1 ////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////
4 // Implementation of SHA1 hash function.
5 // Original author: Steve Reid <sreid@sea-to-sky.net>
6 // Contributions by: James H. Brown <jbrown@burgoyne.com>, Saul Kravitz <Saul.Kravitz@celera.com>,
7 // and Ralph Giles <giles@ghostscript.com>
8 // Modified by WaterJuice retaining Public Domain license.
10 // This is free and unencumbered software released into the public domain - June 2013 waterjuice.org
11 ////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////
13 ////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////
15 ////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////
20 ////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////
22 ////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////
24 // Decide whether to use the Little-Endian shortcut. If the shortcut is not used then the code will work correctly
25 // on either big or little endian, however if we do know it is a little endian architecture we can speed it up a bit.
26 // Note, there are TWO places where USE_LITTLE_ENDIAN_SHORTCUT is used. They MUST be paired together.
27 #if defined(__BYTE_ORDER__) && defined(__ORDER_LITTLE_ENDIAN__) && ( __BYTE_ORDER__ == __ORDER_LITTLE_ENDIAN__ )
28 // gcc defines __BYTE_ORDER__ so if it says its little endian we can use that.
29 #define USE_LITTLE_ENDIAN_SHORTCUT
30 #elif defined( _WIN32 )
31 // Windows is always little endian so we can use that.
32 #define USE_LITTLE_ENDIAN_SHORTCUT
35 ////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////
37 ////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////
45 ////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////
47 ////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////
49 // Endian neutral macro for loading 32 bit value from 4 byte array (in big endian form).
50 #define LOAD32H(x, y) \
51 { x = ((uint32_t)((y)[0] & 255)<<24) | \
52 ((uint32_t)((y)[1] & 255)<<16) | \
53 ((uint32_t)((y)[2] & 255)<<8) | \
54 ((uint32_t)((y)[3] & 255)); }
56 #define rol(value, bits) (((value) << (bits)) | ((value) >> (32 - (bits))))
58 // blk0() and blk() perform the initial expand.
59 #ifdef USE_LITTLE_ENDIAN_SHORTCUT
60 #define blk0(i) (block->l[i] = (rol(block->l[i],24)&0xFF00FF00) | (rol(block->l[i],8)&0x00FF00FF))
62 #define blk0(i) block->l[i]
65 #define blk(i) (block->l[i&15] = rol(block->l[(i+13)&15] ^ block->l[(i+8)&15] ^ block->l[(i+2)&15] ^ block->l[i&15],1))
67 // (R0+R1), R2, R3, R4 are the different operations used in SHA1
68 #define R0(v,w,x,y,z,i) z += ((w&(x^y))^y) + blk0(i)+ 0x5A827999 + rol(v,5); w=rol(w,30);
69 #define R1(v,w,x,y,z,i) z += ((w&(x^y))^y) + blk(i) + 0x5A827999 + rol(v,5); w=rol(w,30);
70 #define R2(v,w,x,y,z,i) z += (w^x^y) + blk(i) + 0x6ED9EBA1 + rol(v,5); w=rol(w,30);
71 #define R3(v,w,x,y,z,i) z += (((w|x)&y)|(w&x)) + blk(i) + 0x8F1BBCDC + rol(v,5); w=rol(w,30);
72 #define R4(v,w,x,y,z,i) z += (w^x^y) + blk(i) + 0xCA62C1D6 + rol(v,5); w=rol(w,30);
74 // Loads the 128 bits from ByteArray into WordArray, treating ByteArray as big endian data
75 #ifdef USE_LITTLE_ENDIAN_SHORTCUT
76 #define Load128BitsAsWords( WordArray, ByteArray ) \
77 memcpy( WordArray, ByteArray, 64 )
79 #define Load128BitsAsWords( WordArray, ByteArray ) \
82 for( i=0; i<16; i++ ) \
84 LOAD32H( (WordArray)[i], (ByteArray)+(i*4) ); \
89 ////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////
92 // Hash a single 512-bit block. This is the core of the algorithm
93 ////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////
99 uint8_t const buffer[64]
107 uint8_t workspace[64];
108 CHAR64LONG16* block = (CHAR64LONG16*) workspace;
110 Load128BitsAsWords( block->l, buffer );
112 // Copy context->state[] to working vars
119 // 4 rounds of 20 operations each. Loop unrolled.
120 R0(a,b,c,d,e, 0); R0(e,a,b,c,d, 1); R0(d,e,a,b,c, 2); R0(c,d,e,a,b, 3);
121 R0(b,c,d,e,a, 4); R0(a,b,c,d,e, 5); R0(e,a,b,c,d, 6); R0(d,e,a,b,c, 7);
122 R0(c,d,e,a,b, 8); R0(b,c,d,e,a, 9); R0(a,b,c,d,e,10); R0(e,a,b,c,d,11);
123 R0(d,e,a,b,c,12); R0(c,d,e,a,b,13); R0(b,c,d,e,a,14); R0(a,b,c,d,e,15);
124 R1(e,a,b,c,d,16); R1(d,e,a,b,c,17); R1(c,d,e,a,b,18); R1(b,c,d,e,a,19);
125 R2(a,b,c,d,e,20); R2(e,a,b,c,d,21); R2(d,e,a,b,c,22); R2(c,d,e,a,b,23);
126 R2(b,c,d,e,a,24); R2(a,b,c,d,e,25); R2(e,a,b,c,d,26); R2(d,e,a,b,c,27);
127 R2(c,d,e,a,b,28); R2(b,c,d,e,a,29); R2(a,b,c,d,e,30); R2(e,a,b,c,d,31);
128 R2(d,e,a,b,c,32); R2(c,d,e,a,b,33); R2(b,c,d,e,a,34); R2(a,b,c,d,e,35);
129 R2(e,a,b,c,d,36); R2(d,e,a,b,c,37); R2(c,d,e,a,b,38); R2(b,c,d,e,a,39);
130 R3(a,b,c,d,e,40); R3(e,a,b,c,d,41); R3(d,e,a,b,c,42); R3(c,d,e,a,b,43);
131 R3(b,c,d,e,a,44); R3(a,b,c,d,e,45); R3(e,a,b,c,d,46); R3(d,e,a,b,c,47);
132 R3(c,d,e,a,b,48); R3(b,c,d,e,a,49); R3(a,b,c,d,e,50); R3(e,a,b,c,d,51);
133 R3(d,e,a,b,c,52); R3(c,d,e,a,b,53); R3(b,c,d,e,a,54); R3(a,b,c,d,e,55);
134 R3(e,a,b,c,d,56); R3(d,e,a,b,c,57); R3(c,d,e,a,b,58); R3(b,c,d,e,a,59);
135 R4(a,b,c,d,e,60); R4(e,a,b,c,d,61); R4(d,e,a,b,c,62); R4(c,d,e,a,b,63);
136 R4(b,c,d,e,a,64); R4(a,b,c,d,e,65); R4(e,a,b,c,d,66); R4(d,e,a,b,c,67);
137 R4(c,d,e,a,b,68); R4(b,c,d,e,a,69); R4(a,b,c,d,e,70); R4(e,a,b,c,d,71);
138 R4(d,e,a,b,c,72); R4(c,d,e,a,b,73); R4(b,c,d,e,a,74); R4(a,b,c,d,e,75);
139 R4(e,a,b,c,d,76); R4(d,e,a,b,c,77); R4(c,d,e,a,b,78); R4(b,c,d,e,a,79);
141 // Add the working vars back into context.state[]
149 ////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////
151 ////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////
153 ////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////
156 // Initialises an SHA1 Context. Use this to initialise/reset a context.
157 ////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////
161 Sha1Context* Context // [out]
164 // SHA1 initialisation constants
165 Context->State[0] = 0x67452301;
166 Context->State[1] = 0xEFCDAB89;
167 Context->State[2] = 0x98BADCFE;
168 Context->State[3] = 0x10325476;
169 Context->State[4] = 0xC3D2E1F0;
170 Context->Count[0] = 0;
171 Context->Count[1] = 0;
174 ////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////
177 // Adds data to the SHA1 context. This will process the data and update the internal state of the context. Keep on
178 // calling this function until all the data has been added. Then call Sha1Finalise to calculate the hash.
179 ////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////
183 Sha1Context* Context, // [in out]
184 void const* Buffer, // [in]
185 uint32_t BufferSize // [in]
191 j = (Context->Count[0] >> 3) & 63;
192 if( (Context->Count[0] += BufferSize << 3) < (BufferSize << 3) )
197 Context->Count[1] += (BufferSize >> 29);
198 if( (j + BufferSize) > 63 )
201 memcpy( &Context->Buffer[j], Buffer, i );
202 TransformFunction(Context->State, Context->Buffer);
203 for( ; i + 63 < BufferSize; i += 64 )
205 TransformFunction(Context->State, (uint8_t*)Buffer + i);
214 memcpy( &Context->Buffer[j], &((uint8_t*)Buffer)[i], BufferSize - i );
217 ////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////
220 // Performs the final calculation of the hash and returns the digest (20 byte buffer containing 160bit hash). After
221 // calling this, Sha1Initialised must be used to reuse the context.
222 ////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////
226 Sha1Context* Context, // [in out]
227 SHA1_HASH* Digest // [in]
231 uint8_t finalcount[8];
235 finalcount[i] = (unsigned char)((Context->Count[(i >= 4 ? 0 : 1)]
236 >> ((3-(i & 3)) * 8) ) & 255); // Endian independent
238 Sha1Update( Context, (uint8_t*)"\x80", 1 );
239 while( (Context->Count[0] & 504) != 448 )
241 Sha1Update( Context, (uint8_t*)"\0", 1 );
244 Sha1Update( Context, finalcount, 8 ); // Should cause a Sha1TransformFunction()
245 for( i=0; i<SHA1_HASH_SIZE; i++ )
247 Digest->bytes[i] = (uint8_t)((Context->State[i>>2] >> ((3-(i & 3)) * 8) ) & 255);
251 ////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////
254 // Combines Sha1Initialise, Sha1Update, and Sha1Finalise into one function. Calculates the SHA1 hash of the buffer.
255 ////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////
259 void const* Buffer, // [in]
260 uint32_t BufferSize, // [in]
261 SHA1_HASH* Digest // [in]
266 Sha1Initialise( &context );
267 Sha1Update( &context, Buffer, BufferSize );
268 Sha1Finalise( &context, Digest );