duoram.cpp 14 KB

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  1. #include <type_traits> // std::is_same<>
  2. #include <limits> // std::numeric_limits<>
  3. #include <climits> // CHAR_BIT
  4. #include <cmath> // std::log2, std::ceil, std::floor
  5. #include <stdexcept> // std::runtime_error
  6. #include <array> // std::array<>
  7. #include <iostream> // std::istream and std::ostream
  8. #include <vector> // std::vector<>
  9. #include <memory> // std::shared_ptr<>
  10. #include <utility> // std::move
  11. #include <algorithm> // std::copy
  12. #include <cstring> // std::memcpy
  13. #include <bsd/stdlib.h> // arc4random_buf
  14. #include <x86intrin.h> // SSE and AVX intrinsics
  15. #include "prg.h"
  16. #include "prg_aes_impl.h"
  17. const size_t ncores = 16;
  18. uint64_t progress[ncores] = {0};
  19. #include <thread>
  20. #include <iostream>
  21. #include <deque>
  22. #include <../boost/asio.hpp>
  23. using boost::asio::ip::tcp;
  24. #include "block.h"
  25. #include <type_traits>
  26. #include <chrono>
  27. using namespace std::chrono;
  28. #include "duoram-utils.h"
  29. #include "duoram-read.h"
  30. #include "duoram-refresh.h"
  31. #include "duoram-write.h"
  32. #include "readvectors.h"
  33. using namespace std;
  34. using socket_t = boost::asio::ip::tcp::socket;
  35. void accept_conncections_from_Pb(boost::asio::io_context&io_context, std::vector<socket_t>& sockets_, int port, size_t j)
  36. {
  37. tcp::acceptor acceptor_a(io_context, tcp::endpoint(tcp::v4(), port));
  38. tcp::socket sb_a(acceptor_a.accept());
  39. sockets_[j] = std::move(sb_a);
  40. // sockets_.emplace_back(std::move(sb_a));
  41. }
  42. int main(const int argc, const char * argv[])
  43. {
  44. size_t expo = atoi(argv[3]);
  45. size_t db_nitems = 1ULL << expo;
  46. size_t number_of_writes = atoi(argv[4]);
  47. size_t number_of_ind_reads = atoi(argv[5]);
  48. size_t number_of_dep_reads = atoi(argv[6]);
  49. size_t number_of_accesses = atoi(argv[7]);
  50. reading_temp = (DB_t *) std::aligned_alloc(sizeof(__m256i), db_nitems * sizeof(DB_t));
  51. DB = (DB_t *) std::aligned_alloc(sizeof(__m256i), db_nitems * sizeof(DB_t));
  52. updated_DB = (DB_t *) std::aligned_alloc(sizeof(__m256i), db_nitems * sizeof(DB_t));
  53. blinded_DB = (DB_t *) std::aligned_alloc(sizeof(__m256i), db_nitems * sizeof(DB_t));
  54. blinded_DB_recv = (DB_t *) std::aligned_alloc(sizeof(__m256i), db_nitems * sizeof(DB_t));
  55. updated_blinded_DB_recv = (DB_t *) std::aligned_alloc(sizeof(__m256i), db_nitems * sizeof(DB_t));
  56. b = (DB_t *) std::aligned_alloc(sizeof(__m256i), db_nitems * sizeof(DB_t));
  57. c = (DB_t *) std::aligned_alloc(sizeof(__m256i), db_nitems * sizeof(DB_t));
  58. d = (DB_t *) std::aligned_alloc(sizeof(__m256i), db_nitems * sizeof(DB_t));
  59. reading_b = (int8_t *) malloc(db_nitems * sizeof(int8_t));
  60. reading_c = (int8_t *) malloc(db_nitems * sizeof(int8_t));
  61. reading_d = (int8_t *) malloc(db_nitems * sizeof(int8_t));
  62. writing_b = (int8_t *) malloc(db_nitems * sizeof(int8_t));
  63. writing_c = (int8_t *) malloc(db_nitems * sizeof(int8_t));
  64. writing_d = (int8_t *) malloc(db_nitems * sizeof(int8_t));
  65. // size_t read_at[number_of_writes];
  66. // size_t rand_point[number_of_writes];
  67. size_t * rotate_by_ = new size_t[number_of_writes];
  68. boost::asio::io_context io_context;
  69. tcp::resolver resolver(io_context);
  70. std::string addr = "127.0.0.1";
  71. const std::string host1 = (argc < 2) ? "127.0.0.1" : argv[1];
  72. const std::string host2 = (argc < 3) ? "127.0.0.1" : argv[2];
  73. bool party;
  74. const size_t number_of_sockets = 40;
  75. std::vector<socket_t> sockets_;
  76. for(size_t j = 0; j < number_of_sockets + 1; ++j)
  77. {
  78. tcp::socket emptysocket(io_context);
  79. sockets_.emplace_back(std::move(emptysocket));
  80. }
  81. sockets_.reserve(number_of_sockets + 1);
  82. printf("number_of_sockets = %zu\n", number_of_sockets);
  83. std::vector<socket_t> sockets_2;
  84. std::vector<int> ports;
  85. for(size_t j = 0; j < number_of_sockets; ++j)
  86. {
  87. int port = 6000;
  88. ports.push_back(port + j);
  89. }
  90. std::vector<int> ports2_0;
  91. for(size_t j = 0; j < number_of_sockets; ++j)
  92. {
  93. int port = 8000;
  94. ports2_0.push_back(port + j);
  95. }
  96. std::vector<int> ports2_1;
  97. for(size_t j = 0; j < number_of_sockets; ++j)
  98. {
  99. int port = 9000;
  100. ports2_1.push_back(port + j);
  101. }
  102. #if (PARTY == 0)
  103. party = false;
  104. #ifdef ThreeParty
  105. for(size_t j = 0; j < number_of_sockets; ++j)
  106. {
  107. tcp::socket sb_a(io_context);
  108. boost::asio::connect(sb_a, resolver.resolve({host2, std::to_string(ports2_0[j])}));
  109. sockets_2.emplace_back(std::move(sb_a));
  110. }
  111. #endif
  112. for(size_t j = 0; j < number_of_sockets; ++j)
  113. {
  114. tcp::socket sb_a(io_context);
  115. boost::asio::connect(sb_a, resolver.resolve({host1, std::to_string(ports[j])}));
  116. sockets_[j] = std::move(sb_a);
  117. }
  118. #else
  119. party = true;
  120. #ifdef ThreeParty
  121. for(size_t j = 0; j < number_of_sockets; ++j)
  122. {
  123. tcp::socket sb_a(io_context);
  124. boost::asio::connect(sb_a, resolver.resolve({host2, std::to_string(ports2_1[j])}));
  125. sockets_2.emplace_back(std::move(sb_a));
  126. }
  127. #endif
  128. boost::asio::thread_pool pool2(number_of_sockets);
  129. for(size_t j = 0; j < number_of_sockets; ++j)
  130. {
  131. boost::asio::post(pool2, std::bind(accept_conncections_from_Pb, std::ref(io_context), std::ref(sockets_), ports[j], j));
  132. }
  133. pool2.join();
  134. #endif
  135. generate_random_distinguished_points(party);
  136. AES_KEY aeskey;
  137. //read_final_cws(sockets_2[0]);
  138. blinds = (DB_t *) std::aligned_alloc(sizeof(__m256i), db_nitems * sizeof(DB_t));
  139. updated_blinds = (DB_t *) std::aligned_alloc(sizeof(__m256i), db_nitems * sizeof(DB_t));
  140. setup(DB, updated_DB, blinded_DB_recv, blinds, updated_blinds, updated_blinded_DB_recv, db_nitems, party);
  141. auto start_total = std::chrono::steady_clock::now();
  142. size_t * where_to_write = new size_t[number_of_writes];
  143. size_t * where_to_read_dependent = new size_t[number_of_dep_reads];
  144. size_t * where_to_read_independent = new size_t[number_of_ind_reads];
  145. for(size_t i = 0; i < number_of_accesses; ++i)
  146. {
  147. for(size_t j = 0; j < number_of_writes; ++j)
  148. {
  149. where_to_write[j] = j + 4;
  150. }
  151. for(size_t j = 0; j < number_of_dep_reads; ++j)
  152. {
  153. where_to_read_dependent[j] = j + 4;
  154. }
  155. for(size_t j = 0; j < number_of_ind_reads; ++j)
  156. {
  157. where_to_read_independent[j] = j + 4;
  158. }
  159. for(size_t j = 0; j < db_nitems; ++j)
  160. {
  161. blinds[j] = 0;
  162. updated_blinds[j] = blinds[j];
  163. updated_blinded_DB_recv[j] = blinded_DB_recv[j];
  164. }
  165. int64_t ri, ri_recv;
  166. arc4random_buf(&ri, sizeof(ri));
  167. ri = ri % db_nitems;
  168. boost::asio::write(sockets_[0], boost::asio::buffer(&ri, sizeof(ri)));
  169. boost::asio::read(sockets_[0], boost::asio::buffer(&ri_recv, sizeof(ri_recv)));
  170. std::cout << "ri = " << ri << std::endl;
  171. if(party) ri = 2 - ri_recv;
  172. #ifdef VERBOSE
  173. boost::asio::write(sockets_[0], boost::asio::buffer(&ri, sizeof(ri)));
  174. boost::asio::read(sockets_[0], boost::asio::buffer(&ri_recv, sizeof(ri_recv)));
  175. int64_t ri_reconstruction = ri + ri_recv;
  176. std::cout << "ri_reconstruction = " << ri_reconstruction << std::endl;
  177. #endif
  178. #ifdef ThreeParty
  179. DuORAM_Write * WritePb_ = new DuORAM_Write[number_of_writes];
  180. DuORAM_Write * WritePb_recv = new DuORAM_Write[number_of_writes];
  181. DB_t * read_out = new DB_t[number_of_writes];
  182. DB_t * Gamma = new DB_t[number_of_writes];
  183. #endif
  184. DB_t * CW = new DB_t[number_of_writes];
  185. DB_t * update_message = new DB_t[number_of_writes];
  186. auto start_writes = std::chrono::steady_clock::now();
  187. #ifdef ThreeParty
  188. for(size_t w = 0; w < number_of_writes; ++w)
  189. {
  190. DB_t FCW_read = 0;
  191. read_final_correction_word(party, FCW_read);
  192. #ifdef VERBOSE
  193. std::cout << "FCW_read (from) = " << FCW_read << std::endl;
  194. #endif
  195. DB_t alpha0 = -FCW_read;
  196. WritePb_[w].shift = where_to_write[w] -ri;
  197. WritePb_[w].CW = distinguised_value[0];
  198. boost::asio::write(sockets_2[0], boost::asio::buffer(&WritePb_[w], sizeof(DuORAM_Write)));
  199. read(sockets_2[1], boost::asio::buffer(&Gamma[w], sizeof(DB_t)));
  200. boost::asio::write(sockets_[0], boost::asio::buffer(&WritePb_[w], sizeof(DuORAM_Write)));
  201. boost::asio::read(sockets_[0], boost::asio::buffer(&WritePb_recv[w], sizeof(DuORAM_Write)));
  202. read_flags(party, db_nitems);
  203. rotate_by_[w] = WritePb_[w].shift + WritePb_recv[w].shift;
  204. #ifdef VERBOSE
  205. std::cout << "print database: " << std::endl;
  206. reconstruct_database(sockets_[0], DB, db_nitems);
  207. #endif
  208. for(size_t j = 0; j < db_nitems; ++j) reading_temp[j] = DB[j] + updated_blinded_DB_recv[j];
  209. if(!party) read_out[w] = dot_product_with_bool(reading_temp, writing_b, db_nitems, rotate_by_[w]) +
  210. dot_product_with_bool(updated_blinds, writing_b, db_nitems, rotate_by_[w]) -
  211. dot_product_with_bool(updated_blinds, writing_c, db_nitems, rotate_by_[w]) + Gamma[w];
  212. if(party) read_out[w] = dot_product_with_bool(reading_temp, writing_c, db_nitems, rotate_by_[w]) +
  213. dot_product_with_bool(updated_blinds, writing_c, db_nitems, rotate_by_[w]) -
  214. dot_product_with_bool(updated_blinds, writing_d, db_nitems, rotate_by_[w]) + Gamma[w];
  215. #ifdef DEBUG
  216. std::cout << "read_out[" << w << "] = " << read_out[w] << std::endl;
  217. #endif
  218. #ifdef DEBUG
  219. std::cout << "reconstructing the output: " << print_reconstruction(sockets_[0], read_out[w]) << "\n";
  220. #endif
  221. distinguised_value[0] = 80 * (1 + w);
  222. update_message[w] = distinguised_value[0] - read_out[w] + alpha0;
  223. #ifdef DEBUG
  224. std::cout << "-> The updated message shares is " << update_message[w] << std::endl;
  225. #endif
  226. boost::asio::write(sockets_2[2], boost::asio::buffer(&update_message[w], sizeof(DB_t)));
  227. boost::asio::write(sockets_[2], boost::asio::buffer(&update_message[w], sizeof(DB_t)));
  228. boost::asio::read(sockets_[2], boost::asio::buffer(&CW[w], sizeof(DB_t)));
  229. CW[w] = CW[w] + update_message[w];
  230. #ifdef DEBUG
  231. std::cout << "cw = " << CW[w] << std::endl;
  232. #endif
  233. }
  234. #endif
  235. for(size_t w = 0; w < number_of_writes; ++w)
  236. {
  237. DuoramUpdate(party, db_nitems, rotate_by_[w], DB, updated_DB, writing_b, b, CW[w], update_message[w], writing_c, writing_d, c, d);
  238. #ifdef DEBUG
  239. #ifdef ThreeParty
  240. debug_(sockets_2[0], sockets_[0], db_nitems);
  241. #endif
  242. #endif
  243. }
  244. auto end_writes = std::chrono::steady_clock::now();
  245. std::chrono::duration<double> elapsed_seconds_writes = end_writes - start_writes;
  246. printf("elapsed_seconds_writes = %f\n",elapsed_seconds_writes.count());
  247. #ifdef VERBOSE
  248. reconstruct_database(sockets_[0], DB, db_nitems);
  249. #endif
  250. // WRITES END.
  251. #ifdef ThreeParty
  252. printf("\n\n================================= WRITES END =================================\n\n\n");
  253. auto start_ind_reads = std::chrono::steady_clock::now();
  254. size_t * WritePb_ind_reads = new size_t[number_of_ind_reads];
  255. size_t * WritePb_ind_reads_recv = new size_t[number_of_ind_reads];
  256. size_t * rotate = new size_t[number_of_ind_reads];
  257. for(size_t r = 0; r < number_of_ind_reads; ++r) WritePb_ind_reads[r] = where_to_read_independent[r] -ri;
  258. boost::asio::write(sockets_2[3], boost::asio::buffer(WritePb_ind_reads, number_of_ind_reads * sizeof(size_t)));
  259. boost::asio::write(sockets_[3], boost::asio::buffer(WritePb_ind_reads, number_of_ind_reads * sizeof(size_t)));
  260. boost::asio::read(sockets_[3], boost::asio::buffer(WritePb_ind_reads_recv, number_of_ind_reads * sizeof(size_t)));
  261. DB_t * Gamma_reads = new DB_t[number_of_ind_reads];
  262. boost::asio::read(sockets_2[4], boost::asio::buffer(Gamma_reads, number_of_ind_reads * sizeof(DB_t)));
  263. for(size_t j = 0; j < number_of_ind_reads; ++j)
  264. {
  265. rotate[j] = WritePb_ind_reads[j] + WritePb_ind_reads_recv[j];
  266. }
  267. DB_t * read_out_independent_reads = new DB_t[number_of_ind_reads];
  268. for(size_t r = 0; r < number_of_ind_reads; ++r)
  269. {
  270. #ifdef VERBOSE
  271. std::cout << "rotate[r]" << rotate[r] << std::endl;
  272. std::cout << "Gamma_reads[r] = " << Gamma_reads[r] << std::endl;
  273. #endif
  274. read_out_independent_reads[r] = DuoramIndependentRead(party, db_nitems, ri, Gamma_reads, rotate, r);
  275. #ifdef VERBOSE
  276. std::cout << "---> [duoram independent reads] " << print_reconstruction(sockets_[0], read_out_independent_reads[r]) << std::endl;
  277. #endif
  278. }
  279. auto end_ind_reads = std::chrono::steady_clock::now();
  280. std::chrono::duration<double> elapsed_seconds_ind_reads = end_ind_reads - start_ind_reads;
  281. printf("elapsed_seconds_ind_reads = %f\n",elapsed_seconds_ind_reads.count());
  282. printf("\n\n================================= INDEPENDENT READS END =================================\n\n\n");
  283. auto start_dep_reads = std::chrono::steady_clock::now();
  284. printf("\n\n================================= DEPENDENT READS START =================================\n\n\n");
  285. DB_t * read_out_dependent_reads = new DB_t[number_of_dep_reads];
  286. for(size_t r = 0; r < number_of_dep_reads; ++r)
  287. {
  288. read_out_dependent_reads[r] = DuoramRead(party, db_nitems, ri, where_to_read_dependent[r], sockets_2[5], sockets_2[6], sockets_[5]);
  289. #ifdef VERBOSE
  290. std::cout << "dependent read (share) " << r << " -> " << read_out_dependent_reads[r] << std::endl;
  291. std::cout << print_reconstruction(sockets_[0], read_out_dependent_reads[r]) << std::endl;
  292. #endif
  293. }
  294. auto end_dep_reads = std::chrono::steady_clock::now();
  295. std::chrono::duration<double> elapsed_seconds_dep_reads = end_dep_reads - start_dep_reads;
  296. printf("elapsed_seconds_dep_reads = %f\n",elapsed_seconds_dep_reads.count());
  297. printf("\n\n================================= DEPENDENT READS END =================================n\n");
  298. printf("\n\n\n\n\n-----------------------------------------------------------------------------------------------------------\n\n\n\n\n\n");
  299. #endif
  300. }
  301. auto end_total = std::chrono::steady_clock::now();
  302. std::chrono::duration<double> elapsed_seconds_total = end_total - start_total;
  303. printf("elapsed_seconds_total = %f\n",elapsed_seconds_total.count());
  304. free(reading_temp);
  305. return 0;
  306. }