argon2-fill-block-ref.c 8.4 KB

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  1. /*
  2. * Argon2 source code package
  3. *
  4. * Written by Daniel Dinu and Dmitry Khovratovich, 2015
  5. *
  6. * This work is licensed under a Creative Commons CC0 1.0 License/Waiver.
  7. *
  8. * You should have received a copy of the CC0 Public Domain Dedication along
  9. * with
  10. * this software. If not, see
  11. * <http://creativecommons.org/publicdomain/zero/1.0/>.
  12. */
  13. #include <stdint.h>
  14. #include <stdlib.h>
  15. #include <string.h>
  16. #include "argon2-core.h"
  17. #include "argon2.h"
  18. #include "blamka-round-ref.h"
  19. #include "private/common.h"
  20. static void
  21. fill_block(const block *prev_block, const block *ref_block, block *next_block)
  22. {
  23. block blockR, block_tmp;
  24. unsigned i;
  25. copy_block(&blockR, ref_block);
  26. xor_block(&blockR, prev_block);
  27. copy_block(&block_tmp, &blockR);
  28. /* Now blockR = ref_block + prev_block and bloc_tmp = ref_block + prev_block
  29. Apply Blake2 on columns of 64-bit words: (0,1,...,15), then
  30. (16,17,..31)... finally (112,113,...127) */
  31. for (i = 0; i < 8; ++i) {
  32. BLAKE2_ROUND_NOMSG(
  33. blockR.v[16 * i], blockR.v[16 * i + 1], blockR.v[16 * i + 2],
  34. blockR.v[16 * i + 3], blockR.v[16 * i + 4], blockR.v[16 * i + 5],
  35. blockR.v[16 * i + 6], blockR.v[16 * i + 7], blockR.v[16 * i + 8],
  36. blockR.v[16 * i + 9], blockR.v[16 * i + 10], blockR.v[16 * i + 11],
  37. blockR.v[16 * i + 12], blockR.v[16 * i + 13], blockR.v[16 * i + 14],
  38. blockR.v[16 * i + 15]);
  39. }
  40. /* Apply Blake2 on rows of 64-bit words: (0,1,16,17,...112,113), then
  41. (2,3,18,19,...,114,115).. finally (14,15,30,31,...,126,127) */
  42. for (i = 0; i < 8; i++) {
  43. BLAKE2_ROUND_NOMSG(
  44. blockR.v[2 * i], blockR.v[2 * i + 1], blockR.v[2 * i + 16],
  45. blockR.v[2 * i + 17], blockR.v[2 * i + 32], blockR.v[2 * i + 33],
  46. blockR.v[2 * i + 48], blockR.v[2 * i + 49], blockR.v[2 * i + 64],
  47. blockR.v[2 * i + 65], blockR.v[2 * i + 80], blockR.v[2 * i + 81],
  48. blockR.v[2 * i + 96], blockR.v[2 * i + 97], blockR.v[2 * i + 112],
  49. blockR.v[2 * i + 113]);
  50. }
  51. copy_block(next_block, &block_tmp);
  52. xor_block(next_block, &blockR);
  53. }
  54. static void
  55. fill_block_with_xor(const block *prev_block, const block *ref_block,
  56. block *next_block)
  57. {
  58. block blockR, block_tmp;
  59. unsigned i;
  60. copy_block(&blockR, ref_block);
  61. xor_block(&blockR, prev_block);
  62. copy_block(&block_tmp, &blockR);
  63. xor_block(&block_tmp,
  64. next_block); /* Saving the next block contents for XOR over */
  65. /* Now blockR = ref_block + prev_block and bloc_tmp = ref_block + prev_block
  66. * + next_block */
  67. /* Apply Blake2 on columns of 64-bit words: (0,1,...,15) , then
  68. (16,17,..31)... finally (112,113,...127) */
  69. for (i = 0; i < 8; ++i) {
  70. BLAKE2_ROUND_NOMSG(
  71. blockR.v[16 * i], blockR.v[16 * i + 1], blockR.v[16 * i + 2],
  72. blockR.v[16 * i + 3], blockR.v[16 * i + 4], blockR.v[16 * i + 5],
  73. blockR.v[16 * i + 6], blockR.v[16 * i + 7], blockR.v[16 * i + 8],
  74. blockR.v[16 * i + 9], blockR.v[16 * i + 10], blockR.v[16 * i + 11],
  75. blockR.v[16 * i + 12], blockR.v[16 * i + 13], blockR.v[16 * i + 14],
  76. blockR.v[16 * i + 15]);
  77. }
  78. /* Apply Blake2 on rows of 64-bit words: (0,1,16,17,...112,113), then
  79. (2,3,18,19,...,114,115).. finally (14,15,30,31,...,126,127) */
  80. for (i = 0; i < 8; i++) {
  81. BLAKE2_ROUND_NOMSG(
  82. blockR.v[2 * i], blockR.v[2 * i + 1], blockR.v[2 * i + 16],
  83. blockR.v[2 * i + 17], blockR.v[2 * i + 32], blockR.v[2 * i + 33],
  84. blockR.v[2 * i + 48], blockR.v[2 * i + 49], blockR.v[2 * i + 64],
  85. blockR.v[2 * i + 65], blockR.v[2 * i + 80], blockR.v[2 * i + 81],
  86. blockR.v[2 * i + 96], blockR.v[2 * i + 97], blockR.v[2 * i + 112],
  87. blockR.v[2 * i + 113]);
  88. }
  89. copy_block(next_block, &block_tmp);
  90. xor_block(next_block, &blockR);
  91. }
  92. /*
  93. * Generate pseudo-random values to reference blocks in the segment and puts
  94. * them into the array
  95. * @param instance Pointer to the current instance
  96. * @param position Pointer to the current position
  97. * @param pseudo_rands Pointer to the array of 64-bit values
  98. * @pre pseudo_rands must point to @a instance->segment_length allocated values
  99. */
  100. static void
  101. generate_addresses(const argon2_instance_t *instance,
  102. const argon2_position_t *position, uint64_t *pseudo_rands)
  103. {
  104. block zero_block, input_block, address_block, tmp_block;
  105. uint32_t i;
  106. init_block_value(&zero_block, 0);
  107. init_block_value(&input_block, 0);
  108. if (instance != NULL && position != NULL) {
  109. input_block.v[0] = position->pass;
  110. input_block.v[1] = position->lane;
  111. input_block.v[2] = position->slice;
  112. input_block.v[3] = instance->memory_blocks;
  113. input_block.v[4] = instance->passes;
  114. input_block.v[5] = instance->type;
  115. for (i = 0; i < instance->segment_length; ++i) {
  116. if (i % ARGON2_ADDRESSES_IN_BLOCK == 0) {
  117. input_block.v[6]++;
  118. init_block_value(&tmp_block, 0);
  119. init_block_value(&address_block, 0);
  120. fill_block_with_xor(&zero_block, &input_block, &tmp_block);
  121. fill_block_with_xor(&zero_block, &tmp_block, &address_block);
  122. }
  123. pseudo_rands[i] = address_block.v[i % ARGON2_ADDRESSES_IN_BLOCK];
  124. }
  125. }
  126. }
  127. void
  128. fill_segment_ref(const argon2_instance_t *instance, argon2_position_t position)
  129. {
  130. block *ref_block = NULL, *curr_block = NULL;
  131. /* Pseudo-random values that determine the reference block position */
  132. uint64_t *pseudo_rands = NULL;
  133. uint64_t pseudo_rand, ref_index, ref_lane;
  134. uint32_t prev_offset, curr_offset;
  135. uint32_t starting_index;
  136. uint32_t i;
  137. int data_independent_addressing = 1;
  138. if (instance == NULL) {
  139. return;
  140. }
  141. if (instance->type == Argon2_id &&
  142. (position.pass != 0 || position.slice >= ARGON2_SYNC_POINTS / 2)) {
  143. data_independent_addressing = 0;
  144. }
  145. pseudo_rands = instance->pseudo_rands;
  146. if (data_independent_addressing) {
  147. generate_addresses(instance, &position, pseudo_rands);
  148. }
  149. starting_index = 0;
  150. if ((0 == position.pass) && (0 == position.slice)) {
  151. starting_index = 2; /* we have already generated the first two blocks */
  152. }
  153. /* Offset of the current block */
  154. curr_offset = position.lane * instance->lane_length +
  155. position.slice * instance->segment_length + starting_index;
  156. if (0 == curr_offset % instance->lane_length) {
  157. /* Last block in this lane */
  158. prev_offset = curr_offset + instance->lane_length - 1;
  159. } else {
  160. /* Previous block */
  161. prev_offset = curr_offset - 1;
  162. }
  163. for (i = starting_index; i < instance->segment_length;
  164. ++i, ++curr_offset, ++prev_offset) {
  165. /*1.1 Rotating prev_offset if needed */
  166. if (curr_offset % instance->lane_length == 1) {
  167. prev_offset = curr_offset - 1;
  168. }
  169. /* 1.2 Computing the index of the reference block */
  170. /* 1.2.1 Taking pseudo-random value from the previous block */
  171. if (data_independent_addressing) {
  172. #pragma warning(push)
  173. #pragma warning(disable : 6385)
  174. pseudo_rand = pseudo_rands[i];
  175. #pragma warning(pop)
  176. } else {
  177. pseudo_rand = instance->region->memory[prev_offset].v[0];
  178. }
  179. /* 1.2.2 Computing the lane of the reference block */
  180. ref_lane = ((pseudo_rand >> 32)) % instance->lanes;
  181. if ((position.pass == 0) && (position.slice == 0)) {
  182. /* Can not reference other lanes yet */
  183. ref_lane = position.lane;
  184. }
  185. /* 1.2.3 Computing the number of possible reference block within the
  186. * lane.
  187. */
  188. position.index = i;
  189. ref_index = index_alpha(instance, &position, pseudo_rand & 0xFFFFFFFF,
  190. ref_lane == position.lane);
  191. /* 2 Creating a new block */
  192. ref_block = instance->region->memory +
  193. instance->lane_length * ref_lane + ref_index;
  194. curr_block = instance->region->memory + curr_offset;
  195. if (position.pass != 0) {
  196. fill_block_with_xor(instance->region->memory + prev_offset,
  197. ref_block, curr_block);
  198. } else {
  199. fill_block(instance->region->memory + prev_offset, ref_block,
  200. curr_block);
  201. }
  202. }
  203. }