 | 0x87, 0x4d, 0x61, 0x91, 0xb6, 0x20, 0xe3, 0x26, 0x1b, 0xef, 0x68, 0x64, 0x99, 0x0d, 0xb6, 0xce, | ||
| 198 | 0x98, 0x06, 0xf6, 0x6b, 0x79, 0x70, 0xfd, 0xff, 0x86, 0x17, 0x18, 0x7b, 0xb9, 0xff, 0xfd, 0xff, | ||
| 199 | 0x5a, 0xe4, 0xdf, 0x3e, 0xdb, 0xd5, 0xd3, 0x5e, 0x5b, 0x4f, 0x09, 0x02, 0x0d, 0xb0, 0x3e, 0xab, | ||
| 200 | 0x1e, 0x03, 0x1d, 0xda, 0x2f, 0xbe, 0x03, 0xd1, 0x79, 0x21, 0x70, 0xa0, 0xf3, 0x00, 0x9c, 0xee, | ||
| 201 | }); | ||
| 202 | // Compute the rest with zeros XORed with keystream | ||
| 203 | @memcpy(expected[64..], &[_]u8{ | ||
| 204 | 0xb0, 0x0d, 0x47, 0xf8, 0x14, 0x8a, 0x91, 0x0e, 0xf0, 0x68, 0x30, 0x97, 0x90, 0x4b, 0xa5, 0x02, | ||
| 205 | 0x58, 0x99, 0x44, 0x5a, 0x4d, 0xe1, 0x01, 0xf5, 0x13, 0xca, 0xd1, 0x98, 0x7d, 0x89, 0xe9, 0x1b, | ||
| 206 | 0x3b, 0xd9, 0xac, 0x79, | ||
| 207 | }); | ||
| 208 | |||
| 209 | var out: [100]u8 = undefined; | ||
| 210 | ctr(aes.AesEncryptCtx(aes.Aes128), ctx, out[0..], in[0..], iv, std.builtin.Endian.big); | ||
| 211 | try testing.expectEqualSlices(u8, expected[0..], out[0..]); | ||
| 212 | } | ||
| 213 | |||
| 214 | // Test 10: Test with different endianness (little-endian counter) | ||
| 215 | { | ||
| 216 | const le_iv = [_]u8{ 0x01, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00 }; | ||
| 217 | const in = [_]u8{ 0x00, 0x11, 0x22, 0x33, 0x44, 0x55, 0x66, 0x77, 0x88, 0x99, 0xaa, 0xbb, 0xcc, 0xdd, 0xee, 0xff }; | ||
| 218 | |||
| 219 | // We'll compute the expected value from the actual encryption | ||
| 220 | var out: [16]u8 = undefined; | ||
| 221 | ctr(aes.AesEncryptCtx(aes.Aes128), ctx, out[0..], in[0..], le_iv, std.builtin.Endian.little); | ||
| 222 | |||
| 223 | // The actual output for this test with little-endian counter=1 | ||
| 224 | const expected = [_]u8{ 0x7e, 0x48, 0x15, 0xa8, 0x16, 0x66, 0xf0, 0xea, 0xad, 0x3c, 0x07, 0x97, 0x2f, 0xe8, 0x25, 0xc1 }; | ||
| 225 | try testing.expectEqualSlices(u8, expected[0..], out[0..]); | ||
| 226 | } | ||
| 227 | } |