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Update MD5 code with proper coding style/documentation for this project.
This commit is contained in:
parent
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226
pdfio-md5.c
226
pdfio-md5.c
@ -1,7 +1,7 @@
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//
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//
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// MD5 functions for PDFio.
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// MD5 functions for PDFio.
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//
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//
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// Copyright © 2021 by Michael R Sweet.
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// Copyright © 2021-2025 by Michael R Sweet.
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// Copyright © 1999 Aladdin Enterprises. All rights reserved.
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// Copyright © 1999 Aladdin Enterprises. All rights reserved.
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//
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//
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// This software is provided 'as-is', without any express or implied
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// This software is provided 'as-is', without any express or implied
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@ -108,59 +108,75 @@
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#define T63 0x2ad7d2bb
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#define T63 0x2ad7d2bb
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#define T64 0xeb86d391
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#define T64 0xeb86d391
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//
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// Use the unoptimized (big-endian) implementation if we don't know the
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// endian-ness of the platform.
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//
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#ifdef __BYTE_ORDER__
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# if __BYTE_ORDER__ == __ORDER_LITTLE_ENDIAN__
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# define ARCH_IS_BIG_ENDIAN 0 // Use little endian optimized version
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# else
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# define ARCH_IS_BIG_ENDIAN 1 // Use generic version
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# endif // __BYTE_ORDER__ == __ORDER_LITTLE_ENDIAN__
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#elif !defined(ARCH_IS_BIG_ENDIAN)
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# define ARCH_IS_BIG_ENDIAN 1 // Use generic version
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#endif // !ARCH_IS_BIG_ENDIAN
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//
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// 'md5_process()' - Hash a block of data.
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//
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static void
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static void
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md5_process(_pdfio_md5_t *pms, const uint8_t *data /*[64]*/)
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md5_process(_pdfio_md5_t *pms, // I - MD5 state
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const uint8_t *data/*[64]*/)// I - Data
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{
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{
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uint32_t
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uint32_t a = pms->abcd[0], // First word of state
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a = pms->abcd[0], b = pms->abcd[1],
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b = pms->abcd[1], // Second word of state
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c = pms->abcd[2], d = pms->abcd[3];
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c = pms->abcd[2], // Third word of state
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uint32_t t;
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d = pms->abcd[3]; // Fourth word of state
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uint32_t t; // Temporary state
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#ifndef ARCH_IS_BIG_ENDIAN
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# define ARCH_IS_BIG_ENDIAN 1 /* slower, default implementation */
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#endif
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#if ARCH_IS_BIG_ENDIAN
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#if ARCH_IS_BIG_ENDIAN
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// On big-endian machines, we must arrange the bytes in the right
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// order. (This also works on machines of unknown byte order.)
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uint32_t X[16]; // Little-endian representation
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const uint8_t *xp; // Pointer into data
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int i; // Looping var
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/*
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for (i = 0, xp = data; i < 16; i ++, xp += 4)
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* On big-endian machines, we must arrange the bytes in the right
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* order. (This also works on machines of unknown byte order.)
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*/
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uint32_t X[16];
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const uint8_t *xp = data;
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int i;
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for (i = 0; i < 16; ++i, xp += 4)
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X[i] = xp[0] + (unsigned)(xp[1] << 8) + (unsigned)(xp[2] << 16) + (unsigned)(xp[3] << 24);
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X[i] = xp[0] + (unsigned)(xp[1] << 8) + (unsigned)(xp[2] << 16) + (unsigned)(xp[3] << 24);
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#else /* !ARCH_IS_BIG_ENDIAN */
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#else /* !ARCH_IS_BIG_ENDIAN */
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// On little-endian machines, we can process properly aligned data without copying it.
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uint32_t xbuf[16]; // Aligned buffer
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const uint32_t *X; // Pointer to little-endian representation
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/*
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if (!((data - (const uint8_t *)0) & 3))
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* On little-endian machines, we can process properly aligned data
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{
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* without copying it.
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// data is properly aligned, use it directly...
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*/
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uint32_t xbuf[16];
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const uint32_t *X;
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if (!((data - (const uint8_t *)0) & 3)) {
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/* data are properly aligned */
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X = (const uint32_t *)data;
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X = (const uint32_t *)data;
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} else {
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}
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/* not aligned */
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else
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{
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// data is not aligned, copy to the aligned buffer...
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memcpy(xbuf, data, 64);
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memcpy(xbuf, data, 64);
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X = xbuf;
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X = xbuf;
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}
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}
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#endif
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#endif // ARCH_IS_BIG_ENDIAN
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#define ROTATE_LEFT(x, n) (((x) << (n)) | ((x) >> (32 - (n))))
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#define ROTATE_LEFT(x, n) (((x) << (n)) | ((x) >> (32 - (n))))
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/* Round 1. */
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// Round 1.
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/* Let [abcd k s i] denote the operation
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// Let [abcd k s i] denote the operation
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a = b + ((a + F(b,c,d) + X[k] + T[i]) <<< s). */
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// a = b + ((a + F(b,c,d) + X[k] + T[i]) <<< s).
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#define F(x, y, z) (((x) & (y)) | (~(x) & (z)))
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#define F(x, y, z) (((x) & (y)) | (~(x) & (z)))
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#define SET(a, b, c, d, k, s, Ti)\
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#define SET(a, b, c, d, k, s, Ti) t = a + F(b,c,d) + X[k] + Ti; a = ROTATE_LEFT(t, s) + b
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t = a + F(b,c,d) + X[k] + Ti;\
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a = ROTATE_LEFT(t, s) + b
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// Do the following 16 operations.
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/* Do the following 16 operations. */
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SET(a, b, c, d, 0, 7, T1);
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SET(a, b, c, d, 0, 7, T1);
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SET(d, a, b, c, 1, 12, T2);
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SET(d, a, b, c, 1, 12, T2);
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SET(c, d, a, b, 2, 17, T3);
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SET(c, d, a, b, 2, 17, T3);
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@ -177,16 +193,16 @@ md5_process(_pdfio_md5_t *pms, const uint8_t *data /*[64]*/)
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SET(d, a, b, c, 13, 12, T14);
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SET(d, a, b, c, 13, 12, T14);
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SET(c, d, a, b, 14, 17, T15);
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SET(c, d, a, b, 14, 17, T15);
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SET(b, c, d, a, 15, 22, T16);
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SET(b, c, d, a, 15, 22, T16);
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#undef SET
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#undef SET
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/* Round 2. */
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// Round 2.
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/* Let [abcd k s i] denote the operation
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// Let [abcd k s i] denote the operation
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a = b + ((a + G(b,c,d) + X[k] + T[i]) <<< s). */
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// a = b + ((a + G(b,c,d) + X[k] + T[i]) <<< s).
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#define G(x, y, z) (((x) & (z)) | ((y) & ~(z)))
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#define G(x, y, z) (((x) & (z)) | ((y) & ~(z)))
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#define SET(a, b, c, d, k, s, Ti)\
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#define SET(a, b, c, d, k, s, Ti) t = a + G(b,c,d) + X[k] + Ti; a = ROTATE_LEFT(t, s) + b
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t = a + G(b,c,d) + X[k] + Ti;\
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a = ROTATE_LEFT(t, s) + b
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// Do the following 16 operations.
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/* Do the following 16 operations. */
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SET(a, b, c, d, 1, 5, T17);
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SET(a, b, c, d, 1, 5, T17);
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SET(d, a, b, c, 6, 9, T18);
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SET(d, a, b, c, 6, 9, T18);
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SET(c, d, a, b, 11, 14, T19);
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SET(c, d, a, b, 11, 14, T19);
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@ -203,16 +219,16 @@ md5_process(_pdfio_md5_t *pms, const uint8_t *data /*[64]*/)
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SET(d, a, b, c, 2, 9, T30);
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SET(d, a, b, c, 2, 9, T30);
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SET(c, d, a, b, 7, 14, T31);
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SET(c, d, a, b, 7, 14, T31);
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SET(b, c, d, a, 12, 20, T32);
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SET(b, c, d, a, 12, 20, T32);
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#undef SET
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#undef SET
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/* Round 3. */
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// Round 3.
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/* Let [abcd k s t] denote the operation
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// Let [abcd k s t] denote the operation
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a = b + ((a + H(b,c,d) + X[k] + T[i]) <<< s). */
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// a = b + ((a + H(b,c,d) + X[k] + T[i]) <<< s).
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#define H(x, y, z) ((x) ^ (y) ^ (z))
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#define H(x, y, z) ((x) ^ (y) ^ (z))
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#define SET(a, b, c, d, k, s, Ti)\
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#define SET(a, b, c, d, k, s, Ti) t = a + H(b,c,d) + X[k] + Ti; a = ROTATE_LEFT(t, s) + b
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t = a + H(b,c,d) + X[k] + Ti;\
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a = ROTATE_LEFT(t, s) + b
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// Do the following 16 operations.
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/* Do the following 16 operations. */
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SET(a, b, c, d, 5, 4, T33);
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SET(a, b, c, d, 5, 4, T33);
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SET(d, a, b, c, 8, 11, T34);
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SET(d, a, b, c, 8, 11, T34);
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SET(c, d, a, b, 11, 16, T35);
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SET(c, d, a, b, 11, 16, T35);
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@ -229,16 +245,16 @@ md5_process(_pdfio_md5_t *pms, const uint8_t *data /*[64]*/)
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SET(d, a, b, c, 12, 11, T46);
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SET(d, a, b, c, 12, 11, T46);
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SET(c, d, a, b, 15, 16, T47);
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SET(c, d, a, b, 15, 16, T47);
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SET(b, c, d, a, 2, 23, T48);
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SET(b, c, d, a, 2, 23, T48);
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#undef SET
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#undef SET
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/* Round 4. */
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// Round 4.
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/* Let [abcd k s t] denote the operation
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// Let [abcd k s t] denote the operation
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a = b + ((a + I(b,c,d) + X[k] + T[i]) <<< s). */
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// a = b + ((a + I(b,c,d) + X[k] + T[i]) <<< s).
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#define I(x, y, z) ((y) ^ ((x) | ~(z)))
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#define I(x, y, z) ((y) ^ ((x) | ~(z)))
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#define SET(a, b, c, d, k, s, Ti)\
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#define SET(a, b, c, d, k, s, Ti) t = a + I(b,c,d) + X[k] + Ti; a = ROTATE_LEFT(t, s) + b
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t = a + I(b,c,d) + X[k] + Ti;\
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a = ROTATE_LEFT(t, s) + b
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// Do the following 16 operations.
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/* Do the following 16 operations. */
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SET(a, b, c, d, 0, 6, T49);
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SET(a, b, c, d, 0, 6, T49);
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SET(d, a, b, c, 7, 10, T50);
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SET(d, a, b, c, 7, 10, T50);
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SET(c, d, a, b, 14, 15, T51);
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SET(c, d, a, b, 14, 15, T51);
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@ -255,19 +271,24 @@ md5_process(_pdfio_md5_t *pms, const uint8_t *data /*[64]*/)
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SET(d, a, b, c, 11, 10, T62);
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SET(d, a, b, c, 11, 10, T62);
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SET(c, d, a, b, 2, 15, T63);
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SET(c, d, a, b, 2, 15, T63);
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SET(b, c, d, a, 9, 21, T64);
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SET(b, c, d, a, 9, 21, T64);
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#undef SET
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#undef SET
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/* Then perform the following additions. (That is increment each
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// Then perform the following additions. (That is increment each of the four
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of the four registers by the value it had before this block
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// registers by the value it had before this block was started.)
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was started.) */
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pms->abcd[0] += a;
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pms->abcd[0] += a;
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pms->abcd[1] += b;
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pms->abcd[1] += b;
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pms->abcd[2] += c;
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pms->abcd[2] += c;
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pms->abcd[3] += d;
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pms->abcd[3] += d;
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}
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}
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//
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// '_pdfioCryptoMD5Init()' - Initialize an MD5 hash.
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//
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void
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void
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_pdfioCryptoMD5Init(_pdfio_md5_t *pms)
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_pdfioCryptoMD5Init(_pdfio_md5_t *pms) // I - MD5 state
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{
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{
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pms->count[0] = pms->count[1] = 0;
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pms->count[0] = pms->count[1] = 0;
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pms->abcd[0] = 0x67452301;
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pms->abcd[0] = 0x67452301;
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@ -276,63 +297,96 @@ _pdfioCryptoMD5Init(_pdfio_md5_t *pms)
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pms->abcd[3] = 0x10325476;
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pms->abcd[3] = 0x10325476;
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}
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}
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//
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// '_pdfioCryptoMD5Append()' - Append bytes to the MD5 hash.
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//
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void
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void
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_pdfioCryptoMD5Append(_pdfio_md5_t *pms, const uint8_t *data, size_t nbytes)
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_pdfioCryptoMD5Append(
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_pdfio_md5_t *pms, // I - MD5 state
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const uint8_t *data, // I - Data to add
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size_t nbytes) // I - Number of bytes
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{
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{
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const uint8_t *p = data;
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const uint8_t *p = data; // Pointer into data
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size_t left = nbytes;
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size_t left = nbytes; // Remaining bytes
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size_t offset = (pms->count[0] >> 3) & 63;
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size_t offset = (pms->count[0] >> 3) & 63;
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// Offset into state
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uint32_t nbits = (uint32_t)(nbytes << 3);
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uint32_t nbits = (uint32_t)(nbytes << 3);
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// Number of bits to add
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if (nbytes == 0)
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if (nbytes == 0)
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return;
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return;
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/* Update the message length. */
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// Update the message length.
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pms->count[1] += (unsigned)(nbytes >> 29);
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pms->count[1] += (unsigned)(nbytes >> 29);
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pms->count[0] += nbits;
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pms->count[0] += nbits;
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if (pms->count[0] < nbits)
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if (pms->count[0] < nbits)
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pms->count[1] ++;
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pms->count[1] ++;
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/* Process an initial partial block. */
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// Process an initial partial block.
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if (offset) {
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if (offset)
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size_t copy = (offset + nbytes > 64 ? 64 - offset : nbytes);
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{
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size_t copy = ((offset + nbytes) > 64 ? 64 - offset : nbytes);
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// Number of bytes to copy
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memcpy(pms->buf + offset, p, copy);
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memcpy(pms->buf + offset, p, copy);
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if (offset + copy < 64)
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if ((offset + copy) < 64)
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return;
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return;
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p += copy;
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p += copy;
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left -= copy;
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left -= copy;
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md5_process(pms, pms->buf);
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md5_process(pms, pms->buf);
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}
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}
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/* Process full blocks. */
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// Process full blocks.
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for (; left >= 64; p += 64, left -= 64)
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for (; left >= 64; p += 64, left -= 64)
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md5_process(pms, p);
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md5_process(pms, p);
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/* Process a final partial block. */
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// Copy a final partial block.
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if (left)
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if (left)
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memcpy(pms->buf, p, left);
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memcpy(pms->buf, p, left);
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}
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}
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void
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_pdfioCryptoMD5Finish(_pdfio_md5_t *pms, uint8_t digest[16])
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{
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static const uint8_t pad[64] = {
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0x80, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0,
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0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0,
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0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0,
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0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0
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};
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uint8_t data[8];
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int i;
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/* Save the length before padding. */
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//
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// '_pdfioCryptoMD5Finish()' - Finalize the MD5 hash.
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//
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void
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_pdfioCryptoMD5Finish(
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_pdfio_md5_t *pms, // I - MD5 state
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uint8_t digest[16]) // O - Digest value
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{
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int i; // Looping var
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uint8_t data[8]; // Digest length data
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static const uint8_t pad[64] = // Padding bytes
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{
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||||||
|
0x80, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
|
||||||
|
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
|
||||||
|
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
|
||||||
|
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
|
||||||
|
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
|
||||||
|
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
|
||||||
|
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
|
||||||
|
0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00
|
||||||
|
};
|
||||||
|
|
||||||
|
|
||||||
|
// Save the length before padding.
|
||||||
for (i = 0; i < 8; ++i)
|
for (i = 0; i < 8; ++i)
|
||||||
data[i] = (uint8_t)(pms->count[i >> 2] >> ((i & 3) << 3));
|
data[i] = (uint8_t)(pms->count[i >> 2] >> ((i & 3) << 3));
|
||||||
/* Pad to 56 bytes mod 64. */
|
|
||||||
|
// Pad to 56 bytes mod 64.
|
||||||
_pdfioCryptoMD5Append(pms, pad, ((55 - (pms->count[0] >> 3)) & 63) + 1);
|
_pdfioCryptoMD5Append(pms, pad, ((55 - (pms->count[0] >> 3)) & 63) + 1);
|
||||||
/* Append the length. */
|
|
||||||
|
// Append the length.
|
||||||
_pdfioCryptoMD5Append(pms, data, 8);
|
_pdfioCryptoMD5Append(pms, data, 8);
|
||||||
|
|
||||||
|
// Copy the digest from the state...
|
||||||
for (i = 0; i < 16; ++i)
|
for (i = 0; i < 16; ++i)
|
||||||
digest[i] = (uint8_t)(pms->abcd[i >> 2] >> ((i & 3) << 3));
|
digest[i] = (uint8_t)(pms->abcd[i >> 2] >> ((i & 3) << 3));
|
||||||
}
|
}
|
||||||
|
Loading…
x
Reference in New Issue
Block a user