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- #include <assert.h>
- #include <stdint.h>
- #include <string.h>
- #include "cpusupport.h"
- #include "insecure_memzero.h"
- #include "sha256_arm.h"
- #include "sha256_shani.h"
- #include "sha256_sse2.h"
- #include "sysendian.h"
- #include "warnp.h"
- #include "sha256.h"
- #if defined(CPUSUPPORT_X86_SHANI) && defined(CPUSUPPORT_X86_SSSE3) || \
- defined(CPUSUPPORT_X86_SSE2) || \
- defined(CPUSUPPORT_ARM_SHA256)
- #define HWACCEL
- static enum {
- HW_SOFTWARE = 0,
- #if defined(CPUSUPPORT_X86_SHANI) && defined(CPUSUPPORT_X86_SSSE3)
- HW_X86_SHANI,
- #endif
- #if defined(CPUSUPPORT_X86_SSE2)
- HW_X86_SSE2,
- #endif
- #if defined(CPUSUPPORT_ARM_SHA256)
- HW_ARM_SHA256,
- #endif
- HW_UNSET
- } hwaccel = HW_UNSET;
- #endif
- #ifdef POSIXFAIL_ABSTRACT_DECLARATOR
- static void SHA256_Transform(uint32_t state[static restrict 8],
- const uint8_t block[static restrict 64], uint32_t W[static restrict 64],
- uint32_t S[static restrict 8]);
- #else
- static void SHA256_Transform(uint32_t[static restrict 8],
- const uint8_t[static restrict 64], uint32_t[static restrict 64],
- uint32_t[static restrict 8]);
- #endif
- /*
- * Encode a length len/4 vector of (uint32_t) into a length len vector of
- * (uint8_t) in big-endian form. Assumes len is a multiple of 4.
- */
- static void
- be32enc_vect(uint8_t * dst, const uint32_t * src, size_t len)
- {
- size_t i;
- /* Sanity-check. */
- assert(len % 4 == 0);
- /* Encode vector, one word at a time. */
- for (i = 0; i < len / 4; i++)
- be32enc(dst + i * 4, src[i]);
- }
- /*
- * Decode a big-endian length len vector of (uint8_t) into a length
- * len/4 vector of (uint32_t). Assumes len is a multiple of 4.
- */
- static void
- be32dec_vect(uint32_t * dst, const uint8_t * src, size_t len)
- {
- size_t i;
- /* Sanity-check. */
- assert(len % 4 == 0);
- /* Decode vector, one word at a time. */
- for (i = 0; i < len / 4; i++)
- dst[i] = be32dec(src + i * 4);
- }
- /* SHA256 round constants. */
- static const uint32_t Krnd[64] = {
- 0x428a2f98, 0x71374491, 0xb5c0fbcf, 0xe9b5dba5,
- 0x3956c25b, 0x59f111f1, 0x923f82a4, 0xab1c5ed5,
- 0xd807aa98, 0x12835b01, 0x243185be, 0x550c7dc3,
- 0x72be5d74, 0x80deb1fe, 0x9bdc06a7, 0xc19bf174,
- 0xe49b69c1, 0xefbe4786, 0x0fc19dc6, 0x240ca1cc,
- 0x2de92c6f, 0x4a7484aa, 0x5cb0a9dc, 0x76f988da,
- 0x983e5152, 0xa831c66d, 0xb00327c8, 0xbf597fc7,
- 0xc6e00bf3, 0xd5a79147, 0x06ca6351, 0x14292967,
- 0x27b70a85, 0x2e1b2138, 0x4d2c6dfc, 0x53380d13,
- 0x650a7354, 0x766a0abb, 0x81c2c92e, 0x92722c85,
- 0xa2bfe8a1, 0xa81a664b, 0xc24b8b70, 0xc76c51a3,
- 0xd192e819, 0xd6990624, 0xf40e3585, 0x106aa070,
- 0x19a4c116, 0x1e376c08, 0x2748774c, 0x34b0bcb5,
- 0x391c0cb3, 0x4ed8aa4a, 0x5b9cca4f, 0x682e6ff3,
- 0x748f82ee, 0x78a5636f, 0x84c87814, 0x8cc70208,
- 0x90befffa, 0xa4506ceb, 0xbef9a3f7, 0xc67178f2
- };
- /* Magic initialization constants. */
- static const uint32_t initial_state[8] = {
- 0x6A09E667, 0xBB67AE85, 0x3C6EF372, 0xA54FF53A,
- 0x510E527F, 0x9B05688C, 0x1F83D9AB, 0x5BE0CD19
- };
- #ifdef HWACCEL
- #if defined(CPUSUPPORT_X86_SHANI) && defined(CPUSUPPORT_X86_SSSE3)
- /* Shim so that we can test SHA256_Transform_shani() in the standard manner. */
- static void
- SHA256_Transform_shani_with_W_S(uint32_t state[static restrict 8],
- const uint8_t block[static restrict 64], uint32_t W[static restrict 64],
- uint32_t S[static restrict 8])
- {
- (void)W; /* UNUSED */
- (void)S; /* UNUSED */
- SHA256_Transform_shani(state, block);
- }
- #endif
- #if defined(CPUSUPPORT_ARM_SHA256)
- /* Shim so that we can test SHA256_Transform_arm() in the standard manner. */
- static void
- SHA256_Transform_arm_with_W_S(uint32_t state[static restrict 8],
- const uint8_t block[static restrict 64], uint32_t W[static restrict 64],
- uint32_t S[static restrict 8])
- {
- (void)W; /* UNUSED */
- (void)S; /* UNUSED */
- SHA256_Transform_arm(state, block);
- }
- #endif
- /*
- * Test whether software and hardware extensions transform code produce the
- * same results. Must be called with (hwaccel == HW_SOFTWARE).
- */
- static int
- hwtest(const uint32_t state[static restrict 8],
- const uint8_t block[static restrict 64],
- uint32_t W[static restrict 64], uint32_t S[static restrict 8],
- void (* func)(uint32_t state[static restrict 8],
- const uint8_t block[static restrict 64], uint32_t W[static restrict 64],
- uint32_t S[static restrict 8]))
- {
- uint32_t state_sw[8];
- uint32_t state_hw[8];
- /* Software transform. */
- memcpy(state_sw, state, sizeof(state_sw));
- SHA256_Transform(state_sw, block, W, S);
- /* Hardware transform. */
- memcpy(state_hw, state, sizeof(state_hw));
- func(state_hw, block, W, S);
- /* Do the results match? */
- return (memcmp(state_sw, state_hw, sizeof(state_sw)));
- }
- /* Which type of hardware acceleration should we use, if any? */
- static void
- hwaccel_init(void)
- {
- uint32_t W[64];
- uint32_t S[8];
- uint8_t block[64];
- uint8_t i;
- /* If we've already set hwaccel, we're finished. */
- if (hwaccel != HW_UNSET)
- return;
- /* Default to software. */
- hwaccel = HW_SOFTWARE;
- /* Test case: Hash 0x00 0x01 0x02 ... 0x3f. */
- for (i = 0; i < 64; i++)
- block[i] = i;
- #if defined(CPUSUPPORT_X86_SHANI) && defined(CPUSUPPORT_X86_SSSE3)
- CPUSUPPORT_VALIDATE(hwaccel, HW_X86_SHANI,
- cpusupport_x86_shani() && cpusupport_x86_ssse3(),
- hwtest(initial_state, block, W, S,
- SHA256_Transform_shani_with_W_S));
- #endif
- #if defined(CPUSUPPORT_X86_SSE2)
- CPUSUPPORT_VALIDATE(hwaccel, HW_X86_SSE2, cpusupport_x86_sse2(),
- hwtest(initial_state, block, W, S, SHA256_Transform_sse2));
- #endif
- #if defined(CPUSUPPORT_ARM_SHA256)
- CPUSUPPORT_VALIDATE(hwaccel, HW_ARM_SHA256, cpusupport_arm_sha256(),
- hwtest(initial_state, block, W, S, SHA256_Transform_arm_with_W_S));
- #endif
- }
- #endif /* HWACCEL */
- /* Elementary functions used by SHA256 */
- #define Ch(x, y, z) ((x & (y ^ z)) ^ z)
- #define Maj(x, y, z) ((x & (y | z)) | (y & z))
- #define SHR(x, n) (x >> n)
- #define ROTR(x, n) ((x >> n) | (x << (32 - n)))
- #define S0(x) (ROTR(x, 2) ^ ROTR(x, 13) ^ ROTR(x, 22))
- #define S1(x) (ROTR(x, 6) ^ ROTR(x, 11) ^ ROTR(x, 25))
- #define s0(x) (ROTR(x, 7) ^ ROTR(x, 18) ^ SHR(x, 3))
- #define s1(x) (ROTR(x, 17) ^ ROTR(x, 19) ^ SHR(x, 10))
- /* SHA256 round function */
- #define RND(a, b, c, d, e, f, g, h, k) \
- h += S1(e) + Ch(e, f, g) + k; \
- d += h; \
- h += S0(a) + Maj(a, b, c)
- /* Adjusted round function for rotating state */
- #define RNDr(S, W, i, ii) \
- RND(S[(64 - i) % 8], S[(65 - i) % 8], \
- S[(66 - i) % 8], S[(67 - i) % 8], \
- S[(68 - i) % 8], S[(69 - i) % 8], \
- S[(70 - i) % 8], S[(71 - i) % 8], \
- W[i + ii] + Krnd[i + ii])
- /* Message schedule computation */
- #define MSCH(W, ii, i) \
- W[i + ii + 16] = s1(W[i + ii + 14]) + W[i + ii + 9] + s0(W[i + ii + 1]) + W[i + ii]
- /*
- * SHA256 block compression function. The 256-bit state is transformed via
- * the 512-bit input block to produce a new state. The arrays W and S may be
- * filled with sensitive data, and should be sanitized by the callee.
- */
- static void
- SHA256_Transform(uint32_t state[static restrict 8],
- const uint8_t block[static restrict 64],
- uint32_t W[static restrict 64], uint32_t S[static restrict 8])
- {
- int i;
- #ifdef HWACCEL
- #if defined(__GNUC__) && defined(__aarch64__)
- /*
- * We require that SHA256_Init() is called before SHA256_Transform(),
- * but the compiler has no way of knowing that. This assert adds a
- * significant speed boost for gcc on 64-bit ARM, and a minor penalty
- * on other systems & compilers.
- */
- assert(hwaccel != HW_UNSET);
- #endif
- switch (hwaccel) {
- #if defined(CPUSUPPORT_X86_SHANI) && defined(CPUSUPPORT_X86_SSSE3)
- case HW_X86_SHANI:
- SHA256_Transform_shani(state, block);
- return;
- #endif
- #if defined(CPUSUPPORT_X86_SSE2)
- case HW_X86_SSE2:
- SHA256_Transform_sse2(state, block, W, S);
- return;
- #endif
- #if defined(CPUSUPPORT_ARM_SHA256)
- case HW_ARM_SHA256:
- SHA256_Transform_arm(state, block);
- return;
- #endif
- case HW_SOFTWARE:
- case HW_UNSET:
- break;
- }
- #endif /* HWACCEL */
- /* 1. Prepare the first part of the message schedule W. */
- be32dec_vect(W, block, 64);
- /* 2. Initialize working variables. */
- memcpy(S, state, 32);
- /* 3. Mix. */
- for (i = 0; i < 64; i += 16) {
- RNDr(S, W, 0, i);
- RNDr(S, W, 1, i);
- RNDr(S, W, 2, i);
- RNDr(S, W, 3, i);
- RNDr(S, W, 4, i);
- RNDr(S, W, 5, i);
- RNDr(S, W, 6, i);
- RNDr(S, W, 7, i);
- RNDr(S, W, 8, i);
- RNDr(S, W, 9, i);
- RNDr(S, W, 10, i);
- RNDr(S, W, 11, i);
- RNDr(S, W, 12, i);
- RNDr(S, W, 13, i);
- RNDr(S, W, 14, i);
- RNDr(S, W, 15, i);
- if (i == 48)
- break;
- MSCH(W, 0, i);
- MSCH(W, 1, i);
- MSCH(W, 2, i);
- MSCH(W, 3, i);
- MSCH(W, 4, i);
- MSCH(W, 5, i);
- MSCH(W, 6, i);
- MSCH(W, 7, i);
- MSCH(W, 8, i);
- MSCH(W, 9, i);
- MSCH(W, 10, i);
- MSCH(W, 11, i);
- MSCH(W, 12, i);
- MSCH(W, 13, i);
- MSCH(W, 14, i);
- MSCH(W, 15, i);
- }
- /* 4. Mix local working variables into global state. */
- for (i = 0; i < 8; i++)
- state[i] += S[i];
- }
- static const uint8_t PAD[64] = {
- 0x80, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0,
- 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0,
- 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0,
- 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0
- };
- /* Add padding and terminating bit-count. */
- static void
- SHA256_Pad(SHA256_CTX * ctx, uint32_t tmp32[static restrict 72])
- {
- size_t r;
- /* Figure out how many bytes we have buffered. */
- r = (ctx->count >> 3) & 0x3f;
- /* Pad to 56 mod 64, transforming if we finish a block en route. */
- if (r < 56) {
- /* Pad to 56 mod 64. */
- memcpy(&ctx->buf[r], PAD, 56 - r);
- } else {
- /* Finish the current block and mix. */
- memcpy(&ctx->buf[r], PAD, 64 - r);
- SHA256_Transform(ctx->state, ctx->buf, &tmp32[0], &tmp32[64]);
- /* The start of the final block is all zeroes. */
- memset(&ctx->buf[0], 0, 56);
- }
- /* Add the terminating bit-count. */
- be64enc(&ctx->buf[56], ctx->count);
- /* Mix in the final block. */
- SHA256_Transform(ctx->state, ctx->buf, &tmp32[0], &tmp32[64]);
- }
- /**
- * SHA256_Init(ctx):
- * Initialize the SHA256 context ${ctx}.
- */
- void
- SHA256_Init(SHA256_CTX * ctx)
- {
- /* Zero bits processed so far. */
- ctx->count = 0;
- /* Initialize state. */
- memcpy(ctx->state, initial_state, sizeof(initial_state));
- #ifdef HWACCEL
- /* Ensure that we've chosen the type of hardware acceleration. */
- hwaccel_init();
- #endif
- }
- /**
- * SHA256_Update(ctx, in, len):
- * Input ${len} bytes from ${in} into the SHA256 context ${ctx}.
- */
- static void
- SHA256_Update_internal(SHA256_CTX * ctx, const void * in, size_t len,
- uint32_t tmp32[static restrict 72])
- {
- uint32_t r;
- const uint8_t * src = in;
- /* Return immediately if we have nothing to do. */
- if (len == 0)
- return;
- /* Number of bytes left in the buffer from previous updates. */
- r = (ctx->count >> 3) & 0x3f;
- /* Update number of bits. */
- ctx->count += (uint64_t)(len) << 3;
- /* Handle the case where we don't need to perform any transforms. */
- if (len < 64 - r) {
- memcpy(&ctx->buf[r], src, len);
- return;
- }
- /* Finish the current block. */
- memcpy(&ctx->buf[r], src, 64 - r);
- SHA256_Transform(ctx->state, ctx->buf, &tmp32[0], &tmp32[64]);
- src += 64 - r;
- len -= 64 - r;
- /* Perform complete blocks. */
- while (len >= 64) {
- SHA256_Transform(ctx->state, src, &tmp32[0], &tmp32[64]);
- src += 64;
- len -= 64;
- }
- /* Copy left over data into buffer. */
- memcpy(ctx->buf, src, len);
- }
- /* Wrapper function for intermediate-values sanitization. */
- void
- SHA256_Update(SHA256_CTX * ctx, const void * in, size_t len)
- {
- uint32_t tmp32[72];
- /* Call the real function. */
- SHA256_Update_internal(ctx, in, len, tmp32);
- /* Clean the stack. */
- insecure_memzero(tmp32, sizeof(uint32_t) * 72);
- }
- /**
- * SHA256_Final(digest, ctx):
- * Output the SHA256 hash of the data input to the context ${ctx} into the
- * buffer ${digest}, and clear the context state.
- */
- static void
- SHA256_Final_internal(uint8_t digest[32], SHA256_CTX * ctx,
- uint32_t tmp32[static restrict 72])
- {
- /* Add padding. */
- SHA256_Pad(ctx, tmp32);
- /* Write the hash. */
- be32enc_vect(digest, ctx->state, 32);
- }
- /* Wrapper function for intermediate-values sanitization. */
- void
- SHA256_Final(uint8_t digest[32], SHA256_CTX * ctx)
- {
- uint32_t tmp32[72];
- /* Call the real function. */
- SHA256_Final_internal(digest, ctx, tmp32);
- /* Clear the context state. */
- insecure_memzero(ctx, sizeof(SHA256_CTX));
- /* Clean the stack. */
- insecure_memzero(tmp32, sizeof(uint32_t) * 72);
- }
- /**
- * SHA256_Buf(in, len, digest):
- * Compute the SHA256 hash of ${len} bytes from ${in} and write it to ${digest}.
- */
- void
- SHA256_Buf(const void * in, size_t len, uint8_t digest[32])
- {
- SHA256_CTX ctx;
- uint32_t tmp32[72];
- SHA256_Init(&ctx);
- SHA256_Update_internal(&ctx, in, len, tmp32);
- SHA256_Final_internal(digest, &ctx, tmp32);
- /* Clean the stack. */
- insecure_memzero(&ctx, sizeof(SHA256_CTX));
- insecure_memzero(tmp32, sizeof(uint32_t) * 72);
- }
- /**
- * HMAC_SHA256_Init(ctx, K, Klen):
- * Initialize the HMAC-SHA256 context ${ctx} with ${Klen} bytes of key from
- * ${K}.
- */
- static void
- HMAC_SHA256_Init_internal(HMAC_SHA256_CTX * ctx, const void * _k, size_t Klen,
- uint32_t tmp32[static restrict 72], uint8_t pad[static restrict 64],
- uint8_t khash[static restrict 32])
- {
- const uint8_t * K = _k;
- size_t i;
- /* If Klen > 64, the key is really SHA256(K). */
- if (Klen > 64) {
- SHA256_Init(&ctx->ictx);
- SHA256_Update_internal(&ctx->ictx, K, Klen, tmp32);
- SHA256_Final_internal(khash, &ctx->ictx, tmp32);
- K = khash;
- Klen = 32;
- }
- /* Inner SHA256 operation is SHA256(K xor [block of 0x36] || data). */
- SHA256_Init(&ctx->ictx);
- memset(pad, 0x36, 64);
- for (i = 0; i < Klen; i++)
- pad[i] ^= K[i];
- SHA256_Update_internal(&ctx->ictx, pad, 64, tmp32);
- /* Outer SHA256 operation is SHA256(K xor [block of 0x5c] || hash). */
- SHA256_Init(&ctx->octx);
- memset(pad, 0x5c, 64);
- for (i = 0; i < Klen; i++)
- pad[i] ^= K[i];
- SHA256_Update_internal(&ctx->octx, pad, 64, tmp32);
- }
- /* Wrapper function for intermediate-values sanitization. */
- void
- HMAC_SHA256_Init(HMAC_SHA256_CTX * ctx, const void * K, size_t Klen)
- {
- uint32_t tmp32[72];
- uint8_t pad[64];
- uint8_t khash[32];
- /* Call the real function. */
- HMAC_SHA256_Init_internal(ctx, K, Klen, tmp32, pad, khash);
- /* Clean the stack. */
- insecure_memzero(tmp32, sizeof(uint32_t) * 72);
- insecure_memzero(khash, 32);
- insecure_memzero(pad, 64);
- }
- /**
- * HMAC_SHA256_Update(ctx, in, len):
- * Input ${len} bytes from ${in} into the HMAC-SHA256 context ${ctx}.
- */
- static void
- HMAC_SHA256_Update_internal(HMAC_SHA256_CTX * ctx, const void * in, size_t len,
- uint32_t tmp32[static restrict 72])
- {
- /* Feed data to the inner SHA256 operation. */
- SHA256_Update_internal(&ctx->ictx, in, len, tmp32);
- }
- /* Wrapper function for intermediate-values sanitization. */
- void
- HMAC_SHA256_Update(HMAC_SHA256_CTX * ctx, const void * in, size_t len)
- {
- uint32_t tmp32[72];
- /* Call the real function. */
- HMAC_SHA256_Update_internal(ctx, in, len, tmp32);
- /* Clean the stack. */
- insecure_memzero(tmp32, sizeof(uint32_t) * 72);
- }
- /**
- * HMAC_SHA256_Final(digest, ctx):
- * Output the HMAC-SHA256 of the data input to the context ${ctx} into the
- * buffer ${digest}, and clear the context state.
- */
- static void
- HMAC_SHA256_Final_internal(uint8_t digest[32], HMAC_SHA256_CTX * ctx,
- uint32_t tmp32[static restrict 72], uint8_t ihash[static restrict 32])
- {
- /* Finish the inner SHA256 operation. */
- SHA256_Final_internal(ihash, &ctx->ictx, tmp32);
- /* Feed the inner hash to the outer SHA256 operation. */
- SHA256_Update_internal(&ctx->octx, ihash, 32, tmp32);
- /* Finish the outer SHA256 operation. */
- SHA256_Final_internal(digest, &ctx->octx, tmp32);
- }
- /* Wrapper function for intermediate-values sanitization. */
- void
- HMAC_SHA256_Final(uint8_t digest[32], HMAC_SHA256_CTX * ctx)
- {
- uint32_t tmp32[72];
- uint8_t ihash[32];
- /* Call the real function. */
- HMAC_SHA256_Final_internal(digest, ctx, tmp32, ihash);
- /* Clear the context state. */
- insecure_memzero(ctx, sizeof(HMAC_SHA256_CTX));
- /* Clean the stack. */
- insecure_memzero(tmp32, sizeof(uint32_t) * 72);
- insecure_memzero(ihash, 32);
- }
- /**
- * HMAC_SHA256_Buf(K, Klen, in, len, digest):
- * Compute the HMAC-SHA256 of ${len} bytes from ${in} using the key ${K} of
- * length ${Klen}, and write the result to ${digest}.
- */
- void
- HMAC_SHA256_Buf(const void * K, size_t Klen, const void * in, size_t len,
- uint8_t digest[32])
- {
- HMAC_SHA256_CTX ctx;
- uint32_t tmp32[72];
- uint8_t tmp8[96];
- HMAC_SHA256_Init_internal(&ctx, K, Klen, tmp32, &tmp8[0], &tmp8[64]);
- HMAC_SHA256_Update_internal(&ctx, in, len, tmp32);
- HMAC_SHA256_Final_internal(digest, &ctx, tmp32, &tmp8[0]);
- /* Clean the stack. */
- insecure_memzero(&ctx, sizeof(HMAC_SHA256_CTX));
- insecure_memzero(tmp32, sizeof(uint32_t) * 72);
- insecure_memzero(tmp8, 96);
- }
- /**
- * PBKDF2_SHA256(passwd, passwdlen, salt, saltlen, c, buf, dkLen):
- * Compute PBKDF2(passwd, salt, c, dkLen) using HMAC-SHA256 as the PRF, and
- * write the output to buf. The value dkLen must be at most 32 * (2^32 - 1).
- */
- void
- PBKDF2_SHA256(const uint8_t * passwd, size_t passwdlen, const uint8_t * salt,
- size_t saltlen, uint64_t c, uint8_t * buf, size_t dkLen)
- {
- HMAC_SHA256_CTX Phctx, PShctx, hctx;
- uint32_t tmp32[72];
- uint8_t tmp8[96];
- size_t i;
- uint8_t ivec[4];
- uint8_t U[32];
- uint8_t T[32];
- uint64_t j;
- int k;
- size_t clen;
- #if SIZE_MAX >= (32 * UINT32_MAX)
- /* Sanity-check. */
- assert(dkLen <= 32 * (size_t)(UINT32_MAX));
- #endif
- /* Compute HMAC state after processing P. */
- HMAC_SHA256_Init_internal(&Phctx, passwd, passwdlen,
- tmp32, &tmp8[0], &tmp8[64]);
- /* Compute HMAC state after processing P and S. */
- memcpy(&PShctx, &Phctx, sizeof(HMAC_SHA256_CTX));
- HMAC_SHA256_Update_internal(&PShctx, salt, saltlen, tmp32);
- /* Iterate through the blocks. */
- for (i = 0; i * 32 < dkLen; i++) {
- /* Generate INT(i + 1). */
- be32enc(ivec, (uint32_t)(i + 1));
- /* Compute U_1 = PRF(P, S || INT(i)). */
- memcpy(&hctx, &PShctx, sizeof(HMAC_SHA256_CTX));
- HMAC_SHA256_Update_internal(&hctx, ivec, 4, tmp32);
- HMAC_SHA256_Final_internal(U, &hctx, tmp32, tmp8);
- /* T_i = U_1 ... */
- memcpy(T, U, 32);
- for (j = 2; j <= c; j++) {
- /* Compute U_j. */
- memcpy(&hctx, &Phctx, sizeof(HMAC_SHA256_CTX));
- HMAC_SHA256_Update_internal(&hctx, U, 32, tmp32);
- HMAC_SHA256_Final_internal(U, &hctx, tmp32, tmp8);
- /* ... xor U_j ... */
- for (k = 0; k < 32; k++)
- T[k] ^= U[k];
- }
- /* Copy as many bytes as necessary into buf. */
- clen = dkLen - i * 32;
- if (clen > 32)
- clen = 32;
- memcpy(&buf[i * 32], T, clen);
- }
- /* Clean the stack. */
- insecure_memzero(&Phctx, sizeof(HMAC_SHA256_CTX));
- insecure_memzero(&PShctx, sizeof(HMAC_SHA256_CTX));
- insecure_memzero(&hctx, sizeof(HMAC_SHA256_CTX));
- insecure_memzero(tmp32, sizeof(uint32_t) * 72);
- insecure_memzero(tmp8, 96);
- insecure_memzero(U, 32);
- insecure_memzero(T, 32);
- }
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