test_crypto.c 111 KB

1234567891011121314151617181920212223242526272829303132333435363738394041424344454647484950515253545556575859606162636465666768697071727374757677787980818283848586878889909192939495969798991001011021031041051061071081091101111121131141151161171181191201211221231241251261271281291301311321331341351361371381391401411421431441451461471481491501511521531541551561571581591601611621631641651661671681691701711721731741751761771781791801811821831841851861871881891901911921931941951961971981992002012022032042052062072082092102112122132142152162172182192202212222232242252262272282292302312322332342352362372382392402412422432442452462472482492502512522532542552562572582592602612622632642652662672682692702712722732742752762772782792802812822832842852862872882892902912922932942952962972982993003013023033043053063073083093103113123133143153163173183193203213223233243253263273283293303313323333343353363373383393403413423433443453463473483493503513523533543553563573583593603613623633643653663673683693703713723733743753763773783793803813823833843853863873883893903913923933943953963973983994004014024034044054064074084094104114124134144154164174184194204214224234244254264274284294304314324334344354364374384394404414424434444454464474484494504514524534544554564574584594604614624634644654664674684694704714724734744754764774784794804814824834844854864874884894904914924934944954964974984995005015025035045055065075085095105115125135145155165175185195205215225235245255265275285295305315325335345355365375385395405415425435445455465475485495505515525535545555565575585595605615625635645655665675685695705715725735745755765775785795805815825835845855865875885895905915925935945955965975985996006016026036046056066076086096106116126136146156166176186196206216226236246256266276286296306316326336346356366376386396406416426436446456466476486496506516526536546556566576586596606616626636646656666676686696706716726736746756766776786796806816826836846856866876886896906916926936946956966976986997007017027037047057067077087097107117127137147157167177187197207217227237247257267277287297307317327337347357367377387397407417427437447457467477487497507517527537547557567577587597607617627637647657667677687697707717727737747757767777787797807817827837847857867877887897907917927937947957967977987998008018028038048058068078088098108118128138148158168178188198208218228238248258268278288298308318328338348358368378388398408418428438448458468478488498508518528538548558568578588598608618628638648658668678688698708718728738748758768778788798808818828838848858868878888898908918928938948958968978988999009019029039049059069079089099109119129139149159169179189199209219229239249259269279289299309319329339349359369379389399409419429439449459469479489499509519529539549559569579589599609619629639649659669679689699709719729739749759769779789799809819829839849859869879889899909919929939949959969979989991000100110021003100410051006100710081009101010111012101310141015101610171018101910201021102210231024102510261027102810291030103110321033103410351036103710381039104010411042104310441045104610471048104910501051105210531054105510561057105810591060106110621063106410651066106710681069107010711072107310741075107610771078107910801081108210831084108510861087108810891090109110921093109410951096109710981099110011011102110311041105110611071108110911101111111211131114111511161117111811191120112111221123112411251126112711281129113011311132113311341135113611371138113911401141114211431144114511461147114811491150115111521153115411551156115711581159116011611162116311641165116611671168116911701171117211731174117511761177117811791180118111821183118411851186118711881189119011911192119311941195119611971198119912001201120212031204120512061207120812091210121112121213121412151216121712181219122012211222122312241225122612271228122912301231123212331234123512361237123812391240124112421243124412451246124712481249125012511252125312541255125612571258125912601261126212631264126512661267126812691270127112721273127412751276127712781279128012811282128312841285128612871288128912901291129212931294129512961297129812991300130113021303130413051306130713081309131013111312131313141315131613171318131913201321132213231324132513261327132813291330133113321333133413351336133713381339134013411342134313441345134613471348134913501351135213531354135513561357135813591360136113621363136413651366136713681369137013711372137313741375137613771378137913801381138213831384138513861387138813891390139113921393139413951396139713981399140014011402140314041405140614071408140914101411141214131414141514161417141814191420142114221423142414251426142714281429143014311432143314341435143614371438143914401441144214431444144514461447144814491450145114521453145414551456145714581459146014611462146314641465146614671468146914701471147214731474147514761477147814791480148114821483148414851486148714881489149014911492149314941495149614971498149915001501150215031504150515061507150815091510151115121513151415151516151715181519152015211522152315241525152615271528152915301531153215331534153515361537153815391540154115421543154415451546154715481549155015511552155315541555155615571558155915601561156215631564156515661567156815691570157115721573157415751576157715781579158015811582158315841585158615871588158915901591159215931594159515961597159815991600160116021603160416051606160716081609161016111612161316141615161616171618161916201621162216231624162516261627162816291630163116321633163416351636163716381639164016411642164316441645164616471648164916501651165216531654165516561657165816591660166116621663166416651666166716681669167016711672167316741675167616771678167916801681168216831684168516861687168816891690169116921693169416951696169716981699170017011702170317041705170617071708170917101711171217131714171517161717171817191720172117221723172417251726172717281729173017311732173317341735173617371738173917401741174217431744174517461747174817491750175117521753175417551756175717581759176017611762176317641765176617671768176917701771177217731774177517761777177817791780178117821783178417851786178717881789179017911792179317941795179617971798179918001801180218031804180518061807180818091810181118121813181418151816181718181819182018211822182318241825182618271828182918301831183218331834183518361837183818391840184118421843184418451846184718481849185018511852185318541855185618571858185918601861186218631864186518661867186818691870187118721873187418751876187718781879188018811882188318841885188618871888188918901891189218931894189518961897189818991900190119021903190419051906190719081909191019111912191319141915191619171918191919201921192219231924192519261927192819291930193119321933193419351936193719381939194019411942194319441945194619471948194919501951195219531954195519561957195819591960196119621963196419651966196719681969197019711972197319741975197619771978197919801981198219831984198519861987198819891990199119921993199419951996199719981999200020012002200320042005200620072008200920102011201220132014201520162017201820192020202120222023202420252026202720282029203020312032203320342035203620372038203920402041204220432044204520462047204820492050205120522053205420552056205720582059206020612062206320642065206620672068206920702071207220732074207520762077207820792080208120822083208420852086208720882089209020912092209320942095209620972098209921002101210221032104210521062107210821092110211121122113211421152116211721182119212021212122212321242125212621272128212921302131213221332134213521362137213821392140214121422143214421452146214721482149215021512152215321542155215621572158215921602161216221632164216521662167216821692170217121722173217421752176217721782179218021812182218321842185218621872188218921902191219221932194219521962197219821992200220122022203220422052206220722082209221022112212221322142215221622172218221922202221222222232224222522262227222822292230223122322233223422352236223722382239224022412242224322442245224622472248224922502251225222532254225522562257225822592260226122622263226422652266226722682269227022712272227322742275227622772278227922802281228222832284228522862287228822892290229122922293229422952296229722982299230023012302230323042305230623072308230923102311231223132314231523162317231823192320232123222323232423252326232723282329233023312332233323342335233623372338233923402341234223432344234523462347234823492350235123522353235423552356235723582359236023612362236323642365236623672368236923702371237223732374237523762377237823792380238123822383238423852386238723882389239023912392239323942395239623972398239924002401240224032404240524062407240824092410241124122413241424152416241724182419242024212422242324242425242624272428242924302431243224332434243524362437243824392440244124422443244424452446244724482449245024512452245324542455245624572458245924602461246224632464246524662467246824692470247124722473247424752476247724782479248024812482248324842485248624872488248924902491249224932494249524962497249824992500250125022503250425052506250725082509251025112512251325142515251625172518251925202521252225232524252525262527252825292530253125322533253425352536253725382539254025412542254325442545254625472548254925502551255225532554255525562557255825592560256125622563256425652566256725682569257025712572257325742575257625772578257925802581258225832584258525862587258825892590259125922593259425952596259725982599260026012602260326042605260626072608260926102611261226132614261526162617261826192620262126222623262426252626262726282629263026312632263326342635263626372638263926402641264226432644264526462647264826492650265126522653265426552656265726582659266026612662266326642665266626672668266926702671267226732674267526762677267826792680268126822683268426852686268726882689269026912692269326942695269626972698269927002701270227032704270527062707270827092710271127122713271427152716271727182719272027212722272327242725272627272728272927302731273227332734273527362737273827392740274127422743274427452746274727482749275027512752275327542755275627572758275927602761276227632764276527662767276827692770277127722773277427752776277727782779278027812782278327842785278627872788278927902791279227932794279527962797279827992800280128022803280428052806280728082809281028112812281328142815281628172818281928202821282228232824282528262827282828292830283128322833283428352836283728382839284028412842284328442845284628472848284928502851285228532854285528562857285828592860286128622863286428652866286728682869287028712872287328742875287628772878287928802881288228832884288528862887288828892890289128922893289428952896289728982899290029012902290329042905290629072908290929102911291229132914291529162917291829192920292129222923292429252926292729282929293029312932293329342935293629372938293929402941294229432944294529462947294829492950295129522953295429552956295729582959296029612962296329642965296629672968296929702971297229732974297529762977297829792980298129822983298429852986298729882989299029912992299329942995299629972998299930003001300230033004300530063007300830093010301130123013301430153016301730183019302030213022302330243025302630273028302930303031303230333034303530363037303830393040304130423043304430453046304730483049305030513052305330543055305630573058305930603061306230633064306530663067306830693070307130723073307430753076307730783079308030813082308330843085
  1. /* Copyright (c) 2001-2004, Roger Dingledine.
  2. * Copyright (c) 2004-2006, Roger Dingledine, Nick Mathewson.
  3. * Copyright (c) 2007-2018, The Tor Project, Inc. */
  4. /* See LICENSE for licensing information */
  5. #include "orconfig.h"
  6. #define CRYPTO_CURVE25519_PRIVATE
  7. #define CRYPTO_RAND_PRIVATE
  8. #include "or/or.h"
  9. #include "test/test.h"
  10. #include "lib/crypt_ops/aes.h"
  11. #include "common/util.h"
  12. #include "siphash.h"
  13. #include "lib/crypt_ops/crypto_curve25519.h"
  14. #include "lib/crypt_ops/crypto_dh.h"
  15. #include "lib/crypt_ops/crypto_ed25519.h"
  16. #include "lib/crypt_ops/crypto_format.h"
  17. #include "lib/crypt_ops/crypto_hkdf.h"
  18. #include "lib/crypt_ops/crypto_rand.h"
  19. #include "ed25519_vectors.inc"
  20. #ifdef HAVE_SYS_STAT_H
  21. #include <sys/stat.h>
  22. #endif
  23. #ifdef HAVE_UNISTD_H
  24. #include <unistd.h>
  25. #endif
  26. /** Run unit tests for Diffie-Hellman functionality. */
  27. static void
  28. test_crypto_dh(void *arg)
  29. {
  30. crypto_dh_t *dh1 = crypto_dh_new(DH_TYPE_CIRCUIT);
  31. crypto_dh_t *dh1_dup = NULL;
  32. crypto_dh_t *dh2 = crypto_dh_new(DH_TYPE_CIRCUIT);
  33. char p1[DH1024_KEY_LEN];
  34. char p2[DH1024_KEY_LEN];
  35. char s1[DH1024_KEY_LEN];
  36. char s2[DH1024_KEY_LEN];
  37. ssize_t s1len, s2len;
  38. (void)arg;
  39. tt_int_op(crypto_dh_get_bytes(dh1),OP_EQ, DH1024_KEY_LEN);
  40. tt_int_op(crypto_dh_get_bytes(dh2),OP_EQ, DH1024_KEY_LEN);
  41. memset(p1, 0, DH1024_KEY_LEN);
  42. memset(p2, 0, DH1024_KEY_LEN);
  43. tt_mem_op(p1,OP_EQ, p2, DH1024_KEY_LEN);
  44. tt_int_op(-1, OP_EQ, crypto_dh_get_public(dh1, p1, 6)); /* too short */
  45. tt_assert(! crypto_dh_get_public(dh1, p1, DH1024_KEY_LEN));
  46. tt_mem_op(p1,OP_NE, p2, DH1024_KEY_LEN);
  47. tt_assert(! crypto_dh_get_public(dh2, p2, DH1024_KEY_LEN));
  48. tt_mem_op(p1,OP_NE, p2, DH1024_KEY_LEN);
  49. memset(s1, 0, DH1024_KEY_LEN);
  50. memset(s2, 0xFF, DH1024_KEY_LEN);
  51. s1len = crypto_dh_compute_secret(LOG_WARN, dh1, p2, DH1024_KEY_LEN, s1, 50);
  52. s2len = crypto_dh_compute_secret(LOG_WARN, dh2, p1, DH1024_KEY_LEN, s2, 50);
  53. tt_assert(s1len > 0);
  54. tt_int_op(s1len,OP_EQ, s2len);
  55. tt_mem_op(s1,OP_EQ, s2, s1len);
  56. /* test dh_dup; make sure it works the same. */
  57. dh1_dup = crypto_dh_dup(dh1);
  58. s1len = crypto_dh_compute_secret(LOG_WARN, dh1_dup, p2, DH1024_KEY_LEN,
  59. s1, 50);
  60. tt_mem_op(s1,OP_EQ, s2, s1len);
  61. {
  62. /* Now fabricate some bad values and make sure they get caught. */
  63. /* 1 and 0 should both fail. */
  64. s1len = crypto_dh_compute_secret(LOG_WARN, dh1, "\x01", 1, s1, 50);
  65. tt_int_op(-1, OP_EQ, s1len);
  66. s1len = crypto_dh_compute_secret(LOG_WARN, dh1, "\x00", 1, s1, 50);
  67. tt_int_op(-1, OP_EQ, s1len);
  68. memset(p1, 0, DH1024_KEY_LEN); /* 0 with padding. */
  69. s1len = crypto_dh_compute_secret(LOG_WARN, dh1, p1, DH1024_KEY_LEN,
  70. s1, 50);
  71. tt_int_op(-1, OP_EQ, s1len);
  72. p1[DH1024_KEY_LEN-1] = 1; /* 1 with padding*/
  73. s1len = crypto_dh_compute_secret(LOG_WARN, dh1, p1, DH1024_KEY_LEN,
  74. s1, 50);
  75. tt_int_op(-1, OP_EQ, s1len);
  76. /* 2 is okay, though weird. */
  77. s1len = crypto_dh_compute_secret(LOG_WARN, dh1, "\x02", 1, s1, 50);
  78. tt_int_op(50, OP_EQ, s1len);
  79. const char P[] =
  80. "FFFFFFFFFFFFFFFFC90FDAA22168C234C4C6628B80DC1CD129024E08"
  81. "8A67CC74020BBEA63B139B22514A08798E3404DDEF9519B3CD3A431B"
  82. "302B0A6DF25F14374FE1356D6D51C245E485B576625E7EC6F44C42E9"
  83. "A637ED6B0BFF5CB6F406B7EDEE386BFB5A899FA5AE9F24117C4B1FE6"
  84. "49286651ECE65381FFFFFFFFFFFFFFFF";
  85. /* p-1, p, and so on are not okay. */
  86. base16_decode(p1, sizeof(p1), P, strlen(P));
  87. s1len = crypto_dh_compute_secret(LOG_WARN, dh1, p1, DH1024_KEY_LEN,
  88. s1, 50);
  89. tt_int_op(-1, OP_EQ, s1len);
  90. p1[DH1024_KEY_LEN-1] = 0xFE; /* p-1 */
  91. s1len = crypto_dh_compute_secret(LOG_WARN, dh1, p1, DH1024_KEY_LEN,
  92. s1, 50);
  93. tt_int_op(-1, OP_EQ, s1len);
  94. p1[DH1024_KEY_LEN-1] = 0xFD; /* p-2 works fine */
  95. s1len = crypto_dh_compute_secret(LOG_WARN, dh1, p1, DH1024_KEY_LEN,
  96. s1, 50);
  97. tt_int_op(50, OP_EQ, s1len);
  98. const char P_plus_one[] =
  99. "FFFFFFFFFFFFFFFFC90FDAA22168C234C4C6628B80DC1CD129024E08"
  100. "8A67CC74020BBEA63B139B22514A08798E3404DDEF9519B3CD3A431B"
  101. "302B0A6DF25F14374FE1356D6D51C245E485B576625E7EC6F44C42E9"
  102. "A637ED6B0BFF5CB6F406B7EDEE386BFB5A899FA5AE9F24117C4B1FE6"
  103. "49286651ECE653820000000000000000";
  104. base16_decode(p1, sizeof(p1), P_plus_one, strlen(P_plus_one));
  105. s1len = crypto_dh_compute_secret(LOG_WARN, dh1, p1, DH1024_KEY_LEN,
  106. s1, 50);
  107. tt_int_op(-1, OP_EQ, s1len);
  108. p1[DH1024_KEY_LEN-1] = 0x01; /* p+2 */
  109. s1len = crypto_dh_compute_secret(LOG_WARN, dh1, p1, DH1024_KEY_LEN,
  110. s1, 50);
  111. tt_int_op(-1, OP_EQ, s1len);
  112. p1[DH1024_KEY_LEN-1] = 0xff; /* p+256 */
  113. s1len = crypto_dh_compute_secret(LOG_WARN, dh1, p1, DH1024_KEY_LEN,
  114. s1, 50);
  115. tt_int_op(-1, OP_EQ, s1len);
  116. memset(p1, 0xff, DH1024_KEY_LEN), /* 2^1024-1 */
  117. s1len = crypto_dh_compute_secret(LOG_WARN, dh1, p1, DH1024_KEY_LEN,
  118. s1, 50);
  119. tt_int_op(-1, OP_EQ, s1len);
  120. }
  121. {
  122. /* provoke an error in the openssl DH_compute_key function; make sure we
  123. * survive. */
  124. tt_assert(! crypto_dh_get_public(dh1, p1, DH1024_KEY_LEN));
  125. crypto_dh_free(dh2);
  126. dh2= crypto_dh_new(DH_TYPE_CIRCUIT); /* no private key set */
  127. s1len = crypto_dh_compute_secret(LOG_WARN, dh2,
  128. p1, DH1024_KEY_LEN,
  129. s1, 50);
  130. tt_int_op(s1len, OP_EQ, -1);
  131. }
  132. done:
  133. crypto_dh_free(dh1);
  134. crypto_dh_free(dh2);
  135. crypto_dh_free(dh1_dup);
  136. }
  137. static void
  138. test_crypto_openssl_version(void *arg)
  139. {
  140. (void)arg;
  141. const char *version = crypto_openssl_get_version_str();
  142. const char *h_version = crypto_openssl_get_header_version_str();
  143. tt_assert(version);
  144. tt_assert(h_version);
  145. if (strcmpstart(version, h_version)) { /* "-fips" suffix, etc */
  146. TT_DIE(("OpenSSL library version %s did not begin with header version %s.",
  147. version, h_version));
  148. }
  149. if (strstr(version, "OpenSSL")) {
  150. TT_DIE(("assertion failed: !strstr(\"%s\", \"OpenSSL\")", version));
  151. }
  152. int a=-1,b=-1,c=-1;
  153. if (!strcmpstart(version, "LibreSSL") || !strcmpstart(version, "BoringSSL"))
  154. return;
  155. int r = tor_sscanf(version, "%d.%d.%d", &a,&b,&c);
  156. tt_int_op(r, OP_EQ, 3);
  157. tt_int_op(a, OP_GE, 0);
  158. tt_int_op(b, OP_GE, 0);
  159. tt_int_op(c, OP_GE, 0);
  160. done:
  161. ;
  162. }
  163. /** Run unit tests for our random number generation function and its wrappers.
  164. */
  165. static void
  166. test_crypto_rng(void *arg)
  167. {
  168. int i, j, allok;
  169. char data1[100], data2[100];
  170. double d;
  171. char *h=NULL;
  172. /* Try out RNG. */
  173. (void)arg;
  174. tt_assert(! crypto_seed_rng());
  175. crypto_rand(data1, 100);
  176. crypto_rand(data2, 100);
  177. tt_mem_op(data1,OP_NE, data2,100);
  178. allok = 1;
  179. for (i = 0; i < 100; ++i) {
  180. uint64_t big;
  181. char *host;
  182. j = crypto_rand_int(100);
  183. if (j < 0 || j >= 100)
  184. allok = 0;
  185. big = crypto_rand_uint64(UINT64_C(1)<<40);
  186. if (big >= (UINT64_C(1)<<40))
  187. allok = 0;
  188. big = crypto_rand_uint64(UINT64_C(5));
  189. if (big >= 5)
  190. allok = 0;
  191. d = crypto_rand_double();
  192. tt_assert(d >= 0);
  193. tt_assert(d < 1.0);
  194. host = crypto_random_hostname(3,8,"www.",".onion");
  195. if (strcmpstart(host,"www.") ||
  196. strcmpend(host,".onion") ||
  197. strlen(host) < 13 ||
  198. strlen(host) > 18)
  199. allok = 0;
  200. tor_free(host);
  201. }
  202. /* Make sure crypto_random_hostname clips its inputs properly. */
  203. h = crypto_random_hostname(20000, 9000, "www.", ".onion");
  204. tt_assert(! strcmpstart(h,"www."));
  205. tt_assert(! strcmpend(h,".onion"));
  206. tt_int_op(63+4+6, OP_EQ, strlen(h));
  207. tt_assert(allok);
  208. done:
  209. tor_free(h);
  210. }
  211. static void
  212. test_crypto_rng_range(void *arg)
  213. {
  214. int got_smallest = 0, got_largest = 0;
  215. int i;
  216. (void)arg;
  217. for (i = 0; i < 1000; ++i) {
  218. int x = crypto_rand_int_range(5,9);
  219. tt_int_op(x, OP_GE, 5);
  220. tt_int_op(x, OP_LT, 9);
  221. if (x == 5)
  222. got_smallest = 1;
  223. if (x == 8)
  224. got_largest = 1;
  225. }
  226. /* These fail with probability 1/10^603. */
  227. tt_assert(got_smallest);
  228. tt_assert(got_largest);
  229. got_smallest = got_largest = 0;
  230. const uint64_t ten_billion = 10 * ((uint64_t)1000000000000);
  231. for (i = 0; i < 1000; ++i) {
  232. uint64_t x = crypto_rand_uint64_range(ten_billion, ten_billion+10);
  233. tt_u64_op(x, OP_GE, ten_billion);
  234. tt_u64_op(x, OP_LT, ten_billion+10);
  235. if (x == ten_billion)
  236. got_smallest = 1;
  237. if (x == ten_billion+9)
  238. got_largest = 1;
  239. }
  240. tt_assert(got_smallest);
  241. tt_assert(got_largest);
  242. const time_t now = time(NULL);
  243. for (i = 0; i < 2000; ++i) {
  244. time_t x = crypto_rand_time_range(now, now+60);
  245. tt_i64_op(x, OP_GE, now);
  246. tt_i64_op(x, OP_LT, now+60);
  247. if (x == now)
  248. got_smallest = 1;
  249. if (x == now+59)
  250. got_largest = 1;
  251. }
  252. tt_assert(got_smallest);
  253. tt_assert(got_largest);
  254. done:
  255. ;
  256. }
  257. static void
  258. test_crypto_rng_strongest(void *arg)
  259. {
  260. const char *how = arg;
  261. int broken = 0;
  262. if (how == NULL) {
  263. ;
  264. } else if (!strcmp(how, "nosyscall")) {
  265. break_strongest_rng_syscall = 1;
  266. } else if (!strcmp(how, "nofallback")) {
  267. break_strongest_rng_fallback = 1;
  268. } else if (!strcmp(how, "broken")) {
  269. broken = break_strongest_rng_syscall = break_strongest_rng_fallback = 1;
  270. }
  271. #define N 128
  272. uint8_t combine_and[N];
  273. uint8_t combine_or[N];
  274. int i, j;
  275. memset(combine_and, 0xff, N);
  276. memset(combine_or, 0, N);
  277. for (i = 0; i < 100; ++i) { /* 2^-100 chances just don't happen. */
  278. uint8_t output[N];
  279. memset(output, 0, N);
  280. if (how == NULL) {
  281. /* this one can't fail. */
  282. crypto_strongest_rand(output, sizeof(output));
  283. } else {
  284. int r = crypto_strongest_rand_raw(output, sizeof(output));
  285. if (r == -1) {
  286. if (broken) {
  287. goto done; /* we're fine. */
  288. }
  289. /* This function is allowed to break, but only if it always breaks. */
  290. tt_int_op(i, OP_EQ, 0);
  291. tt_skip();
  292. } else {
  293. tt_assert(! broken);
  294. }
  295. }
  296. for (j = 0; j < N; ++j) {
  297. combine_and[j] &= output[j];
  298. combine_or[j] |= output[j];
  299. }
  300. }
  301. for (j = 0; j < N; ++j) {
  302. tt_int_op(combine_and[j], OP_EQ, 0);
  303. tt_int_op(combine_or[j], OP_EQ, 0xff);
  304. }
  305. done:
  306. ;
  307. #undef N
  308. }
  309. /** Run unit tests for our AES128 functionality */
  310. static void
  311. test_crypto_aes128(void *arg)
  312. {
  313. char *data1 = NULL, *data2 = NULL, *data3 = NULL;
  314. crypto_cipher_t *env1 = NULL, *env2 = NULL;
  315. int i, j;
  316. char *mem_op_hex_tmp=NULL;
  317. char key[CIPHER_KEY_LEN];
  318. int use_evp = !strcmp(arg,"evp");
  319. evaluate_evp_for_aes(use_evp);
  320. evaluate_ctr_for_aes();
  321. data1 = tor_malloc(1024);
  322. data2 = tor_malloc(1024);
  323. data3 = tor_malloc(1024);
  324. /* Now, test encryption and decryption with stream cipher. */
  325. data1[0]='\0';
  326. for (i = 1023; i>0; i -= 35)
  327. strncat(data1, "Now is the time for all good onions", i);
  328. memset(data2, 0, 1024);
  329. memset(data3, 0, 1024);
  330. crypto_rand(key, sizeof(key));
  331. env1 = crypto_cipher_new(key);
  332. tt_ptr_op(env1, OP_NE, NULL);
  333. env2 = crypto_cipher_new(key);
  334. tt_ptr_op(env2, OP_NE, NULL);
  335. /* Try encrypting 512 chars. */
  336. crypto_cipher_encrypt(env1, data2, data1, 512);
  337. crypto_cipher_decrypt(env2, data3, data2, 512);
  338. tt_mem_op(data1,OP_EQ, data3, 512);
  339. tt_mem_op(data1,OP_NE, data2, 512);
  340. /* Now encrypt 1 at a time, and get 1 at a time. */
  341. for (j = 512; j < 560; ++j) {
  342. crypto_cipher_encrypt(env1, data2+j, data1+j, 1);
  343. }
  344. for (j = 512; j < 560; ++j) {
  345. crypto_cipher_decrypt(env2, data3+j, data2+j, 1);
  346. }
  347. tt_mem_op(data1,OP_EQ, data3, 560);
  348. /* Now encrypt 3 at a time, and get 5 at a time. */
  349. for (j = 560; j < 1024-5; j += 3) {
  350. crypto_cipher_encrypt(env1, data2+j, data1+j, 3);
  351. }
  352. for (j = 560; j < 1024-5; j += 5) {
  353. crypto_cipher_decrypt(env2, data3+j, data2+j, 5);
  354. }
  355. tt_mem_op(data1,OP_EQ, data3, 1024-5);
  356. /* Now make sure that when we encrypt with different chunk sizes, we get
  357. the same results. */
  358. crypto_cipher_free(env2);
  359. env2 = NULL;
  360. memset(data3, 0, 1024);
  361. env2 = crypto_cipher_new(key);
  362. tt_ptr_op(env2, OP_NE, NULL);
  363. for (j = 0; j < 1024-16; j += 17) {
  364. crypto_cipher_encrypt(env2, data3+j, data1+j, 17);
  365. }
  366. for (j= 0; j < 1024-16; ++j) {
  367. if (data2[j] != data3[j]) {
  368. printf("%d: %d\t%d\n", j, (int) data2[j], (int) data3[j]);
  369. }
  370. }
  371. tt_mem_op(data2,OP_EQ, data3, 1024-16);
  372. crypto_cipher_free(env1);
  373. env1 = NULL;
  374. crypto_cipher_free(env2);
  375. env2 = NULL;
  376. /* NIST test vector for aes. */
  377. /* IV starts at 0 */
  378. env1 = crypto_cipher_new("\x80\x00\x00\x00\x00\x00\x00\x00"
  379. "\x00\x00\x00\x00\x00\x00\x00\x00");
  380. crypto_cipher_encrypt(env1, data1,
  381. "\x00\x00\x00\x00\x00\x00\x00\x00"
  382. "\x00\x00\x00\x00\x00\x00\x00\x00", 16);
  383. test_memeq_hex(data1, "0EDD33D3C621E546455BD8BA1418BEC8");
  384. /* Now test rollover. All these values are originally from a python
  385. * script. */
  386. crypto_cipher_free(env1);
  387. env1 = crypto_cipher_new_with_iv(
  388. "\x80\x00\x00\x00\x00\x00\x00\x00"
  389. "\x00\x00\x00\x00\x00\x00\x00\x00",
  390. "\x00\x00\x00\x00\x00\x00\x00\x00"
  391. "\xff\xff\xff\xff\xff\xff\xff\xff");
  392. memset(data2, 0, 1024);
  393. crypto_cipher_encrypt(env1, data1, data2, 32);
  394. test_memeq_hex(data1, "335fe6da56f843199066c14a00a40231"
  395. "cdd0b917dbc7186908a6bfb5ffd574d3");
  396. crypto_cipher_free(env1);
  397. env1 = crypto_cipher_new_with_iv(
  398. "\x80\x00\x00\x00\x00\x00\x00\x00"
  399. "\x00\x00\x00\x00\x00\x00\x00\x00",
  400. "\x00\x00\x00\x00\xff\xff\xff\xff"
  401. "\xff\xff\xff\xff\xff\xff\xff\xff");
  402. memset(data2, 0, 1024);
  403. crypto_cipher_encrypt(env1, data1, data2, 32);
  404. test_memeq_hex(data1, "e627c6423fa2d77832a02b2794094b73"
  405. "3e63c721df790d2c6469cc1953a3ffac");
  406. crypto_cipher_free(env1);
  407. env1 = crypto_cipher_new_with_iv(
  408. "\x80\x00\x00\x00\x00\x00\x00\x00"
  409. "\x00\x00\x00\x00\x00\x00\x00\x00",
  410. "\xff\xff\xff\xff\xff\xff\xff\xff"
  411. "\xff\xff\xff\xff\xff\xff\xff\xff");
  412. memset(data2, 0, 1024);
  413. crypto_cipher_encrypt(env1, data1, data2, 32);
  414. test_memeq_hex(data1, "2aed2bff0de54f9328efd070bf48f70a"
  415. "0EDD33D3C621E546455BD8BA1418BEC8");
  416. /* Now check rollover on inplace cipher. */
  417. crypto_cipher_free(env1);
  418. env1 = crypto_cipher_new_with_iv(
  419. "\x80\x00\x00\x00\x00\x00\x00\x00"
  420. "\x00\x00\x00\x00\x00\x00\x00\x00",
  421. "\xff\xff\xff\xff\xff\xff\xff\xff"
  422. "\xff\xff\xff\xff\xff\xff\xff\xff");
  423. crypto_cipher_crypt_inplace(env1, data2, 64);
  424. test_memeq_hex(data2, "2aed2bff0de54f9328efd070bf48f70a"
  425. "0EDD33D3C621E546455BD8BA1418BEC8"
  426. "93e2c5243d6839eac58503919192f7ae"
  427. "1908e67cafa08d508816659c2e693191");
  428. crypto_cipher_free(env1);
  429. env1 = crypto_cipher_new_with_iv(
  430. "\x80\x00\x00\x00\x00\x00\x00\x00"
  431. "\x00\x00\x00\x00\x00\x00\x00\x00",
  432. "\xff\xff\xff\xff\xff\xff\xff\xff"
  433. "\xff\xff\xff\xff\xff\xff\xff\xff");
  434. crypto_cipher_crypt_inplace(env1, data2, 64);
  435. tt_assert(tor_mem_is_zero(data2, 64));
  436. done:
  437. tor_free(mem_op_hex_tmp);
  438. if (env1)
  439. crypto_cipher_free(env1);
  440. if (env2)
  441. crypto_cipher_free(env2);
  442. tor_free(data1);
  443. tor_free(data2);
  444. tor_free(data3);
  445. }
  446. static void
  447. test_crypto_aes_ctr_testvec(void *arg)
  448. {
  449. const char *bitstr = arg;
  450. char *mem_op_hex_tmp=NULL;
  451. crypto_cipher_t *c=NULL;
  452. /* from NIST SP800-38a, section F.5 */
  453. const char ctr16[] = "f0f1f2f3f4f5f6f7f8f9fafbfcfdfeff";
  454. const char plaintext16[] =
  455. "6bc1bee22e409f96e93d7e117393172a"
  456. "ae2d8a571e03ac9c9eb76fac45af8e51"
  457. "30c81c46a35ce411e5fbc1191a0a52ef"
  458. "f69f2445df4f9b17ad2b417be66c3710";
  459. const char *ciphertext16;
  460. const char *key16;
  461. int bits;
  462. if (!strcmp(bitstr, "128")) {
  463. ciphertext16 = /* section F.5.1 */
  464. "874d6191b620e3261bef6864990db6ce"
  465. "9806f66b7970fdff8617187bb9fffdff"
  466. "5ae4df3edbd5d35e5b4f09020db03eab"
  467. "1e031dda2fbe03d1792170a0f3009cee";
  468. key16 = "2b7e151628aed2a6abf7158809cf4f3c";
  469. bits = 128;
  470. } else if (!strcmp(bitstr, "192")) {
  471. ciphertext16 = /* section F.5.3 */
  472. "1abc932417521ca24f2b0459fe7e6e0b"
  473. "090339ec0aa6faefd5ccc2c6f4ce8e94"
  474. "1e36b26bd1ebc670d1bd1d665620abf7"
  475. "4f78a7f6d29809585a97daec58c6b050";
  476. key16 = "8e73b0f7da0e6452c810f32b809079e562f8ead2522c6b7b";
  477. bits = 192;
  478. } else if (!strcmp(bitstr, "256")) {
  479. ciphertext16 = /* section F.5.5 */
  480. "601ec313775789a5b7a7f504bbf3d228"
  481. "f443e3ca4d62b59aca84e990cacaf5c5"
  482. "2b0930daa23de94ce87017ba2d84988d"
  483. "dfc9c58db67aada613c2dd08457941a6";
  484. key16 =
  485. "603deb1015ca71be2b73aef0857d7781"
  486. "1f352c073b6108d72d9810a30914dff4";
  487. bits = 256;
  488. } else {
  489. tt_abort_msg("AES doesn't support this number of bits.");
  490. }
  491. char key[32];
  492. char iv[16];
  493. char plaintext[16*4];
  494. memset(key, 0xf9, sizeof(key)); /* poison extra bytes */
  495. base16_decode(key, sizeof(key), key16, strlen(key16));
  496. base16_decode(iv, sizeof(iv), ctr16, strlen(ctr16));
  497. base16_decode(plaintext, sizeof(plaintext),
  498. plaintext16, strlen(plaintext16));
  499. c = crypto_cipher_new_with_iv_and_bits((uint8_t*)key, (uint8_t*)iv, bits);
  500. crypto_cipher_crypt_inplace(c, plaintext, sizeof(plaintext));
  501. test_memeq_hex(plaintext, ciphertext16);
  502. done:
  503. tor_free(mem_op_hex_tmp);
  504. crypto_cipher_free(c);
  505. }
  506. /** Run unit tests for our SHA-1 functionality */
  507. static void
  508. test_crypto_sha(void *arg)
  509. {
  510. crypto_digest_t *d1 = NULL, *d2 = NULL;
  511. int i;
  512. #define RFC_4231_MAX_KEY_SIZE 131
  513. char key[RFC_4231_MAX_KEY_SIZE];
  514. char digest[DIGEST256_LEN];
  515. char data[DIGEST512_LEN];
  516. char d_out1[DIGEST512_LEN], d_out2[DIGEST512_LEN];
  517. char *mem_op_hex_tmp=NULL;
  518. /* Test SHA-1 with a test vector from the specification. */
  519. (void)arg;
  520. i = crypto_digest(data, "abc", 3);
  521. test_memeq_hex(data, "A9993E364706816ABA3E25717850C26C9CD0D89D");
  522. tt_int_op(i, OP_EQ, 0);
  523. /* Test SHA-256 with a test vector from the specification. */
  524. i = crypto_digest256(data, "abc", 3, DIGEST_SHA256);
  525. test_memeq_hex(data, "BA7816BF8F01CFEA414140DE5DAE2223B00361A3"
  526. "96177A9CB410FF61F20015AD");
  527. tt_int_op(i, OP_EQ, 0);
  528. /* Test SHA-512 with a test vector from the specification. */
  529. i = crypto_digest512(data, "abc", 3, DIGEST_SHA512);
  530. test_memeq_hex(data, "ddaf35a193617abacc417349ae20413112e6fa4e89a97"
  531. "ea20a9eeee64b55d39a2192992a274fc1a836ba3c23a3"
  532. "feebbd454d4423643ce80e2a9ac94fa54ca49f");
  533. tt_int_op(i, OP_EQ, 0);
  534. /* Test HMAC-SHA256 with test cases from wikipedia and RFC 4231 */
  535. /* Case empty (wikipedia) */
  536. crypto_hmac_sha256(digest, "", 0, "", 0);
  537. tt_str_op(hex_str(digest, 32),OP_EQ,
  538. "B613679A0814D9EC772F95D778C35FC5FF1697C493715653C6C712144292C5AD");
  539. /* Case quick-brown (wikipedia) */
  540. crypto_hmac_sha256(digest, "key", 3,
  541. "The quick brown fox jumps over the lazy dog", 43);
  542. tt_str_op(hex_str(digest, 32),OP_EQ,
  543. "F7BC83F430538424B13298E6AA6FB143EF4D59A14946175997479DBC2D1A3CD8");
  544. /* "Test Case 1" from RFC 4231 */
  545. memset(key, 0x0b, 20);
  546. crypto_hmac_sha256(digest, key, 20, "Hi There", 8);
  547. test_memeq_hex(digest,
  548. "b0344c61d8db38535ca8afceaf0bf12b"
  549. "881dc200c9833da726e9376c2e32cff7");
  550. /* "Test Case 2" from RFC 4231 */
  551. memset(key, 0x0b, 20);
  552. crypto_hmac_sha256(digest, "Jefe", 4, "what do ya want for nothing?", 28);
  553. test_memeq_hex(digest,
  554. "5bdcc146bf60754e6a042426089575c7"
  555. "5a003f089d2739839dec58b964ec3843");
  556. /* "Test case 3" from RFC 4231 */
  557. memset(key, 0xaa, 20);
  558. memset(data, 0xdd, 50);
  559. crypto_hmac_sha256(digest, key, 20, data, 50);
  560. test_memeq_hex(digest,
  561. "773ea91e36800e46854db8ebd09181a7"
  562. "2959098b3ef8c122d9635514ced565fe");
  563. /* "Test case 4" from RFC 4231 */
  564. base16_decode(key, 25,
  565. "0102030405060708090a0b0c0d0e0f10111213141516171819", 50);
  566. memset(data, 0xcd, 50);
  567. crypto_hmac_sha256(digest, key, 25, data, 50);
  568. test_memeq_hex(digest,
  569. "82558a389a443c0ea4cc819899f2083a"
  570. "85f0faa3e578f8077a2e3ff46729665b");
  571. /* "Test case 5" from RFC 4231 */
  572. memset(key, 0x0c, 20);
  573. crypto_hmac_sha256(digest, key, 20, "Test With Truncation", 20);
  574. test_memeq_hex(digest,
  575. "a3b6167473100ee06e0c796c2955552b");
  576. /* "Test case 6" from RFC 4231 */
  577. memset(key, 0xaa, 131);
  578. crypto_hmac_sha256(digest, key, 131,
  579. "Test Using Larger Than Block-Size Key - Hash Key First",
  580. 54);
  581. test_memeq_hex(digest,
  582. "60e431591ee0b67f0d8a26aacbf5b77f"
  583. "8e0bc6213728c5140546040f0ee37f54");
  584. /* "Test case 7" from RFC 4231 */
  585. memset(key, 0xaa, 131);
  586. crypto_hmac_sha256(digest, key, 131,
  587. "This is a test using a larger than block-size key and a "
  588. "larger than block-size data. The key needs to be hashed "
  589. "before being used by the HMAC algorithm.", 152);
  590. test_memeq_hex(digest,
  591. "9b09ffa71b942fcb27635fbcd5b0e944"
  592. "bfdc63644f0713938a7f51535c3a35e2");
  593. /* Incremental digest code. */
  594. d1 = crypto_digest_new();
  595. tt_assert(d1);
  596. crypto_digest_add_bytes(d1, "abcdef", 6);
  597. d2 = crypto_digest_dup(d1);
  598. tt_assert(d2);
  599. crypto_digest_add_bytes(d2, "ghijkl", 6);
  600. crypto_digest_get_digest(d2, d_out1, DIGEST_LEN);
  601. crypto_digest(d_out2, "abcdefghijkl", 12);
  602. tt_mem_op(d_out1,OP_EQ, d_out2, DIGEST_LEN);
  603. crypto_digest_assign(d2, d1);
  604. crypto_digest_add_bytes(d2, "mno", 3);
  605. crypto_digest_get_digest(d2, d_out1, DIGEST_LEN);
  606. crypto_digest(d_out2, "abcdefmno", 9);
  607. tt_mem_op(d_out1,OP_EQ, d_out2, DIGEST_LEN);
  608. crypto_digest_get_digest(d1, d_out1, DIGEST_LEN);
  609. crypto_digest(d_out2, "abcdef", 6);
  610. tt_mem_op(d_out1,OP_EQ, d_out2, DIGEST_LEN);
  611. crypto_digest_free(d1);
  612. crypto_digest_free(d2);
  613. /* Incremental digest code with sha256 */
  614. d1 = crypto_digest256_new(DIGEST_SHA256);
  615. tt_assert(d1);
  616. crypto_digest_add_bytes(d1, "abcdef", 6);
  617. d2 = crypto_digest_dup(d1);
  618. tt_assert(d2);
  619. crypto_digest_add_bytes(d2, "ghijkl", 6);
  620. crypto_digest_get_digest(d2, d_out1, DIGEST256_LEN);
  621. crypto_digest256(d_out2, "abcdefghijkl", 12, DIGEST_SHA256);
  622. tt_mem_op(d_out1,OP_EQ, d_out2, DIGEST256_LEN);
  623. crypto_digest_assign(d2, d1);
  624. crypto_digest_add_bytes(d2, "mno", 3);
  625. crypto_digest_get_digest(d2, d_out1, DIGEST256_LEN);
  626. crypto_digest256(d_out2, "abcdefmno", 9, DIGEST_SHA256);
  627. tt_mem_op(d_out1,OP_EQ, d_out2, DIGEST256_LEN);
  628. crypto_digest_get_digest(d1, d_out1, DIGEST256_LEN);
  629. crypto_digest256(d_out2, "abcdef", 6, DIGEST_SHA256);
  630. tt_mem_op(d_out1,OP_EQ, d_out2, DIGEST256_LEN);
  631. crypto_digest_free(d1);
  632. crypto_digest_free(d2);
  633. /* Incremental digest code with sha512 */
  634. d1 = crypto_digest512_new(DIGEST_SHA512);
  635. tt_assert(d1);
  636. crypto_digest_add_bytes(d1, "abcdef", 6);
  637. d2 = crypto_digest_dup(d1);
  638. tt_assert(d2);
  639. crypto_digest_add_bytes(d2, "ghijkl", 6);
  640. crypto_digest_get_digest(d2, d_out1, DIGEST512_LEN);
  641. crypto_digest512(d_out2, "abcdefghijkl", 12, DIGEST_SHA512);
  642. tt_mem_op(d_out1,OP_EQ, d_out2, DIGEST512_LEN);
  643. crypto_digest_assign(d2, d1);
  644. crypto_digest_add_bytes(d2, "mno", 3);
  645. crypto_digest_get_digest(d2, d_out1, DIGEST512_LEN);
  646. crypto_digest512(d_out2, "abcdefmno", 9, DIGEST_SHA512);
  647. tt_mem_op(d_out1,OP_EQ, d_out2, DIGEST512_LEN);
  648. crypto_digest_get_digest(d1, d_out1, DIGEST512_LEN);
  649. crypto_digest512(d_out2, "abcdef", 6, DIGEST_SHA512);
  650. tt_mem_op(d_out1,OP_EQ, d_out2, DIGEST512_LEN);
  651. done:
  652. if (d1)
  653. crypto_digest_free(d1);
  654. if (d2)
  655. crypto_digest_free(d2);
  656. tor_free(mem_op_hex_tmp);
  657. }
  658. static void
  659. test_crypto_sha3(void *arg)
  660. {
  661. crypto_digest_t *d1 = NULL, *d2 = NULL;
  662. int i;
  663. char data[DIGEST512_LEN];
  664. char d_out1[DIGEST512_LEN], d_out2[DIGEST512_LEN];
  665. char *mem_op_hex_tmp=NULL;
  666. char *large = NULL;
  667. (void)arg;
  668. /* Test SHA3-[256,512] with a test vectors from the Keccak Code Package.
  669. *
  670. * NB: The code package's test vectors have length expressed in bits.
  671. */
  672. /* Len = 8, Msg = CC */
  673. const uint8_t keccak_kat_msg8[] = { 0xcc };
  674. i = crypto_digest256(data, (const char*)keccak_kat_msg8, 1, DIGEST_SHA3_256);
  675. test_memeq_hex(data, "677035391CD3701293D385F037BA3279"
  676. "6252BB7CE180B00B582DD9B20AAAD7F0");
  677. tt_int_op(i, OP_EQ, 0);
  678. i = crypto_digest512(data, (const char*)keccak_kat_msg8, 1, DIGEST_SHA3_512);
  679. test_memeq_hex(data, "3939FCC8B57B63612542DA31A834E5DC"
  680. "C36E2EE0F652AC72E02624FA2E5ADEEC"
  681. "C7DD6BB3580224B4D6138706FC6E8059"
  682. "7B528051230B00621CC2B22999EAA205");
  683. tt_int_op(i, OP_EQ, 0);
  684. /* Len = 24, Msg = 1F877C */
  685. const uint8_t keccak_kat_msg24[] = { 0x1f, 0x87, 0x7c };
  686. i = crypto_digest256(data, (const char*)keccak_kat_msg24, 3,
  687. DIGEST_SHA3_256);
  688. test_memeq_hex(data, "BC22345E4BD3F792A341CF18AC0789F1"
  689. "C9C966712A501B19D1B6632CCD408EC5");
  690. tt_int_op(i, OP_EQ, 0);
  691. i = crypto_digest512(data, (const char*)keccak_kat_msg24, 3,
  692. DIGEST_SHA3_512);
  693. test_memeq_hex(data, "CB20DCF54955F8091111688BECCEF48C"
  694. "1A2F0D0608C3A575163751F002DB30F4"
  695. "0F2F671834B22D208591CFAF1F5ECFE4"
  696. "3C49863A53B3225BDFD7C6591BA7658B");
  697. tt_int_op(i, OP_EQ, 0);
  698. /* Len = 1080, Msg = B771D5CEF... ...C35AC81B5 (SHA3-256 rate - 1) */
  699. const uint8_t keccak_kat_msg1080[] = {
  700. 0xB7, 0x71, 0xD5, 0xCE, 0xF5, 0xD1, 0xA4, 0x1A, 0x93, 0xD1,
  701. 0x56, 0x43, 0xD7, 0x18, 0x1D, 0x2A, 0x2E, 0xF0, 0xA8, 0xE8,
  702. 0x4D, 0x91, 0x81, 0x2F, 0x20, 0xED, 0x21, 0xF1, 0x47, 0xBE,
  703. 0xF7, 0x32, 0xBF, 0x3A, 0x60, 0xEF, 0x40, 0x67, 0xC3, 0x73,
  704. 0x4B, 0x85, 0xBC, 0x8C, 0xD4, 0x71, 0x78, 0x0F, 0x10, 0xDC,
  705. 0x9E, 0x82, 0x91, 0xB5, 0x83, 0x39, 0xA6, 0x77, 0xB9, 0x60,
  706. 0x21, 0x8F, 0x71, 0xE7, 0x93, 0xF2, 0x79, 0x7A, 0xEA, 0x34,
  707. 0x94, 0x06, 0x51, 0x28, 0x29, 0x06, 0x5D, 0x37, 0xBB, 0x55,
  708. 0xEA, 0x79, 0x6F, 0xA4, 0xF5, 0x6F, 0xD8, 0x89, 0x6B, 0x49,
  709. 0xB2, 0xCD, 0x19, 0xB4, 0x32, 0x15, 0xAD, 0x96, 0x7C, 0x71,
  710. 0x2B, 0x24, 0xE5, 0x03, 0x2D, 0x06, 0x52, 0x32, 0xE0, 0x2C,
  711. 0x12, 0x74, 0x09, 0xD2, 0xED, 0x41, 0x46, 0xB9, 0xD7, 0x5D,
  712. 0x76, 0x3D, 0x52, 0xDB, 0x98, 0xD9, 0x49, 0xD3, 0xB0, 0xFE,
  713. 0xD6, 0xA8, 0x05, 0x2F, 0xBB,
  714. };
  715. i = crypto_digest256(data, (const char*)keccak_kat_msg1080, 135,
  716. DIGEST_SHA3_256);
  717. test_memeq_hex(data, "A19EEE92BB2097B64E823D597798AA18"
  718. "BE9B7C736B8059ABFD6779AC35AC81B5");
  719. tt_int_op(i, OP_EQ, 0);
  720. i = crypto_digest512(data, (const char*)keccak_kat_msg1080, 135,
  721. DIGEST_SHA3_512);
  722. test_memeq_hex(data, "7575A1FB4FC9A8F9C0466BD5FCA496D1"
  723. "CB78696773A212A5F62D02D14E3259D1"
  724. "92A87EBA4407DD83893527331407B6DA"
  725. "DAAD920DBC46489B677493CE5F20B595");
  726. tt_int_op(i, OP_EQ, 0);
  727. /* Len = 1088, Msg = B32D95B0... ...8E380C04 (SHA3-256 rate) */
  728. const uint8_t keccak_kat_msg1088[] = {
  729. 0xB3, 0x2D, 0x95, 0xB0, 0xB9, 0xAA, 0xD2, 0xA8, 0x81, 0x6D,
  730. 0xE6, 0xD0, 0x6D, 0x1F, 0x86, 0x00, 0x85, 0x05, 0xBD, 0x8C,
  731. 0x14, 0x12, 0x4F, 0x6E, 0x9A, 0x16, 0x3B, 0x5A, 0x2A, 0xDE,
  732. 0x55, 0xF8, 0x35, 0xD0, 0xEC, 0x38, 0x80, 0xEF, 0x50, 0x70,
  733. 0x0D, 0x3B, 0x25, 0xE4, 0x2C, 0xC0, 0xAF, 0x05, 0x0C, 0xCD,
  734. 0x1B, 0xE5, 0xE5, 0x55, 0xB2, 0x30, 0x87, 0xE0, 0x4D, 0x7B,
  735. 0xF9, 0x81, 0x36, 0x22, 0x78, 0x0C, 0x73, 0x13, 0xA1, 0x95,
  736. 0x4F, 0x87, 0x40, 0xB6, 0xEE, 0x2D, 0x3F, 0x71, 0xF7, 0x68,
  737. 0xDD, 0x41, 0x7F, 0x52, 0x04, 0x82, 0xBD, 0x3A, 0x08, 0xD4,
  738. 0xF2, 0x22, 0xB4, 0xEE, 0x9D, 0xBD, 0x01, 0x54, 0x47, 0xB3,
  739. 0x35, 0x07, 0xDD, 0x50, 0xF3, 0xAB, 0x42, 0x47, 0xC5, 0xDE,
  740. 0x9A, 0x8A, 0xBD, 0x62, 0xA8, 0xDE, 0xCE, 0xA0, 0x1E, 0x3B,
  741. 0x87, 0xC8, 0xB9, 0x27, 0xF5, 0xB0, 0x8B, 0xEB, 0x37, 0x67,
  742. 0x4C, 0x6F, 0x8E, 0x38, 0x0C, 0x04,
  743. };
  744. i = crypto_digest256(data, (const char*)keccak_kat_msg1088, 136,
  745. DIGEST_SHA3_256);
  746. test_memeq_hex(data, "DF673F4105379FF6B755EEAB20CEB0DC"
  747. "77B5286364FE16C59CC8A907AFF07732");
  748. tt_int_op(i, OP_EQ, 0);
  749. i = crypto_digest512(data, (const char*)keccak_kat_msg1088, 136,
  750. DIGEST_SHA3_512);
  751. test_memeq_hex(data, "2E293765022D48996CE8EFF0BE54E87E"
  752. "FB94A14C72DE5ACD10D0EB5ECE029CAD"
  753. "FA3BA17A40B2FFA2163991B17786E51C"
  754. "ABA79E5E0FFD34CF085E2A098BE8BACB");
  755. tt_int_op(i, OP_EQ, 0);
  756. /* Len = 1096, Msg = 04410E310... ...601016A0D (SHA3-256 rate + 1) */
  757. const uint8_t keccak_kat_msg1096[] = {
  758. 0x04, 0x41, 0x0E, 0x31, 0x08, 0x2A, 0x47, 0x58, 0x4B, 0x40,
  759. 0x6F, 0x05, 0x13, 0x98, 0xA6, 0xAB, 0xE7, 0x4E, 0x4D, 0xA5,
  760. 0x9B, 0xB6, 0xF8, 0x5E, 0x6B, 0x49, 0xE8, 0xA1, 0xF7, 0xF2,
  761. 0xCA, 0x00, 0xDF, 0xBA, 0x54, 0x62, 0xC2, 0xCD, 0x2B, 0xFD,
  762. 0xE8, 0xB6, 0x4F, 0xB2, 0x1D, 0x70, 0xC0, 0x83, 0xF1, 0x13,
  763. 0x18, 0xB5, 0x6A, 0x52, 0xD0, 0x3B, 0x81, 0xCA, 0xC5, 0xEE,
  764. 0xC2, 0x9E, 0xB3, 0x1B, 0xD0, 0x07, 0x8B, 0x61, 0x56, 0x78,
  765. 0x6D, 0xA3, 0xD6, 0xD8, 0xC3, 0x30, 0x98, 0xC5, 0xC4, 0x7B,
  766. 0xB6, 0x7A, 0xC6, 0x4D, 0xB1, 0x41, 0x65, 0xAF, 0x65, 0xB4,
  767. 0x45, 0x44, 0xD8, 0x06, 0xDD, 0xE5, 0xF4, 0x87, 0xD5, 0x37,
  768. 0x3C, 0x7F, 0x97, 0x92, 0xC2, 0x99, 0xE9, 0x68, 0x6B, 0x7E,
  769. 0x58, 0x21, 0xE7, 0xC8, 0xE2, 0x45, 0x83, 0x15, 0xB9, 0x96,
  770. 0xB5, 0x67, 0x7D, 0x92, 0x6D, 0xAC, 0x57, 0xB3, 0xF2, 0x2D,
  771. 0xA8, 0x73, 0xC6, 0x01, 0x01, 0x6A, 0x0D,
  772. };
  773. i = crypto_digest256(data, (const char*)keccak_kat_msg1096, 137,
  774. DIGEST_SHA3_256);
  775. test_memeq_hex(data, "D52432CF3B6B4B949AA848E058DCD62D"
  776. "735E0177279222E7AC0AF8504762FAA0");
  777. tt_int_op(i, OP_EQ, 0);
  778. i = crypto_digest512(data, (const char*)keccak_kat_msg1096, 137,
  779. DIGEST_SHA3_512);
  780. test_memeq_hex(data, "BE8E14B6757FFE53C9B75F6DDE9A7B6C"
  781. "40474041DE83D4A60645A826D7AF1ABE"
  782. "1EEFCB7B74B62CA6A514E5F2697D585B"
  783. "FECECE12931BBE1D4ED7EBF7B0BE660E");
  784. tt_int_op(i, OP_EQ, 0);
  785. /* Len = 1144, Msg = EA40E83C... ...66DFAFEC (SHA3-512 rate *2 - 1) */
  786. const uint8_t keccak_kat_msg1144[] = {
  787. 0xEA, 0x40, 0xE8, 0x3C, 0xB1, 0x8B, 0x3A, 0x24, 0x2C, 0x1E,
  788. 0xCC, 0x6C, 0xCD, 0x0B, 0x78, 0x53, 0xA4, 0x39, 0xDA, 0xB2,
  789. 0xC5, 0x69, 0xCF, 0xC6, 0xDC, 0x38, 0xA1, 0x9F, 0x5C, 0x90,
  790. 0xAC, 0xBF, 0x76, 0xAE, 0xF9, 0xEA, 0x37, 0x42, 0xFF, 0x3B,
  791. 0x54, 0xEF, 0x7D, 0x36, 0xEB, 0x7C, 0xE4, 0xFF, 0x1C, 0x9A,
  792. 0xB3, 0xBC, 0x11, 0x9C, 0xFF, 0x6B, 0xE9, 0x3C, 0x03, 0xE2,
  793. 0x08, 0x78, 0x33, 0x35, 0xC0, 0xAB, 0x81, 0x37, 0xBE, 0x5B,
  794. 0x10, 0xCD, 0xC6, 0x6F, 0xF3, 0xF8, 0x9A, 0x1B, 0xDD, 0xC6,
  795. 0xA1, 0xEE, 0xD7, 0x4F, 0x50, 0x4C, 0xBE, 0x72, 0x90, 0x69,
  796. 0x0B, 0xB2, 0x95, 0xA8, 0x72, 0xB9, 0xE3, 0xFE, 0x2C, 0xEE,
  797. 0x9E, 0x6C, 0x67, 0xC4, 0x1D, 0xB8, 0xEF, 0xD7, 0xD8, 0x63,
  798. 0xCF, 0x10, 0xF8, 0x40, 0xFE, 0x61, 0x8E, 0x79, 0x36, 0xDA,
  799. 0x3D, 0xCA, 0x5C, 0xA6, 0xDF, 0x93, 0x3F, 0x24, 0xF6, 0x95,
  800. 0x4B, 0xA0, 0x80, 0x1A, 0x12, 0x94, 0xCD, 0x8D, 0x7E, 0x66,
  801. 0xDF, 0xAF, 0xEC,
  802. };
  803. i = crypto_digest512(data, (const char*)keccak_kat_msg1144, 143,
  804. DIGEST_SHA3_512);
  805. test_memeq_hex(data, "3A8E938C45F3F177991296B24565D9A6"
  806. "605516615D96A062C8BE53A0D6C5A648"
  807. "7BE35D2A8F3CF6620D0C2DBA2C560D68"
  808. "295F284BE7F82F3B92919033C9CE5D80");
  809. tt_int_op(i, OP_EQ, 0);
  810. i = crypto_digest256(data, (const char*)keccak_kat_msg1144, 143,
  811. DIGEST_SHA3_256);
  812. test_memeq_hex(data, "E58A947E98D6DD7E932D2FE02D9992E6"
  813. "118C0C2C606BDCDA06E7943D2C95E0E5");
  814. tt_int_op(i, OP_EQ, 0);
  815. /* Len = 1152, Msg = 157D5B7E... ...79EE00C63 (SHA3-512 rate * 2) */
  816. const uint8_t keccak_kat_msg1152[] = {
  817. 0x15, 0x7D, 0x5B, 0x7E, 0x45, 0x07, 0xF6, 0x6D, 0x9A, 0x26,
  818. 0x74, 0x76, 0xD3, 0x38, 0x31, 0xE7, 0xBB, 0x76, 0x8D, 0x4D,
  819. 0x04, 0xCC, 0x34, 0x38, 0xDA, 0x12, 0xF9, 0x01, 0x02, 0x63,
  820. 0xEA, 0x5F, 0xCA, 0xFB, 0xDE, 0x25, 0x79, 0xDB, 0x2F, 0x6B,
  821. 0x58, 0xF9, 0x11, 0xD5, 0x93, 0xD5, 0xF7, 0x9F, 0xB0, 0x5F,
  822. 0xE3, 0x59, 0x6E, 0x3F, 0xA8, 0x0F, 0xF2, 0xF7, 0x61, 0xD1,
  823. 0xB0, 0xE5, 0x70, 0x80, 0x05, 0x5C, 0x11, 0x8C, 0x53, 0xE5,
  824. 0x3C, 0xDB, 0x63, 0x05, 0x52, 0x61, 0xD7, 0xC9, 0xB2, 0xB3,
  825. 0x9B, 0xD9, 0x0A, 0xCC, 0x32, 0x52, 0x0C, 0xBB, 0xDB, 0xDA,
  826. 0x2C, 0x4F, 0xD8, 0x85, 0x6D, 0xBC, 0xEE, 0x17, 0x31, 0x32,
  827. 0xA2, 0x67, 0x91, 0x98, 0xDA, 0xF8, 0x30, 0x07, 0xA9, 0xB5,
  828. 0xC5, 0x15, 0x11, 0xAE, 0x49, 0x76, 0x6C, 0x79, 0x2A, 0x29,
  829. 0x52, 0x03, 0x88, 0x44, 0x4E, 0xBE, 0xFE, 0x28, 0x25, 0x6F,
  830. 0xB3, 0x3D, 0x42, 0x60, 0x43, 0x9C, 0xBA, 0x73, 0xA9, 0x47,
  831. 0x9E, 0xE0, 0x0C, 0x63,
  832. };
  833. i = crypto_digest512(data, (const char*)keccak_kat_msg1152, 144,
  834. DIGEST_SHA3_512);
  835. test_memeq_hex(data, "FE45289874879720CE2A844AE34BB735"
  836. "22775DCB6019DCD22B8885994672A088"
  837. "9C69E8115C641DC8B83E39F7311815A1"
  838. "64DC46E0BA2FCA344D86D4BC2EF2532C");
  839. tt_int_op(i, OP_EQ, 0);
  840. i = crypto_digest256(data, (const char*)keccak_kat_msg1152, 144,
  841. DIGEST_SHA3_256);
  842. test_memeq_hex(data, "A936FB9AF87FB67857B3EAD5C76226AD"
  843. "84DA47678F3C2FFE5A39FDB5F7E63FFB");
  844. tt_int_op(i, OP_EQ, 0);
  845. /* Len = 1160, Msg = 836B34B5... ...11044C53 (SHA3-512 rate * 2 + 1) */
  846. const uint8_t keccak_kat_msg1160[] = {
  847. 0x83, 0x6B, 0x34, 0xB5, 0x15, 0x47, 0x6F, 0x61, 0x3F, 0xE4,
  848. 0x47, 0xA4, 0xE0, 0xC3, 0xF3, 0xB8, 0xF2, 0x09, 0x10, 0xAC,
  849. 0x89, 0xA3, 0x97, 0x70, 0x55, 0xC9, 0x60, 0xD2, 0xD5, 0xD2,
  850. 0xB7, 0x2B, 0xD8, 0xAC, 0xC7, 0x15, 0xA9, 0x03, 0x53, 0x21,
  851. 0xB8, 0x67, 0x03, 0xA4, 0x11, 0xDD, 0xE0, 0x46, 0x6D, 0x58,
  852. 0xA5, 0x97, 0x69, 0x67, 0x2A, 0xA6, 0x0A, 0xD5, 0x87, 0xB8,
  853. 0x48, 0x1D, 0xE4, 0xBB, 0xA5, 0x52, 0xA1, 0x64, 0x57, 0x79,
  854. 0x78, 0x95, 0x01, 0xEC, 0x53, 0xD5, 0x40, 0xB9, 0x04, 0x82,
  855. 0x1F, 0x32, 0xB0, 0xBD, 0x18, 0x55, 0xB0, 0x4E, 0x48, 0x48,
  856. 0xF9, 0xF8, 0xCF, 0xE9, 0xEB, 0xD8, 0x91, 0x1B, 0xE9, 0x57,
  857. 0x81, 0xA7, 0x59, 0xD7, 0xAD, 0x97, 0x24, 0xA7, 0x10, 0x2D,
  858. 0xBE, 0x57, 0x67, 0x76, 0xB7, 0xC6, 0x32, 0xBC, 0x39, 0xB9,
  859. 0xB5, 0xE1, 0x90, 0x57, 0xE2, 0x26, 0x55, 0x2A, 0x59, 0x94,
  860. 0xC1, 0xDB, 0xB3, 0xB5, 0xC7, 0x87, 0x1A, 0x11, 0xF5, 0x53,
  861. 0x70, 0x11, 0x04, 0x4C, 0x53,
  862. };
  863. i = crypto_digest512(data, (const char*)keccak_kat_msg1160, 145,
  864. DIGEST_SHA3_512);
  865. test_memeq_hex(data, "AFF61C6E11B98E55AC213B1A0BC7DE04"
  866. "05221AC5EFB1229842E4614F4A029C9B"
  867. "D14A0ED7FD99AF3681429F3F309FDB53"
  868. "166AA9A3CD9F1F1223D04B4A9015E94A");
  869. tt_int_op(i, OP_EQ, 0);
  870. i = crypto_digest256(data, (const char*)keccak_kat_msg1160, 145,
  871. DIGEST_SHA3_256);
  872. test_memeq_hex(data, "3A654B88F88086C2751EDAE6D3924814"
  873. "3CF6235C6B0B7969342C45A35194B67E");
  874. tt_int_op(i, OP_EQ, 0);
  875. /* SHA3-[256,512] Empty case (wikipedia) */
  876. i = crypto_digest256(data, "", 0, DIGEST_SHA3_256);
  877. test_memeq_hex(data, "a7ffc6f8bf1ed76651c14756a061d662"
  878. "f580ff4de43b49fa82d80a4b80f8434a");
  879. tt_int_op(i, OP_EQ, 0);
  880. i = crypto_digest512(data, "", 0, DIGEST_SHA3_512);
  881. test_memeq_hex(data, "a69f73cca23a9ac5c8b567dc185a756e"
  882. "97c982164fe25859e0d1dcc1475c80a6"
  883. "15b2123af1f5f94c11e3e9402c3ac558"
  884. "f500199d95b6d3e301758586281dcd26");
  885. tt_int_op(i, OP_EQ, 0);
  886. /* Incremental digest code with SHA3-256 */
  887. d1 = crypto_digest256_new(DIGEST_SHA3_256);
  888. tt_assert(d1);
  889. crypto_digest_add_bytes(d1, "abcdef", 6);
  890. d2 = crypto_digest_dup(d1);
  891. tt_assert(d2);
  892. crypto_digest_add_bytes(d2, "ghijkl", 6);
  893. crypto_digest_get_digest(d2, d_out1, DIGEST256_LEN);
  894. crypto_digest256(d_out2, "abcdefghijkl", 12, DIGEST_SHA3_256);
  895. tt_mem_op(d_out1,OP_EQ, d_out2, DIGEST256_LEN);
  896. crypto_digest_assign(d2, d1);
  897. crypto_digest_add_bytes(d2, "mno", 3);
  898. crypto_digest_get_digest(d2, d_out1, DIGEST256_LEN);
  899. crypto_digest256(d_out2, "abcdefmno", 9, DIGEST_SHA3_256);
  900. tt_mem_op(d_out1,OP_EQ, d_out2, DIGEST256_LEN);
  901. crypto_digest_get_digest(d1, d_out1, DIGEST256_LEN);
  902. crypto_digest256(d_out2, "abcdef", 6, DIGEST_SHA3_256);
  903. tt_mem_op(d_out1,OP_EQ, d_out2, DIGEST256_LEN);
  904. crypto_digest_free(d1);
  905. crypto_digest_free(d2);
  906. /* Incremental digest code with SHA3-512 */
  907. d1 = crypto_digest512_new(DIGEST_SHA3_512);
  908. tt_assert(d1);
  909. crypto_digest_add_bytes(d1, "abcdef", 6);
  910. d2 = crypto_digest_dup(d1);
  911. tt_assert(d2);
  912. crypto_digest_add_bytes(d2, "ghijkl", 6);
  913. crypto_digest_get_digest(d2, d_out1, DIGEST512_LEN);
  914. crypto_digest512(d_out2, "abcdefghijkl", 12, DIGEST_SHA3_512);
  915. tt_mem_op(d_out1,OP_EQ, d_out2, DIGEST512_LEN);
  916. crypto_digest_assign(d2, d1);
  917. crypto_digest_add_bytes(d2, "mno", 3);
  918. crypto_digest_get_digest(d2, d_out1, DIGEST512_LEN);
  919. crypto_digest512(d_out2, "abcdefmno", 9, DIGEST_SHA3_512);
  920. tt_mem_op(d_out1,OP_EQ, d_out2, DIGEST512_LEN);
  921. crypto_digest_get_digest(d1, d_out1, DIGEST512_LEN);
  922. crypto_digest512(d_out2, "abcdef", 6, DIGEST_SHA3_512);
  923. tt_mem_op(d_out1,OP_EQ, d_out2, DIGEST512_LEN);
  924. crypto_digest_free(d1);
  925. /* Attempt to exercise the incremental hashing code by creating a randomized
  926. * 30 KiB buffer, and hashing rand[1, 5 * Rate] bytes at a time. SHA3-512
  927. * is used because it has a lowest rate of the family (the code is common,
  928. * but the slower rate exercises more of it).
  929. */
  930. const size_t bufsz = 30 * 1024;
  931. size_t j = 0;
  932. large = tor_malloc(bufsz);
  933. crypto_rand(large, bufsz);
  934. d1 = crypto_digest512_new(DIGEST_SHA3_512); /* Running digest. */
  935. while (j < bufsz) {
  936. /* Pick how much data to add to the running digest. */
  937. size_t incr = (size_t)crypto_rand_int_range(1, 72 * 5);
  938. incr = MIN(bufsz - j, incr);
  939. /* Add the data, and calculate the hash. */
  940. crypto_digest_add_bytes(d1, large + j, incr);
  941. crypto_digest_get_digest(d1, d_out1, DIGEST512_LEN);
  942. /* One-shot hash the buffer up to the data that was just added,
  943. * and ensure that the values match up.
  944. *
  945. * XXX/yawning: If this actually fails, it'll be rather difficult to
  946. * reproduce. Improvements welcome.
  947. */
  948. i = crypto_digest512(d_out2, large, j + incr, DIGEST_SHA3_512);
  949. tt_int_op(i, OP_EQ, 0);
  950. tt_mem_op(d_out1, OP_EQ, d_out2, DIGEST512_LEN);
  951. j += incr;
  952. }
  953. done:
  954. if (d1)
  955. crypto_digest_free(d1);
  956. if (d2)
  957. crypto_digest_free(d2);
  958. tor_free(large);
  959. tor_free(mem_op_hex_tmp);
  960. }
  961. /** Run unit tests for our XOF. */
  962. static void
  963. test_crypto_sha3_xof(void *arg)
  964. {
  965. uint8_t msg[255];
  966. uint8_t out[512];
  967. crypto_xof_t *xof;
  968. char *mem_op_hex_tmp=NULL;
  969. (void)arg;
  970. /* SHAKE256 test vector (Len = 2040) from the Keccak Code Package. */
  971. base16_decode((char *)msg, 255,
  972. "3A3A819C48EFDE2AD914FBF00E18AB6BC4F14513AB27D0C178A188B61431"
  973. "E7F5623CB66B23346775D386B50E982C493ADBBFC54B9A3CD383382336A1"
  974. "A0B2150A15358F336D03AE18F666C7573D55C4FD181C29E6CCFDE63EA35F"
  975. "0ADF5885CFC0A3D84A2B2E4DD24496DB789E663170CEF74798AA1BBCD457"
  976. "4EA0BBA40489D764B2F83AADC66B148B4A0CD95246C127D5871C4F114186"
  977. "90A5DDF01246A0C80A43C70088B6183639DCFDA4125BD113A8F49EE23ED3"
  978. "06FAAC576C3FB0C1E256671D817FC2534A52F5B439F72E424DE376F4C565"
  979. "CCA82307DD9EF76DA5B7C4EB7E085172E328807C02D011FFBF33785378D7"
  980. "9DC266F6A5BE6BB0E4A92ECEEBAEB1", 510);
  981. const char *squeezed_hex =
  982. "8A5199B4A7E133E264A86202720655894D48CFF344A928CF8347F48379CE"
  983. "F347DFC5BCFFAB99B27B1F89AA2735E23D30088FFA03B9EDB02B9635470A"
  984. "B9F1038985D55F9CA774572DD006470EA65145469609F9FA0831BF1FFD84"
  985. "2DC24ACADE27BD9816E3B5BF2876CB112232A0EB4475F1DFF9F5C713D9FF"
  986. "D4CCB89AE5607FE35731DF06317949EEF646E9591CF3BE53ADD6B7DD2B60"
  987. "96E2B3FB06E662EC8B2D77422DAAD9463CD155204ACDBD38E319613F39F9"
  988. "9B6DFB35CA9365160066DB19835888C2241FF9A731A4ACBB5663727AAC34"
  989. "A401247FBAA7499E7D5EE5B69D31025E63D04C35C798BCA1262D5673A9CF"
  990. "0930B5AD89BD485599DC184528DA4790F088EBD170B635D9581632D2FF90"
  991. "DB79665CED430089AF13C9F21F6D443A818064F17AEC9E9C5457001FA8DC"
  992. "6AFBADBE3138F388D89D0E6F22F66671255B210754ED63D81DCE75CE8F18"
  993. "9B534E6D6B3539AA51E837C42DF9DF59C71E6171CD4902FE1BDC73FB1775"
  994. "B5C754A1ED4EA7F3105FC543EE0418DAD256F3F6118EA77114A16C15355B"
  995. "42877A1DB2A7DF0E155AE1D8670ABCEC3450F4E2EEC9838F895423EF63D2"
  996. "61138BAAF5D9F104CB5A957AEA06C0B9B8C78B0D441796DC0350DDEABB78"
  997. "A33B6F1F9E68EDE3D1805C7B7E2CFD54E0FAD62F0D8CA67A775DC4546AF9"
  998. "096F2EDB221DB42843D65327861282DC946A0BA01A11863AB2D1DFD16E39"
  999. "73D4";
  1000. /* Test oneshot absorb/squeeze. */
  1001. xof = crypto_xof_new();
  1002. tt_assert(xof);
  1003. crypto_xof_add_bytes(xof, msg, sizeof(msg));
  1004. crypto_xof_squeeze_bytes(xof, out, sizeof(out));
  1005. test_memeq_hex(out, squeezed_hex);
  1006. crypto_xof_free(xof);
  1007. memset(out, 0, sizeof(out));
  1008. /* Test incremental absorb/squeeze. */
  1009. xof = crypto_xof_new();
  1010. tt_assert(xof);
  1011. for (size_t i = 0; i < sizeof(msg); i++)
  1012. crypto_xof_add_bytes(xof, msg + i, 1);
  1013. for (size_t i = 0; i < sizeof(out); i++)
  1014. crypto_xof_squeeze_bytes(xof, out + i, 1);
  1015. test_memeq_hex(out, squeezed_hex);
  1016. done:
  1017. if (xof)
  1018. crypto_xof_free(xof);
  1019. tor_free(mem_op_hex_tmp);
  1020. }
  1021. /* Test our MAC-SHA3 function. There are not actually any MAC-SHA3 test
  1022. * vectors out there for our H(len(k) || k || m) construction. Hence what we
  1023. * are gonna do is test our crypto_mac_sha3_256() function against manually
  1024. * doing H(len(k) || k||m). If in the future the Keccak group decides to
  1025. * standarize an MAC construction and make test vectors, we should
  1026. * incorporate them here. */
  1027. static void
  1028. test_crypto_mac_sha3(void *arg)
  1029. {
  1030. const char msg[] = "i am in a library somewhere using my computer";
  1031. const char key[] = "i'm from the past talking to the future.";
  1032. uint8_t hmac_test[DIGEST256_LEN];
  1033. char hmac_manual[DIGEST256_LEN];
  1034. (void) arg;
  1035. /* First let's use our nice HMAC-SHA3 function */
  1036. crypto_mac_sha3_256(hmac_test, sizeof(hmac_test),
  1037. (uint8_t *) key, strlen(key),
  1038. (uint8_t *) msg, strlen(msg));
  1039. /* Now let's try a manual H(len(k) || k || m) construction */
  1040. {
  1041. char *key_msg_concat = NULL, *all = NULL;
  1042. int result;
  1043. const uint64_t key_len_netorder = tor_htonll(strlen(key));
  1044. size_t all_len;
  1045. tor_asprintf(&key_msg_concat, "%s%s", key, msg);
  1046. all_len = sizeof(key_len_netorder) + strlen(key_msg_concat);
  1047. all = tor_malloc_zero(all_len);
  1048. memcpy(all, &key_len_netorder, sizeof(key_len_netorder));
  1049. memcpy(all + sizeof(key_len_netorder), key_msg_concat,
  1050. strlen(key_msg_concat));
  1051. result = crypto_digest256(hmac_manual, all, all_len, DIGEST_SHA3_256);
  1052. tor_free(key_msg_concat);
  1053. tor_free(all);
  1054. tt_int_op(result, OP_EQ, 0);
  1055. }
  1056. /* Now compare the two results */
  1057. tt_mem_op(hmac_test, OP_EQ, hmac_manual, DIGEST256_LEN);
  1058. done: ;
  1059. }
  1060. /** Run unit tests for our public key crypto functions */
  1061. static void
  1062. test_crypto_pk(void *arg)
  1063. {
  1064. crypto_pk_t *pk1 = NULL, *pk2 = NULL;
  1065. char *encoded = NULL;
  1066. char data1[1024], data2[1024], data3[1024];
  1067. size_t size;
  1068. int i, len;
  1069. /* Public-key ciphers */
  1070. (void)arg;
  1071. pk1 = pk_generate(0);
  1072. pk2 = crypto_pk_new();
  1073. tt_assert(pk1 && pk2);
  1074. tt_assert(! crypto_pk_write_public_key_to_string(pk1, &encoded, &size));
  1075. tt_assert(! crypto_pk_read_public_key_from_string(pk2, encoded, size));
  1076. tt_int_op(0,OP_EQ, crypto_pk_cmp_keys(pk1, pk2));
  1077. /* comparison between keys and NULL */
  1078. tt_int_op(crypto_pk_cmp_keys(NULL, pk1), OP_LT, 0);
  1079. tt_int_op(crypto_pk_cmp_keys(NULL, NULL), OP_EQ, 0);
  1080. tt_int_op(crypto_pk_cmp_keys(pk1, NULL), OP_GT, 0);
  1081. tt_int_op(128,OP_EQ, crypto_pk_keysize(pk1));
  1082. tt_int_op(1024,OP_EQ, crypto_pk_num_bits(pk1));
  1083. tt_int_op(128,OP_EQ, crypto_pk_keysize(pk2));
  1084. tt_int_op(1024,OP_EQ, crypto_pk_num_bits(pk2));
  1085. tt_int_op(128,OP_EQ, crypto_pk_public_encrypt(pk2, data1, sizeof(data1),
  1086. "Hello whirled.", 15,
  1087. PK_PKCS1_OAEP_PADDING));
  1088. tt_int_op(128,OP_EQ, crypto_pk_public_encrypt(pk1, data2, sizeof(data1),
  1089. "Hello whirled.", 15,
  1090. PK_PKCS1_OAEP_PADDING));
  1091. /* oaep padding should make encryption not match */
  1092. tt_mem_op(data1,OP_NE, data2, 128);
  1093. tt_int_op(15,OP_EQ,
  1094. crypto_pk_private_decrypt(pk1, data3, sizeof(data3), data1, 128,
  1095. PK_PKCS1_OAEP_PADDING,1));
  1096. tt_str_op(data3,OP_EQ, "Hello whirled.");
  1097. memset(data3, 0, 1024);
  1098. tt_int_op(15,OP_EQ,
  1099. crypto_pk_private_decrypt(pk1, data3, sizeof(data3), data2, 128,
  1100. PK_PKCS1_OAEP_PADDING,1));
  1101. tt_str_op(data3,OP_EQ, "Hello whirled.");
  1102. /* Can't decrypt with public key. */
  1103. tt_int_op(-1,OP_EQ,
  1104. crypto_pk_private_decrypt(pk2, data3, sizeof(data3), data2, 128,
  1105. PK_PKCS1_OAEP_PADDING,1));
  1106. /* Try again with bad padding */
  1107. memcpy(data2+1, "XYZZY", 5); /* This has fails ~ once-in-2^40 */
  1108. tt_int_op(-1,OP_EQ,
  1109. crypto_pk_private_decrypt(pk1, data3, sizeof(data3), data2, 128,
  1110. PK_PKCS1_OAEP_PADDING,1));
  1111. /* File operations: save and load private key */
  1112. tt_assert(! crypto_pk_write_private_key_to_filename(pk1,
  1113. get_fname("pkey1")));
  1114. /* failing case for read: can't read. */
  1115. tt_int_op(crypto_pk_read_private_key_from_filename(pk2, get_fname("xyzzy")),
  1116. OP_LT, 0);
  1117. write_str_to_file(get_fname("xyzzy"), "foobar", 6);
  1118. /* Failing case for read: no key. */
  1119. tt_int_op(crypto_pk_read_private_key_from_filename(pk2, get_fname("xyzzy")),
  1120. OP_LT, 0);
  1121. tt_assert(! crypto_pk_read_private_key_from_filename(pk2,
  1122. get_fname("pkey1")));
  1123. tt_int_op(15,OP_EQ,
  1124. crypto_pk_private_decrypt(pk2, data3, sizeof(data3), data1, 128,
  1125. PK_PKCS1_OAEP_PADDING,1));
  1126. /* Now try signing. */
  1127. strlcpy(data1, "Ossifrage", 1024);
  1128. tt_int_op(128,OP_EQ,
  1129. crypto_pk_private_sign(pk1, data2, sizeof(data2), data1, 10));
  1130. tt_int_op(10,OP_EQ,
  1131. crypto_pk_public_checksig(pk1, data3, sizeof(data3), data2, 128));
  1132. tt_str_op(data3,OP_EQ, "Ossifrage");
  1133. /* Try signing digests. */
  1134. tt_int_op(128,OP_EQ, crypto_pk_private_sign_digest(pk1, data2, sizeof(data2),
  1135. data1, 10));
  1136. tt_int_op(20,OP_EQ,
  1137. crypto_pk_public_checksig(pk1, data3, sizeof(data3), data2, 128));
  1138. tt_int_op(0,OP_EQ,
  1139. crypto_pk_public_checksig_digest(pk1, data1, 10, data2, 128));
  1140. tt_int_op(-1,OP_EQ,
  1141. crypto_pk_public_checksig_digest(pk1, data1, 11, data2, 128));
  1142. /*XXXX test failed signing*/
  1143. /* Try encoding */
  1144. crypto_pk_free(pk2);
  1145. pk2 = NULL;
  1146. i = crypto_pk_asn1_encode(pk1, data1, 1024);
  1147. tt_int_op(i, OP_GT, 0);
  1148. pk2 = crypto_pk_asn1_decode(data1, i);
  1149. tt_int_op(crypto_pk_cmp_keys(pk1, pk2), OP_EQ, 0);
  1150. /* Try with hybrid encryption wrappers. */
  1151. crypto_rand(data1, 1024);
  1152. for (i = 85; i < 140; ++i) {
  1153. memset(data2,0,1024);
  1154. memset(data3,0,1024);
  1155. len = crypto_pk_obsolete_public_hybrid_encrypt(pk1,data2,sizeof(data2),
  1156. data1,i,PK_PKCS1_OAEP_PADDING,0);
  1157. tt_int_op(len, OP_GE, 0);
  1158. len = crypto_pk_obsolete_private_hybrid_decrypt(pk1,data3,sizeof(data3),
  1159. data2,len,PK_PKCS1_OAEP_PADDING,1);
  1160. tt_int_op(len,OP_EQ, i);
  1161. tt_mem_op(data1,OP_EQ, data3,i);
  1162. }
  1163. /* Try copy_full */
  1164. crypto_pk_free(pk2);
  1165. pk2 = crypto_pk_copy_full(pk1);
  1166. tt_ptr_op(pk2, OP_NE, NULL);
  1167. tt_ptr_op(pk1, OP_NE, pk2);
  1168. tt_int_op(crypto_pk_cmp_keys(pk1, pk2), OP_EQ, 0);
  1169. done:
  1170. if (pk1)
  1171. crypto_pk_free(pk1);
  1172. if (pk2)
  1173. crypto_pk_free(pk2);
  1174. tor_free(encoded);
  1175. }
  1176. static void
  1177. test_crypto_pk_fingerprints(void *arg)
  1178. {
  1179. crypto_pk_t *pk = NULL;
  1180. char encoded[512];
  1181. char d[DIGEST_LEN], d2[DIGEST_LEN];
  1182. char fingerprint[FINGERPRINT_LEN+1];
  1183. int n;
  1184. unsigned i;
  1185. char *mem_op_hex_tmp=NULL;
  1186. (void)arg;
  1187. pk = pk_generate(1);
  1188. tt_assert(pk);
  1189. n = crypto_pk_asn1_encode(pk, encoded, sizeof(encoded));
  1190. tt_int_op(n, OP_GT, 0);
  1191. tt_int_op(n, OP_GT, 128);
  1192. tt_int_op(n, OP_LT, 256);
  1193. /* Is digest as expected? */
  1194. crypto_digest(d, encoded, n);
  1195. tt_int_op(0, OP_EQ, crypto_pk_get_digest(pk, d2));
  1196. tt_mem_op(d,OP_EQ, d2, DIGEST_LEN);
  1197. /* Is fingerprint right? */
  1198. tt_int_op(0, OP_EQ, crypto_pk_get_fingerprint(pk, fingerprint, 0));
  1199. tt_int_op(strlen(fingerprint), OP_EQ, DIGEST_LEN * 2);
  1200. test_memeq_hex(d, fingerprint);
  1201. /* Are spaces right? */
  1202. tt_int_op(0, OP_EQ, crypto_pk_get_fingerprint(pk, fingerprint, 1));
  1203. for (i = 4; i < strlen(fingerprint); i += 5) {
  1204. tt_int_op(fingerprint[i], OP_EQ, ' ');
  1205. }
  1206. tor_strstrip(fingerprint, " ");
  1207. tt_int_op(strlen(fingerprint), OP_EQ, DIGEST_LEN * 2);
  1208. test_memeq_hex(d, fingerprint);
  1209. /* Now hash again and check crypto_pk_get_hashed_fingerprint. */
  1210. crypto_digest(d2, d, sizeof(d));
  1211. tt_int_op(0, OP_EQ, crypto_pk_get_hashed_fingerprint(pk, fingerprint));
  1212. tt_int_op(strlen(fingerprint), OP_EQ, DIGEST_LEN * 2);
  1213. test_memeq_hex(d2, fingerprint);
  1214. done:
  1215. crypto_pk_free(pk);
  1216. tor_free(mem_op_hex_tmp);
  1217. }
  1218. static void
  1219. test_crypto_pk_base64(void *arg)
  1220. {
  1221. crypto_pk_t *pk1 = NULL;
  1222. crypto_pk_t *pk2 = NULL;
  1223. char *encoded = NULL;
  1224. (void)arg;
  1225. /* Test Base64 encoding a key. */
  1226. pk1 = pk_generate(0);
  1227. tt_assert(pk1);
  1228. tt_int_op(0, OP_EQ, crypto_pk_base64_encode(pk1, &encoded));
  1229. tt_assert(encoded);
  1230. /* Test decoding a valid key. */
  1231. pk2 = crypto_pk_base64_decode(encoded, strlen(encoded));
  1232. tt_assert(pk2);
  1233. tt_int_op(crypto_pk_cmp_keys(pk1, pk2), OP_EQ, 0);
  1234. crypto_pk_free(pk2);
  1235. /* Test decoding a invalid key (not Base64). */
  1236. static const char *invalid_b64 = "The key is in another castle!";
  1237. pk2 = crypto_pk_base64_decode(invalid_b64, strlen(invalid_b64));
  1238. tt_ptr_op(pk2, OP_EQ, NULL);
  1239. /* Test decoding a truncated Base64 blob. */
  1240. pk2 = crypto_pk_base64_decode(encoded, strlen(encoded)/2);
  1241. tt_ptr_op(pk2, OP_EQ, NULL);
  1242. done:
  1243. crypto_pk_free(pk1);
  1244. crypto_pk_free(pk2);
  1245. tor_free(encoded);
  1246. }
  1247. static void
  1248. test_crypto_pk_pem_encrypted(void *arg)
  1249. {
  1250. crypto_pk_t *pk = NULL;
  1251. (void)arg;
  1252. pk = crypto_pk_new();
  1253. /* we need to make sure that we won't stall if somebody gives us a key
  1254. that's encrypted with a password. */
  1255. {
  1256. const char *s =
  1257. "-----BEGIN RSA PRIVATE KEY-----\n"
  1258. "Proc-Type: 4,ENCRYPTED\n"
  1259. "DEK-Info: AES-128-CBC,EFA86BB9D2AB11E80B4E3DCD97782B16\n"
  1260. "\n"
  1261. "Z2Je4m0cFepc6coQkVbGcvNCHxTf941N2XYEVE6kn0CqWqoUH4tlwV6for5D91np\n"
  1262. "5NiEFTkWj31EhrvrYcuiJtQ/iEbABxZULFWFeJ058rb+1izBz5rScqnEacIS/3Go\n"
  1263. "YntnROBDwiKmUnue6PJVYg==\n"
  1264. "-----END RSA PRIVATE KEY-----\n";
  1265. tt_int_op(-1, OP_EQ,
  1266. crypto_pk_read_private_key_from_string(pk, s, strlen(s)));
  1267. }
  1268. /* For fun, make sure we aren't hit by OpenSSL issue
  1269. https://github.com/openssl/openssl/issues/6347 , where we get in trouble
  1270. if a cipher doesn't use an IV.
  1271. */
  1272. {
  1273. const char *s =
  1274. "-----BEGIN RSA PUBLIC KEY-----\n"
  1275. "Proc-Type:4,ENCRYPTED\n"
  1276. "DEK-Info:des-ede -\n"
  1277. "\n"
  1278. "iRqK\n"
  1279. "-----END RSA PUBLIC KEY-----\n";
  1280. tt_int_op(-1, OP_EQ,
  1281. crypto_pk_read_public_key_from_string(pk, s, strlen(s)));
  1282. }
  1283. done:
  1284. crypto_pk_free(pk);
  1285. }
  1286. #ifdef HAVE_TRUNCATE
  1287. #define do_truncate truncate
  1288. #else
  1289. static int
  1290. do_truncate(const char *fname, size_t len)
  1291. {
  1292. struct stat st;
  1293. char *bytes;
  1294. bytes = read_file_to_str(fname, RFTS_BIN, &st);
  1295. if (!bytes)
  1296. return -1;
  1297. /* This cast isn't so great, but it should be safe given the actual files
  1298. * and lengths we're using. */
  1299. if (st.st_size < (off_t)len)
  1300. len = MIN(len, (size_t)st.st_size);
  1301. int r = write_bytes_to_file(fname, bytes, len, 1);
  1302. tor_free(bytes);
  1303. return r;
  1304. }
  1305. #endif /* defined(HAVE_TRUNCATE) */
  1306. /** Sanity check for crypto pk digests */
  1307. static void
  1308. test_crypto_digests(void *arg)
  1309. {
  1310. crypto_pk_t *k = NULL;
  1311. ssize_t r;
  1312. common_digests_t pkey_digests;
  1313. char digest[DIGEST_LEN];
  1314. (void)arg;
  1315. k = crypto_pk_new();
  1316. tt_assert(k);
  1317. r = crypto_pk_read_private_key_from_string(k, AUTHORITY_SIGNKEY_3, -1);
  1318. tt_assert(!r);
  1319. r = crypto_pk_get_digest(k, digest);
  1320. tt_assert(r == 0);
  1321. tt_mem_op(hex_str(digest, DIGEST_LEN),OP_EQ,
  1322. AUTHORITY_SIGNKEY_A_DIGEST, HEX_DIGEST_LEN);
  1323. r = crypto_pk_get_common_digests(k, &pkey_digests);
  1324. tt_int_op(r, OP_EQ, 0);
  1325. tt_mem_op(hex_str(pkey_digests.d[DIGEST_SHA1], DIGEST_LEN),OP_EQ,
  1326. AUTHORITY_SIGNKEY_A_DIGEST, HEX_DIGEST_LEN);
  1327. tt_mem_op(hex_str(pkey_digests.d[DIGEST_SHA256], DIGEST256_LEN),OP_EQ,
  1328. AUTHORITY_SIGNKEY_A_DIGEST256, HEX_DIGEST256_LEN);
  1329. done:
  1330. crypto_pk_free(k);
  1331. }
  1332. static void
  1333. test_crypto_digest_names(void *arg)
  1334. {
  1335. static const struct {
  1336. int a; const char *n;
  1337. } names[] = {
  1338. { DIGEST_SHA1, "sha1" },
  1339. { DIGEST_SHA256, "sha256" },
  1340. { DIGEST_SHA512, "sha512" },
  1341. { DIGEST_SHA3_256, "sha3-256" },
  1342. { DIGEST_SHA3_512, "sha3-512" },
  1343. { -1, NULL }
  1344. };
  1345. (void)arg;
  1346. int i;
  1347. for (i = 0; names[i].n; ++i) {
  1348. tt_str_op(names[i].n, OP_EQ,crypto_digest_algorithm_get_name(names[i].a));
  1349. tt_int_op(names[i].a,
  1350. OP_EQ,crypto_digest_algorithm_parse_name(names[i].n));
  1351. }
  1352. tt_int_op(-1, OP_EQ,
  1353. crypto_digest_algorithm_parse_name("TimeCubeHash-4444"));
  1354. done:
  1355. ;
  1356. }
  1357. /** Run unit tests for misc crypto formatting functionality (base64, base32,
  1358. * fingerprints, etc) */
  1359. static void
  1360. test_crypto_formats(void *arg)
  1361. {
  1362. char *data1 = NULL, *data2 = NULL, *data3 = NULL;
  1363. int i, j, idx;
  1364. (void)arg;
  1365. data1 = tor_malloc(1024);
  1366. data2 = tor_malloc(1024);
  1367. data3 = tor_malloc(1024);
  1368. tt_assert(data1 && data2 && data3);
  1369. /* Base64 tests */
  1370. memset(data1, 6, 1024);
  1371. for (idx = 0; idx < 10; ++idx) {
  1372. i = base64_encode(data2, 1024, data1, idx, 0);
  1373. tt_int_op(i, OP_GE, 0);
  1374. tt_int_op(i, OP_EQ, strlen(data2));
  1375. j = base64_decode(data3, 1024, data2, i);
  1376. tt_int_op(j,OP_EQ, idx);
  1377. tt_mem_op(data3,OP_EQ, data1, idx);
  1378. i = base64_encode_nopad(data2, 1024, (uint8_t*)data1, idx);
  1379. tt_int_op(i, OP_GE, 0);
  1380. tt_int_op(i, OP_EQ, strlen(data2));
  1381. tt_assert(! strchr(data2, '='));
  1382. j = base64_decode(data3, 1024, data2, i);
  1383. tt_int_op(j, OP_EQ, idx);
  1384. tt_mem_op(data3,OP_EQ, data1, idx);
  1385. }
  1386. strlcpy(data1, "Test string that contains 35 chars.", 1024);
  1387. strlcat(data1, " 2nd string that contains 35 chars.", 1024);
  1388. i = base64_encode(data2, 1024, data1, 71, 0);
  1389. tt_int_op(i, OP_GE, 0);
  1390. j = base64_decode(data3, 1024, data2, i);
  1391. tt_int_op(j,OP_EQ, 71);
  1392. tt_str_op(data3,OP_EQ, data1);
  1393. tt_int_op(data2[i], OP_EQ, '\0');
  1394. crypto_rand(data1, DIGEST_LEN);
  1395. memset(data2, 100, 1024);
  1396. digest_to_base64(data2, data1);
  1397. tt_int_op(BASE64_DIGEST_LEN,OP_EQ, strlen(data2));
  1398. tt_int_op(100,OP_EQ, data2[BASE64_DIGEST_LEN+2]);
  1399. memset(data3, 99, 1024);
  1400. tt_int_op(digest_from_base64(data3, data2),OP_EQ, 0);
  1401. tt_mem_op(data1,OP_EQ, data3, DIGEST_LEN);
  1402. tt_int_op(99,OP_EQ, data3[DIGEST_LEN+1]);
  1403. tt_int_op(digest_from_base64(data3, "###"), OP_LT, 0);
  1404. /* Encoding SHA256 */
  1405. crypto_rand(data2, DIGEST256_LEN);
  1406. memset(data2, 100, 1024);
  1407. digest256_to_base64(data2, data1);
  1408. tt_int_op(BASE64_DIGEST256_LEN,OP_EQ, strlen(data2));
  1409. tt_int_op(100,OP_EQ, data2[BASE64_DIGEST256_LEN+2]);
  1410. memset(data3, 99, 1024);
  1411. tt_int_op(digest256_from_base64(data3, data2),OP_EQ, 0);
  1412. tt_mem_op(data1,OP_EQ, data3, DIGEST256_LEN);
  1413. tt_int_op(99,OP_EQ, data3[DIGEST256_LEN+1]);
  1414. /* Base32 tests */
  1415. strlcpy(data1, "5chrs", 1024);
  1416. /* bit pattern is: [35 63 68 72 73] ->
  1417. * [00110101 01100011 01101000 01110010 01110011]
  1418. * By 5s: [00110 10101 10001 10110 10000 11100 10011 10011]
  1419. */
  1420. base32_encode(data2, 9, data1, 5);
  1421. tt_str_op(data2,OP_EQ, "gvrwq4tt");
  1422. strlcpy(data1, "\xFF\xF5\x6D\x44\xAE\x0D\x5C\xC9\x62\xC4", 1024);
  1423. base32_encode(data2, 30, data1, 10);
  1424. tt_str_op(data2,OP_EQ, "772w2rfobvomsywe");
  1425. /* Base16 tests */
  1426. strlcpy(data1, "6chrs\xff", 1024);
  1427. base16_encode(data2, 13, data1, 6);
  1428. tt_str_op(data2,OP_EQ, "3663687273FF");
  1429. strlcpy(data1, "f0d678affc000100", 1024);
  1430. i = base16_decode(data2, 8, data1, 16);
  1431. tt_int_op(i,OP_EQ, 8);
  1432. tt_mem_op(data2,OP_EQ, "\xf0\xd6\x78\xaf\xfc\x00\x01\x00",8);
  1433. /* now try some failing base16 decodes */
  1434. tt_int_op(-1,OP_EQ, base16_decode(data2, 8, data1, 15)); /* odd input len */
  1435. tt_int_op(-1,OP_EQ, base16_decode(data2, 7, data1, 16)); /* dest too short */
  1436. strlcpy(data1, "f0dz!8affc000100", 1024);
  1437. tt_int_op(-1,OP_EQ, base16_decode(data2, 8, data1, 16));
  1438. tor_free(data1);
  1439. tor_free(data2);
  1440. tor_free(data3);
  1441. /* Add spaces to fingerprint */
  1442. {
  1443. data1 = tor_strdup("ABCD1234ABCD56780000ABCD1234ABCD56780000");
  1444. tt_int_op(strlen(data1),OP_EQ, 40);
  1445. data2 = tor_malloc(FINGERPRINT_LEN+1);
  1446. crypto_add_spaces_to_fp(data2, FINGERPRINT_LEN+1, data1);
  1447. tt_str_op(data2, OP_EQ,
  1448. "ABCD 1234 ABCD 5678 0000 ABCD 1234 ABCD 5678 0000");
  1449. tor_free(data1);
  1450. tor_free(data2);
  1451. }
  1452. done:
  1453. tor_free(data1);
  1454. tor_free(data2);
  1455. tor_free(data3);
  1456. }
  1457. /** Test AES-CTR encryption and decryption with IV. */
  1458. static void
  1459. test_crypto_aes_iv(void *arg)
  1460. {
  1461. char *plain, *encrypted1, *encrypted2, *decrypted1, *decrypted2;
  1462. char plain_1[1], plain_15[15], plain_16[16], plain_17[17];
  1463. char key1[16], key2[16];
  1464. ssize_t encrypted_size, decrypted_size;
  1465. int use_evp = !strcmp(arg,"evp");
  1466. evaluate_evp_for_aes(use_evp);
  1467. plain = tor_malloc(4095);
  1468. encrypted1 = tor_malloc(4095 + 1 + 16);
  1469. encrypted2 = tor_malloc(4095 + 1 + 16);
  1470. decrypted1 = tor_malloc(4095 + 1);
  1471. decrypted2 = tor_malloc(4095 + 1);
  1472. crypto_rand(plain, 4095);
  1473. crypto_rand(key1, 16);
  1474. crypto_rand(key2, 16);
  1475. crypto_rand(plain_1, 1);
  1476. crypto_rand(plain_15, 15);
  1477. crypto_rand(plain_16, 16);
  1478. crypto_rand(plain_17, 17);
  1479. key1[0] = key2[0] + 128; /* Make sure that contents are different. */
  1480. /* Encrypt and decrypt with the same key. */
  1481. encrypted_size = crypto_cipher_encrypt_with_iv(key1, encrypted1, 16 + 4095,
  1482. plain, 4095);
  1483. tt_int_op(encrypted_size,OP_EQ, 16 + 4095);
  1484. tt_assert(encrypted_size > 0); /* This is obviously true, since 4111 is
  1485. * greater than 0, but its truth is not
  1486. * obvious to all analysis tools. */
  1487. decrypted_size = crypto_cipher_decrypt_with_iv(key1, decrypted1, 4095,
  1488. encrypted1, encrypted_size);
  1489. tt_int_op(decrypted_size,OP_EQ, 4095);
  1490. tt_assert(decrypted_size > 0);
  1491. tt_mem_op(plain,OP_EQ, decrypted1, 4095);
  1492. /* Encrypt a second time (with a new random initialization vector). */
  1493. encrypted_size = crypto_cipher_encrypt_with_iv(key1, encrypted2, 16 + 4095,
  1494. plain, 4095);
  1495. tt_int_op(encrypted_size,OP_EQ, 16 + 4095);
  1496. tt_assert(encrypted_size > 0);
  1497. decrypted_size = crypto_cipher_decrypt_with_iv(key1, decrypted2, 4095,
  1498. encrypted2, encrypted_size);
  1499. tt_int_op(decrypted_size,OP_EQ, 4095);
  1500. tt_assert(decrypted_size > 0);
  1501. tt_mem_op(plain,OP_EQ, decrypted2, 4095);
  1502. tt_mem_op(encrypted1,OP_NE, encrypted2, encrypted_size);
  1503. /* Decrypt with the wrong key. */
  1504. decrypted_size = crypto_cipher_decrypt_with_iv(key2, decrypted2, 4095,
  1505. encrypted1, encrypted_size);
  1506. tt_int_op(decrypted_size,OP_EQ, 4095);
  1507. tt_mem_op(plain,OP_NE, decrypted2, decrypted_size);
  1508. /* Alter the initialization vector. */
  1509. encrypted1[0] += 42;
  1510. decrypted_size = crypto_cipher_decrypt_with_iv(key1, decrypted1, 4095,
  1511. encrypted1, encrypted_size);
  1512. tt_int_op(decrypted_size,OP_EQ, 4095);
  1513. tt_mem_op(plain,OP_NE, decrypted2, 4095);
  1514. /* Special length case: 1. */
  1515. encrypted_size = crypto_cipher_encrypt_with_iv(key1, encrypted1, 16 + 1,
  1516. plain_1, 1);
  1517. tt_int_op(encrypted_size,OP_EQ, 16 + 1);
  1518. tt_assert(encrypted_size > 0);
  1519. decrypted_size = crypto_cipher_decrypt_with_iv(key1, decrypted1, 1,
  1520. encrypted1, encrypted_size);
  1521. tt_int_op(decrypted_size,OP_EQ, 1);
  1522. tt_assert(decrypted_size > 0);
  1523. tt_mem_op(plain_1,OP_EQ, decrypted1, 1);
  1524. /* Special length case: 15. */
  1525. encrypted_size = crypto_cipher_encrypt_with_iv(key1, encrypted1, 16 + 15,
  1526. plain_15, 15);
  1527. tt_int_op(encrypted_size,OP_EQ, 16 + 15);
  1528. tt_assert(encrypted_size > 0);
  1529. decrypted_size = crypto_cipher_decrypt_with_iv(key1, decrypted1, 15,
  1530. encrypted1, encrypted_size);
  1531. tt_int_op(decrypted_size,OP_EQ, 15);
  1532. tt_assert(decrypted_size > 0);
  1533. tt_mem_op(plain_15,OP_EQ, decrypted1, 15);
  1534. /* Special length case: 16. */
  1535. encrypted_size = crypto_cipher_encrypt_with_iv(key1, encrypted1, 16 + 16,
  1536. plain_16, 16);
  1537. tt_int_op(encrypted_size,OP_EQ, 16 + 16);
  1538. tt_assert(encrypted_size > 0);
  1539. decrypted_size = crypto_cipher_decrypt_with_iv(key1, decrypted1, 16,
  1540. encrypted1, encrypted_size);
  1541. tt_int_op(decrypted_size,OP_EQ, 16);
  1542. tt_assert(decrypted_size > 0);
  1543. tt_mem_op(plain_16,OP_EQ, decrypted1, 16);
  1544. /* Special length case: 17. */
  1545. encrypted_size = crypto_cipher_encrypt_with_iv(key1, encrypted1, 16 + 17,
  1546. plain_17, 17);
  1547. tt_int_op(encrypted_size,OP_EQ, 16 + 17);
  1548. tt_assert(encrypted_size > 0);
  1549. decrypted_size = crypto_cipher_decrypt_with_iv(key1, decrypted1, 17,
  1550. encrypted1, encrypted_size);
  1551. tt_int_op(decrypted_size,OP_EQ, 17);
  1552. tt_assert(decrypted_size > 0);
  1553. tt_mem_op(plain_17,OP_EQ, decrypted1, 17);
  1554. done:
  1555. /* Free memory. */
  1556. tor_free(plain);
  1557. tor_free(encrypted1);
  1558. tor_free(encrypted2);
  1559. tor_free(decrypted1);
  1560. tor_free(decrypted2);
  1561. }
  1562. /** Test base32 decoding. */
  1563. static void
  1564. test_crypto_base32_decode(void *arg)
  1565. {
  1566. char plain[60], encoded[96 + 1], decoded[60];
  1567. int res;
  1568. (void)arg;
  1569. crypto_rand(plain, 60);
  1570. /* Encode and decode a random string. */
  1571. base32_encode(encoded, 96 + 1, plain, 60);
  1572. res = base32_decode(decoded, 60, encoded, 96);
  1573. tt_int_op(res,OP_EQ, 0);
  1574. tt_mem_op(plain,OP_EQ, decoded, 60);
  1575. /* Encode, uppercase, and decode a random string. */
  1576. base32_encode(encoded, 96 + 1, plain, 60);
  1577. tor_strupper(encoded);
  1578. res = base32_decode(decoded, 60, encoded, 96);
  1579. tt_int_op(res,OP_EQ, 0);
  1580. tt_mem_op(plain,OP_EQ, decoded, 60);
  1581. /* Change encoded string and decode. */
  1582. if (encoded[0] == 'A' || encoded[0] == 'a')
  1583. encoded[0] = 'B';
  1584. else
  1585. encoded[0] = 'A';
  1586. res = base32_decode(decoded, 60, encoded, 96);
  1587. tt_int_op(res,OP_EQ, 0);
  1588. tt_mem_op(plain,OP_NE, decoded, 60);
  1589. /* Bad encodings. */
  1590. encoded[0] = '!';
  1591. res = base32_decode(decoded, 60, encoded, 96);
  1592. tt_int_op(0, OP_GT, res);
  1593. done:
  1594. ;
  1595. }
  1596. static void
  1597. test_crypto_kdf_TAP(void *arg)
  1598. {
  1599. uint8_t key_material[100];
  1600. int r;
  1601. char *mem_op_hex_tmp = NULL;
  1602. (void)arg;
  1603. #define EXPAND(s) \
  1604. r = crypto_expand_key_material_TAP( \
  1605. (const uint8_t*)(s), strlen(s), \
  1606. key_material, 100)
  1607. /* Test vectors generated with a little python script; feel free to write
  1608. * your own. */
  1609. memset(key_material, 0, sizeof(key_material));
  1610. EXPAND("");
  1611. tt_int_op(r, OP_EQ, 0);
  1612. test_memeq_hex(key_material,
  1613. "5ba93c9db0cff93f52b521d7420e43f6eda2784fbf8b4530d8"
  1614. "d246dd74ac53a13471bba17941dff7c4ea21bb365bbeeaf5f2"
  1615. "c654883e56d11e43c44e9842926af7ca0a8cca12604f945414"
  1616. "f07b01e13da42c6cf1de3abfdea9b95f34687cbbe92b9a7383");
  1617. EXPAND("Tor");
  1618. tt_int_op(r, OP_EQ, 0);
  1619. test_memeq_hex(key_material,
  1620. "776c6214fc647aaa5f683c737ee66ec44f03d0372e1cce6922"
  1621. "7950f236ddf1e329a7ce7c227903303f525a8c6662426e8034"
  1622. "870642a6dabbd41b5d97ec9bf2312ea729992f48f8ea2d0ba8"
  1623. "3f45dfda1a80bdc8b80de01b23e3e0ffae099b3e4ccf28dc28");
  1624. EXPAND("AN ALARMING ITEM TO FIND ON A MONTHLY AUTO-DEBIT NOTICE");
  1625. tt_int_op(r, OP_EQ, 0);
  1626. test_memeq_hex(key_material,
  1627. "a340b5d126086c3ab29c2af4179196dbf95e1c72431419d331"
  1628. "4844bf8f6afb6098db952b95581fb6c33625709d6f4400b8e7"
  1629. "ace18a70579fad83c0982ef73f89395bcc39493ad53a685854"
  1630. "daf2ba9b78733b805d9a6824c907ee1dba5ac27a1e466d4d10");
  1631. done:
  1632. tor_free(mem_op_hex_tmp);
  1633. #undef EXPAND
  1634. }
  1635. static void
  1636. test_crypto_hkdf_sha256(void *arg)
  1637. {
  1638. uint8_t key_material[100];
  1639. const uint8_t salt[] = "ntor-curve25519-sha256-1:key_extract";
  1640. const size_t salt_len = strlen((char*)salt);
  1641. const uint8_t m_expand[] = "ntor-curve25519-sha256-1:key_expand";
  1642. const size_t m_expand_len = strlen((char*)m_expand);
  1643. int r;
  1644. char *mem_op_hex_tmp = NULL;
  1645. (void)arg;
  1646. #define EXPAND(s) \
  1647. r = crypto_expand_key_material_rfc5869_sha256( \
  1648. (const uint8_t*)(s), strlen(s), \
  1649. salt, salt_len, \
  1650. m_expand, m_expand_len, \
  1651. key_material, 100)
  1652. /* Test vectors generated with ntor_ref.py */
  1653. EXPAND("Tor");
  1654. tt_int_op(r, OP_EQ, 0);
  1655. test_memeq_hex(key_material,
  1656. "5521492a85139a8d9107a2d5c0d9c91610d0f95989975ebee6"
  1657. "c02a4f8d622a6cfdf9b7c7edd3832e2760ded1eac309b76f8d"
  1658. "66c4a3c4d6225429b3a016e3c3d45911152fc87bc2de9630c3"
  1659. "961be9fdb9f93197ea8e5977180801926d3321fa21513e59ac");
  1660. EXPAND("AN ALARMING ITEM TO FIND ON YOUR CREDIT-RATING STATEMENT");
  1661. tt_int_op(r, OP_EQ, 0);
  1662. test_memeq_hex(key_material,
  1663. "a2aa9b50da7e481d30463adb8f233ff06e9571a0ca6ab6df0f"
  1664. "b206fa34e5bc78d063fc291501beec53b36e5a0e434561200c"
  1665. "5f8bd13e0f88b3459600b4dc21d69363e2895321c06184879d"
  1666. "94b18f078411be70b767c7fc40679a9440a0c95ea83a23efbf");
  1667. done:
  1668. tor_free(mem_op_hex_tmp);
  1669. #undef EXPAND
  1670. }
  1671. static void
  1672. test_crypto_hkdf_sha256_testvecs(void *arg)
  1673. {
  1674. (void) arg;
  1675. /* Test vectors from RFC5869, sections A.1 through A.3 */
  1676. const struct {
  1677. const char *ikm16, *salt16, *info16;
  1678. int L;
  1679. const char *okm16;
  1680. } vecs[] = {
  1681. { /* from A.1 */
  1682. "0b0b0b0b0b0b0b0b0b0b0b0b0b0b0b0b0b0b0b0b0b0b",
  1683. "000102030405060708090a0b0c",
  1684. "f0f1f2f3f4f5f6f7f8f9",
  1685. 42,
  1686. "3cb25f25faacd57a90434f64d0362f2a2d2d0a90cf1a5a4c5db02d56ecc4c5bf"
  1687. "34007208d5b887185865"
  1688. },
  1689. { /* from A.2 */
  1690. "000102030405060708090a0b0c0d0e0f101112131415161718191a1b1c1d1e1f"
  1691. "202122232425262728292a2b2c2d2e2f303132333435363738393a3b3c3d3e3f"
  1692. "404142434445464748494a4b4c4d4e4f",
  1693. "606162636465666768696a6b6c6d6e6f707172737475767778797a7b7c7d7e7f"
  1694. "808182838485868788898a8b8c8d8e8f909192939495969798999a9b9c9d9e9f"
  1695. "a0a1a2a3a4a5a6a7a8a9aaabacadaeaf",
  1696. "b0b1b2b3b4b5b6b7b8b9babbbcbdbebfc0c1c2c3c4c5c6c7c8c9cacbcccdcecf"
  1697. "d0d1d2d3d4d5d6d7d8d9dadbdcdddedfe0e1e2e3e4e5e6e7e8e9eaebecedeeef"
  1698. "f0f1f2f3f4f5f6f7f8f9fafbfcfdfeff",
  1699. 82,
  1700. "b11e398dc80327a1c8e7f78c596a49344f012eda2d4efad8a050cc4c19afa97c"
  1701. "59045a99cac7827271cb41c65e590e09da3275600c2f09b8367793a9aca3db71"
  1702. "cc30c58179ec3e87c14c01d5c1f3434f1d87"
  1703. },
  1704. { /* from A.3 */
  1705. "0b0b0b0b0b0b0b0b0b0b0b0b0b0b0b0b0b0b0b0b0b0b",
  1706. "",
  1707. "",
  1708. 42,
  1709. "8da4e775a563c18f715f802a063c5a31b8a11f5c5ee1879ec3454e5f3c738d2d"
  1710. "9d201395faa4b61a96c8",
  1711. },
  1712. { NULL, NULL, NULL, -1, NULL }
  1713. };
  1714. int i;
  1715. char *ikm = NULL;
  1716. char *salt = NULL;
  1717. char *info = NULL;
  1718. char *okm = NULL;
  1719. char *mem_op_hex_tmp = NULL;
  1720. for (i = 0; vecs[i].ikm16; ++i) {
  1721. size_t ikm_len = strlen(vecs[i].ikm16)/2;
  1722. size_t salt_len = strlen(vecs[i].salt16)/2;
  1723. size_t info_len = strlen(vecs[i].info16)/2;
  1724. size_t okm_len = vecs[i].L;
  1725. ikm = tor_malloc(ikm_len);
  1726. salt = tor_malloc(salt_len);
  1727. info = tor_malloc(info_len);
  1728. okm = tor_malloc(okm_len);
  1729. base16_decode(ikm, ikm_len, vecs[i].ikm16, strlen(vecs[i].ikm16));
  1730. base16_decode(salt, salt_len, vecs[i].salt16, strlen(vecs[i].salt16));
  1731. base16_decode(info, info_len, vecs[i].info16, strlen(vecs[i].info16));
  1732. int r = crypto_expand_key_material_rfc5869_sha256(
  1733. (const uint8_t*)ikm, ikm_len,
  1734. (const uint8_t*)salt, salt_len,
  1735. (const uint8_t*)info, info_len,
  1736. (uint8_t*)okm, okm_len);
  1737. tt_int_op(r, OP_EQ, 0);
  1738. test_memeq_hex(okm, vecs[i].okm16);
  1739. tor_free(ikm);
  1740. tor_free(salt);
  1741. tor_free(info);
  1742. tor_free(okm);
  1743. }
  1744. done:
  1745. tor_free(ikm);
  1746. tor_free(salt);
  1747. tor_free(info);
  1748. tor_free(okm);
  1749. tor_free(mem_op_hex_tmp);
  1750. }
  1751. static void
  1752. test_crypto_curve25519_impl(void *arg)
  1753. {
  1754. /* adapted from curve25519_donna, which adapted it from test-curve25519
  1755. version 20050915, by D. J. Bernstein, Public domain. */
  1756. const int randomize_high_bit = (arg != NULL);
  1757. #ifdef SLOW_CURVE25519_TEST
  1758. const int loop_max=10000;
  1759. const char e1_expected[] = "4faf81190869fd742a33691b0e0824d5"
  1760. "7e0329f4dd2819f5f32d130f1296b500";
  1761. const char e2k_expected[] = "05aec13f92286f3a781ccae98995a3b9"
  1762. "e0544770bc7de853b38f9100489e3e79";
  1763. const char e1e2k_expected[] = "cd6e8269104eb5aaee886bd2071fba88"
  1764. "bd13861475516bc2cd2b6e005e805064";
  1765. #else /* !(defined(SLOW_CURVE25519_TEST)) */
  1766. const int loop_max=200;
  1767. const char e1_expected[] = "bc7112cde03f97ef7008cad1bdc56be3"
  1768. "c6a1037d74cceb3712e9206871dcf654";
  1769. const char e2k_expected[] = "dd8fa254fb60bdb5142fe05b1f5de44d"
  1770. "8e3ee1a63c7d14274ea5d4c67f065467";
  1771. const char e1e2k_expected[] = "7ddb98bd89025d2347776b33901b3e7e"
  1772. "c0ee98cb2257a4545c0cfb2ca3e1812b";
  1773. #endif /* defined(SLOW_CURVE25519_TEST) */
  1774. unsigned char e1k[32];
  1775. unsigned char e2k[32];
  1776. unsigned char e1e2k[32];
  1777. unsigned char e2e1k[32];
  1778. unsigned char e1[32] = {3};
  1779. unsigned char e2[32] = {5};
  1780. unsigned char k[32] = {9};
  1781. int loop, i;
  1782. char *mem_op_hex_tmp = NULL;
  1783. for (loop = 0; loop < loop_max; ++loop) {
  1784. curve25519_impl(e1k,e1,k);
  1785. curve25519_impl(e2e1k,e2,e1k);
  1786. curve25519_impl(e2k,e2,k);
  1787. if (randomize_high_bit) {
  1788. /* We require that the high bit of the public key be ignored. So if
  1789. * we're doing this variant test, we randomize the high bit of e2k, and
  1790. * make sure that the handshake still works out the same as it would
  1791. * otherwise. */
  1792. uint8_t byte;
  1793. crypto_rand((char*)&byte, 1);
  1794. e2k[31] |= (byte & 0x80);
  1795. }
  1796. curve25519_impl(e1e2k,e1,e2k);
  1797. tt_mem_op(e1e2k,OP_EQ, e2e1k, 32);
  1798. if (loop == loop_max-1) {
  1799. break;
  1800. }
  1801. for (i = 0;i < 32;++i) e1[i] ^= e2k[i];
  1802. for (i = 0;i < 32;++i) e2[i] ^= e1k[i];
  1803. for (i = 0;i < 32;++i) k[i] ^= e1e2k[i];
  1804. }
  1805. test_memeq_hex(e1, e1_expected);
  1806. test_memeq_hex(e2k, e2k_expected);
  1807. test_memeq_hex(e1e2k, e1e2k_expected);
  1808. done:
  1809. tor_free(mem_op_hex_tmp);
  1810. }
  1811. static void
  1812. test_crypto_curve25519_basepoint(void *arg)
  1813. {
  1814. uint8_t secret[32];
  1815. uint8_t public1[32];
  1816. uint8_t public2[32];
  1817. const int iters = 2048;
  1818. int i;
  1819. (void) arg;
  1820. for (i = 0; i < iters; ++i) {
  1821. crypto_rand((char*)secret, 32);
  1822. curve25519_set_impl_params(1); /* Use optimization */
  1823. curve25519_basepoint_impl(public1, secret);
  1824. curve25519_set_impl_params(0); /* Disable optimization */
  1825. curve25519_basepoint_impl(public2, secret);
  1826. tt_mem_op(public1, OP_EQ, public2, 32);
  1827. }
  1828. done:
  1829. ;
  1830. }
  1831. static void
  1832. test_crypto_curve25519_testvec(void *arg)
  1833. {
  1834. (void)arg;
  1835. char *mem_op_hex_tmp = NULL;
  1836. /* From RFC 7748, section 6.1 */
  1837. /* Alice's private key, a: */
  1838. const char a16[] =
  1839. "77076d0a7318a57d3c16c17251b26645df4c2f87ebc0992ab177fba51db92c2a";
  1840. /* Alice's public key, X25519(a, 9): */
  1841. const char a_pub16[] =
  1842. "8520f0098930a754748b7ddcb43ef75a0dbf3a0d26381af4eba4a98eaa9b4e6a";
  1843. /* Bob's private key, b: */
  1844. const char b16[] =
  1845. "5dab087e624a8a4b79e17f8b83800ee66f3bb1292618b6fd1c2f8b27ff88e0eb";
  1846. /* Bob's public key, X25519(b, 9): */
  1847. const char b_pub16[] =
  1848. "de9edb7d7b7dc1b4d35b61c2ece435373f8343c85b78674dadfc7e146f882b4f";
  1849. /* Their shared secret, K: */
  1850. const char k16[] =
  1851. "4a5d9d5ba4ce2de1728e3bf480350f25e07e21c947d19e3376f09b3c1e161742";
  1852. uint8_t a[32], b[32], a_pub[32], b_pub[32], k1[32], k2[32];
  1853. base16_decode((char*)a, sizeof(a), a16, strlen(a16));
  1854. base16_decode((char*)b, sizeof(b), b16, strlen(b16));
  1855. curve25519_basepoint_impl(a_pub, a);
  1856. curve25519_basepoint_impl(b_pub, b);
  1857. curve25519_impl(k1, a, b_pub);
  1858. curve25519_impl(k2, b, a_pub);
  1859. test_memeq_hex(a, a16);
  1860. test_memeq_hex(b, b16);
  1861. test_memeq_hex(a_pub, a_pub16);
  1862. test_memeq_hex(b_pub, b_pub16);
  1863. test_memeq_hex(k1, k16);
  1864. test_memeq_hex(k2, k16);
  1865. done:
  1866. tor_free(mem_op_hex_tmp);
  1867. }
  1868. static void
  1869. test_crypto_curve25519_wrappers(void *arg)
  1870. {
  1871. curve25519_public_key_t pubkey1, pubkey2;
  1872. curve25519_secret_key_t seckey1, seckey2;
  1873. uint8_t output1[CURVE25519_OUTPUT_LEN];
  1874. uint8_t output2[CURVE25519_OUTPUT_LEN];
  1875. (void)arg;
  1876. /* Test a simple handshake, serializing and deserializing some stuff. */
  1877. curve25519_secret_key_generate(&seckey1, 0);
  1878. curve25519_secret_key_generate(&seckey2, 1);
  1879. curve25519_public_key_generate(&pubkey1, &seckey1);
  1880. curve25519_public_key_generate(&pubkey2, &seckey2);
  1881. tt_assert(curve25519_public_key_is_ok(&pubkey1));
  1882. tt_assert(curve25519_public_key_is_ok(&pubkey2));
  1883. curve25519_handshake(output1, &seckey1, &pubkey2);
  1884. curve25519_handshake(output2, &seckey2, &pubkey1);
  1885. tt_mem_op(output1,OP_EQ, output2, sizeof(output1));
  1886. done:
  1887. ;
  1888. }
  1889. static void
  1890. test_crypto_curve25519_encode(void *arg)
  1891. {
  1892. curve25519_secret_key_t seckey;
  1893. curve25519_public_key_t key1, key2, key3;
  1894. char buf[64];
  1895. (void)arg;
  1896. curve25519_secret_key_generate(&seckey, 0);
  1897. curve25519_public_key_generate(&key1, &seckey);
  1898. tt_int_op(0, OP_EQ, curve25519_public_to_base64(buf, &key1));
  1899. tt_int_op(CURVE25519_BASE64_PADDED_LEN, OP_EQ, strlen(buf));
  1900. tt_int_op(0, OP_EQ, curve25519_public_from_base64(&key2, buf));
  1901. tt_mem_op(key1.public_key,OP_EQ, key2.public_key, CURVE25519_PUBKEY_LEN);
  1902. buf[CURVE25519_BASE64_PADDED_LEN - 1] = '\0';
  1903. tt_int_op(CURVE25519_BASE64_PADDED_LEN-1, OP_EQ, strlen(buf));
  1904. tt_int_op(0, OP_EQ, curve25519_public_from_base64(&key3, buf));
  1905. tt_mem_op(key1.public_key,OP_EQ, key3.public_key, CURVE25519_PUBKEY_LEN);
  1906. /* Now try bogus parses. */
  1907. strlcpy(buf, "$$$$$$$$$$$$$$$$$$$$$$$$$$$$$$$$$$$$$$$$$$=", sizeof(buf));
  1908. tt_int_op(-1, OP_EQ, curve25519_public_from_base64(&key3, buf));
  1909. strlcpy(buf, "$$$$$$$$$$$$$$$$$$$$$$$$$$$$$$$$$$$$$$$$$$", sizeof(buf));
  1910. tt_int_op(-1, OP_EQ, curve25519_public_from_base64(&key3, buf));
  1911. strlcpy(buf, "xxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxxx", sizeof(buf));
  1912. tt_int_op(-1, OP_EQ, curve25519_public_from_base64(&key3, buf));
  1913. done:
  1914. ;
  1915. }
  1916. static void
  1917. test_crypto_curve25519_persist(void *arg)
  1918. {
  1919. curve25519_keypair_t keypair, keypair2;
  1920. char *fname = tor_strdup(get_fname("curve25519_keypair"));
  1921. char *tag = NULL;
  1922. char *content = NULL;
  1923. const char *cp;
  1924. struct stat st;
  1925. size_t taglen;
  1926. (void)arg;
  1927. tt_int_op(0,OP_EQ,curve25519_keypair_generate(&keypair, 0));
  1928. tt_int_op(0,OP_EQ,
  1929. curve25519_keypair_write_to_file(&keypair, fname, "testing"));
  1930. tt_int_op(0,OP_EQ,curve25519_keypair_read_from_file(&keypair2, &tag, fname));
  1931. tt_str_op(tag,OP_EQ,"testing");
  1932. tor_free(tag);
  1933. tt_mem_op(keypair.pubkey.public_key,OP_EQ,
  1934. keypair2.pubkey.public_key,
  1935. CURVE25519_PUBKEY_LEN);
  1936. tt_mem_op(keypair.seckey.secret_key,OP_EQ,
  1937. keypair2.seckey.secret_key,
  1938. CURVE25519_SECKEY_LEN);
  1939. content = read_file_to_str(fname, RFTS_BIN, &st);
  1940. tt_assert(content);
  1941. taglen = strlen("== c25519v1: testing ==");
  1942. tt_u64_op((uint64_t)st.st_size, OP_EQ,
  1943. 32+CURVE25519_PUBKEY_LEN+CURVE25519_SECKEY_LEN);
  1944. tt_assert(fast_memeq(content, "== c25519v1: testing ==", taglen));
  1945. tt_assert(tor_mem_is_zero(content+taglen, 32-taglen));
  1946. cp = content + 32;
  1947. tt_mem_op(keypair.seckey.secret_key,OP_EQ,
  1948. cp,
  1949. CURVE25519_SECKEY_LEN);
  1950. cp += CURVE25519_SECKEY_LEN;
  1951. tt_mem_op(keypair.pubkey.public_key,OP_EQ,
  1952. cp,
  1953. CURVE25519_SECKEY_LEN);
  1954. tor_free(fname);
  1955. fname = tor_strdup(get_fname("bogus_keypair"));
  1956. tt_int_op(-1, OP_EQ,
  1957. curve25519_keypair_read_from_file(&keypair2, &tag, fname));
  1958. tor_free(tag);
  1959. content[69] ^= 0xff;
  1960. tt_int_op(0, OP_EQ,
  1961. write_bytes_to_file(fname, content, (size_t)st.st_size, 1));
  1962. tt_int_op(-1, OP_EQ,
  1963. curve25519_keypair_read_from_file(&keypair2, &tag, fname));
  1964. done:
  1965. tor_free(fname);
  1966. tor_free(content);
  1967. tor_free(tag);
  1968. }
  1969. static void
  1970. test_crypto_ed25519_simple(void *arg)
  1971. {
  1972. ed25519_keypair_t kp1, kp2;
  1973. ed25519_public_key_t pub1, pub2;
  1974. ed25519_secret_key_t sec1, sec2;
  1975. ed25519_signature_t sig1, sig2;
  1976. const uint8_t msg[] =
  1977. "GNU will be able to run Unix programs, "
  1978. "but will not be identical to Unix.";
  1979. const uint8_t msg2[] =
  1980. "Microsoft Windows extends the features of the DOS operating system, "
  1981. "yet is compatible with most existing applications that run under DOS.";
  1982. size_t msg_len = strlen((const char*)msg);
  1983. size_t msg2_len = strlen((const char*)msg2);
  1984. (void)arg;
  1985. tt_int_op(0, OP_EQ, ed25519_secret_key_generate(&sec1, 0));
  1986. tt_int_op(0, OP_EQ, ed25519_secret_key_generate(&sec2, 1));
  1987. tt_int_op(0, OP_EQ, ed25519_public_key_generate(&pub1, &sec1));
  1988. tt_int_op(0, OP_EQ, ed25519_public_key_generate(&pub2, &sec1));
  1989. tt_int_op(ed25519_validate_pubkey(&pub1), OP_EQ, 0);
  1990. tt_int_op(ed25519_validate_pubkey(&pub2), OP_EQ, 0);
  1991. tt_mem_op(pub1.pubkey, OP_EQ, pub2.pubkey, sizeof(pub1.pubkey));
  1992. tt_assert(ed25519_pubkey_eq(&pub1, &pub2));
  1993. tt_assert(ed25519_pubkey_eq(&pub1, &pub1));
  1994. memcpy(&kp1.pubkey, &pub1, sizeof(pub1));
  1995. memcpy(&kp1.seckey, &sec1, sizeof(sec1));
  1996. tt_int_op(0, OP_EQ, ed25519_sign(&sig1, msg, msg_len, &kp1));
  1997. tt_int_op(0, OP_EQ, ed25519_sign(&sig2, msg, msg_len, &kp1));
  1998. /* Ed25519 signatures are deterministic */
  1999. tt_mem_op(sig1.sig, OP_EQ, sig2.sig, sizeof(sig1.sig));
  2000. /* Basic signature is valid. */
  2001. tt_int_op(0, OP_EQ, ed25519_checksig(&sig1, msg, msg_len, &pub1));
  2002. /* Altered signature doesn't work. */
  2003. sig1.sig[0] ^= 3;
  2004. tt_int_op(-1, OP_EQ, ed25519_checksig(&sig1, msg, msg_len, &pub1));
  2005. /* Wrong public key doesn't work. */
  2006. tt_int_op(0, OP_EQ, ed25519_public_key_generate(&pub2, &sec2));
  2007. tt_int_op(-1, OP_EQ, ed25519_checksig(&sig2, msg, msg_len, &pub2));
  2008. tt_assert(! ed25519_pubkey_eq(&pub1, &pub2));
  2009. /* Wrong message doesn't work. */
  2010. tt_int_op(0, OP_EQ, ed25519_checksig(&sig2, msg, msg_len, &pub1));
  2011. tt_int_op(-1, OP_EQ, ed25519_checksig(&sig2, msg, msg_len-1, &pub1));
  2012. tt_int_op(-1, OP_EQ, ed25519_checksig(&sig2, msg2, msg2_len, &pub1));
  2013. /* Batch signature checking works with some bad. */
  2014. tt_int_op(0, OP_EQ, ed25519_keypair_generate(&kp2, 0));
  2015. tt_int_op(0, OP_EQ, ed25519_sign(&sig1, msg, msg_len, &kp2));
  2016. {
  2017. ed25519_checkable_t ch[] = {
  2018. { &pub1, sig2, msg, msg_len }, /*ok*/
  2019. { &pub1, sig2, msg, msg_len-1 }, /*bad*/
  2020. { &kp2.pubkey, sig2, msg2, msg2_len }, /*bad*/
  2021. { &kp2.pubkey, sig1, msg, msg_len }, /*ok*/
  2022. };
  2023. int okay[4];
  2024. tt_int_op(-2, OP_EQ, ed25519_checksig_batch(okay, ch, 4));
  2025. tt_int_op(okay[0], OP_EQ, 1);
  2026. tt_int_op(okay[1], OP_EQ, 0);
  2027. tt_int_op(okay[2], OP_EQ, 0);
  2028. tt_int_op(okay[3], OP_EQ, 1);
  2029. tt_int_op(-2, OP_EQ, ed25519_checksig_batch(NULL, ch, 4));
  2030. }
  2031. /* Batch signature checking works with all good. */
  2032. {
  2033. ed25519_checkable_t ch[] = {
  2034. { &pub1, sig2, msg, msg_len }, /*ok*/
  2035. { &kp2.pubkey, sig1, msg, msg_len }, /*ok*/
  2036. };
  2037. int okay[2];
  2038. tt_int_op(0, OP_EQ, ed25519_checksig_batch(okay, ch, 2));
  2039. tt_int_op(okay[0], OP_EQ, 1);
  2040. tt_int_op(okay[1], OP_EQ, 1);
  2041. tt_int_op(0, OP_EQ, ed25519_checksig_batch(NULL, ch, 2));
  2042. }
  2043. /* Test the string-prefixed sign/checksig functions */
  2044. {
  2045. ed25519_signature_t manual_sig;
  2046. char *prefixed_msg;
  2047. /* Generate a signature with a prefixed msg. */
  2048. tt_int_op(0, OP_EQ, ed25519_sign_prefixed(&sig1, msg, msg_len,
  2049. "always in the mood",
  2050. &kp1));
  2051. /* First, check that ed25519_sign_prefixed() returns the exact same sig as
  2052. if we had manually prefixed the msg ourselves. */
  2053. tor_asprintf(&prefixed_msg, "%s%s", "always in the mood", msg);
  2054. tt_int_op(0, OP_EQ, ed25519_sign(&manual_sig, (uint8_t *)prefixed_msg,
  2055. strlen(prefixed_msg), &kp1));
  2056. tor_free(prefixed_msg);
  2057. tt_assert(fast_memeq(sig1.sig, manual_sig.sig, sizeof(sig1.sig)));
  2058. /* Test that prefixed checksig verifies it properly. */
  2059. tt_int_op(0, OP_EQ, ed25519_checksig_prefixed(&sig1, msg, msg_len,
  2060. "always in the mood",
  2061. &pub1));
  2062. /* Test that checksig with wrong prefix fails. */
  2063. tt_int_op(-1, OP_EQ, ed25519_checksig_prefixed(&sig1, msg, msg_len,
  2064. "always in the moo",
  2065. &pub1));
  2066. tt_int_op(-1, OP_EQ, ed25519_checksig_prefixed(&sig1, msg, msg_len,
  2067. "always in the moon",
  2068. &pub1));
  2069. tt_int_op(-1, OP_EQ, ed25519_checksig_prefixed(&sig1, msg, msg_len,
  2070. "always in the mood!",
  2071. &pub1));
  2072. }
  2073. done:
  2074. ;
  2075. }
  2076. static void
  2077. test_crypto_ed25519_test_vectors(void *arg)
  2078. {
  2079. char *mem_op_hex_tmp=NULL;
  2080. int i;
  2081. struct {
  2082. const char *sk;
  2083. const char *pk;
  2084. const char *sig;
  2085. const char *msg;
  2086. } items[] = {
  2087. /* These test vectors were generated with the "ref" implementation of
  2088. * ed25519 from SUPERCOP-20130419 */
  2089. { "4c6574277320686f706520746865726520617265206e6f206275677320696e20",
  2090. "f3e0e493b30f56e501aeb868fc912fe0c8b76621efca47a78f6d75875193dd87",
  2091. "b5d7fd6fd3adf643647ce1fe87a2931dedd1a4e38e6c662bedd35cdd80bfac51"
  2092. "1b2c7d1ee6bd929ac213014e1a8dc5373854c7b25dbe15ec96bf6c94196fae06",
  2093. "506c6561736520657863757365206d7920667269656e642e2048652069736e2774"
  2094. "204e554c2d7465726d696e617465642e"
  2095. },
  2096. { "74686520696d706c656d656e746174696f6e20776869636820617265206e6f74",
  2097. "407f0025a1e1351a4cb68e92f5c0ebaf66e7aaf93a4006a4d1a66e3ede1cfeac",
  2098. "02884fde1c3c5944d0ecf2d133726fc820c303aae695adceabf3a1e01e95bf28"
  2099. "da88c0966f5265e9c6f8edc77b3b96b5c91baec3ca993ccd21a3f64203600601",
  2100. "506c6561736520657863757365206d7920667269656e642e2048652069736e2774"
  2101. "204e554c2d7465726d696e617465642e"
  2102. },
  2103. { "6578706f73656420627920456e676c697368207465787420617320696e707574",
  2104. "61681cb5fbd69f9bc5a462a21a7ab319011237b940bc781cdc47fcbe327e7706",
  2105. "6a127d0414de7510125d4bc214994ffb9b8857a46330832d05d1355e882344ad"
  2106. "f4137e3ca1f13eb9cc75c887ef2309b98c57528b4acd9f6376c6898889603209",
  2107. "506c6561736520657863757365206d7920667269656e642e2048652069736e2774"
  2108. "204e554c2d7465726d696e617465642e"
  2109. },
  2110. /* These come from "sign.input" in ed25519's page */
  2111. { "5b5a619f8ce1c66d7ce26e5a2ae7b0c04febcd346d286c929e19d0d5973bfef9",
  2112. "6fe83693d011d111131c4f3fbaaa40a9d3d76b30012ff73bb0e39ec27ab18257",
  2113. "0f9ad9793033a2fa06614b277d37381e6d94f65ac2a5a94558d09ed6ce922258"
  2114. "c1a567952e863ac94297aec3c0d0c8ddf71084e504860bb6ba27449b55adc40e",
  2115. "5a8d9d0a22357e6655f9c785"
  2116. },
  2117. { "940c89fe40a81dafbdb2416d14ae469119869744410c3303bfaa0241dac57800",
  2118. "a2eb8c0501e30bae0cf842d2bde8dec7386f6b7fc3981b8c57c9792bb94cf2dd",
  2119. "d8bb64aad8c9955a115a793addd24f7f2b077648714f49c4694ec995b330d09d"
  2120. "640df310f447fd7b6cb5c14f9fe9f490bcf8cfadbfd2169c8ac20d3b8af49a0c",
  2121. "b87d3813e03f58cf19fd0b6395"
  2122. },
  2123. { "9acad959d216212d789a119252ebfe0c96512a23c73bd9f3b202292d6916a738",
  2124. "cf3af898467a5b7a52d33d53bc037e2642a8da996903fc252217e9c033e2f291",
  2125. "6ee3fe81e23c60eb2312b2006b3b25e6838e02106623f844c44edb8dafd66ab0"
  2126. "671087fd195df5b8f58a1d6e52af42908053d55c7321010092748795ef94cf06",
  2127. "55c7fa434f5ed8cdec2b7aeac173",
  2128. },
  2129. { "d5aeee41eeb0e9d1bf8337f939587ebe296161e6bf5209f591ec939e1440c300",
  2130. "fd2a565723163e29f53c9de3d5e8fbe36a7ab66e1439ec4eae9c0a604af291a5",
  2131. "f68d04847e5b249737899c014d31c805c5007a62c0a10d50bb1538c5f3550395"
  2132. "1fbc1e08682f2cc0c92efe8f4985dec61dcbd54d4b94a22547d24451271c8b00",
  2133. "0a688e79be24f866286d4646b5d81c"
  2134. },
  2135. /* These come from draft-irtf-cfrg-eddsa-05 section 7.1 */
  2136. {
  2137. "9d61b19deffd5a60ba844af492ec2cc44449c5697b326919703bac031cae7f60",
  2138. "d75a980182b10ab7d54bfed3c964073a0ee172f3daa62325af021a68f707511a",
  2139. "e5564300c360ac729086e2cc806e828a84877f1eb8e5d974d873e06522490155"
  2140. "5fb8821590a33bacc61e39701cf9b46bd25bf5f0595bbe24655141438e7a100b",
  2141. ""
  2142. },
  2143. {
  2144. "4ccd089b28ff96da9db6c346ec114e0f5b8a319f35aba624da8cf6ed4fb8a6fb",
  2145. "3d4017c3e843895a92b70aa74d1b7ebc9c982ccf2ec4968cc0cd55f12af4660c",
  2146. "92a009a9f0d4cab8720e820b5f642540a2b27b5416503f8fb3762223ebdb69da"
  2147. "085ac1e43e15996e458f3613d0f11d8c387b2eaeb4302aeeb00d291612bb0c00",
  2148. "72"
  2149. },
  2150. {
  2151. "f5e5767cf153319517630f226876b86c8160cc583bc013744c6bf255f5cc0ee5",
  2152. "278117fc144c72340f67d0f2316e8386ceffbf2b2428c9c51fef7c597f1d426e",
  2153. "0aab4c900501b3e24d7cdf4663326a3a87df5e4843b2cbdb67cbf6e460fec350"
  2154. "aa5371b1508f9f4528ecea23c436d94b5e8fcd4f681e30a6ac00a9704a188a03",
  2155. "08b8b2b733424243760fe426a4b54908632110a66c2f6591eabd3345e3e4eb98"
  2156. "fa6e264bf09efe12ee50f8f54e9f77b1e355f6c50544e23fb1433ddf73be84d8"
  2157. "79de7c0046dc4996d9e773f4bc9efe5738829adb26c81b37c93a1b270b20329d"
  2158. "658675fc6ea534e0810a4432826bf58c941efb65d57a338bbd2e26640f89ffbc"
  2159. "1a858efcb8550ee3a5e1998bd177e93a7363c344fe6b199ee5d02e82d522c4fe"
  2160. "ba15452f80288a821a579116ec6dad2b3b310da903401aa62100ab5d1a36553e"
  2161. "06203b33890cc9b832f79ef80560ccb9a39ce767967ed628c6ad573cb116dbef"
  2162. "efd75499da96bd68a8a97b928a8bbc103b6621fcde2beca1231d206be6cd9ec7"
  2163. "aff6f6c94fcd7204ed3455c68c83f4a41da4af2b74ef5c53f1d8ac70bdcb7ed1"
  2164. "85ce81bd84359d44254d95629e9855a94a7c1958d1f8ada5d0532ed8a5aa3fb2"
  2165. "d17ba70eb6248e594e1a2297acbbb39d502f1a8c6eb6f1ce22b3de1a1f40cc24"
  2166. "554119a831a9aad6079cad88425de6bde1a9187ebb6092cf67bf2b13fd65f270"
  2167. "88d78b7e883c8759d2c4f5c65adb7553878ad575f9fad878e80a0c9ba63bcbcc"
  2168. "2732e69485bbc9c90bfbd62481d9089beccf80cfe2df16a2cf65bd92dd597b07"
  2169. "07e0917af48bbb75fed413d238f5555a7a569d80c3414a8d0859dc65a46128ba"
  2170. "b27af87a71314f318c782b23ebfe808b82b0ce26401d2e22f04d83d1255dc51a"
  2171. "ddd3b75a2b1ae0784504df543af8969be3ea7082ff7fc9888c144da2af58429e"
  2172. "c96031dbcad3dad9af0dcbaaaf268cb8fcffead94f3c7ca495e056a9b47acdb7"
  2173. "51fb73e666c6c655ade8297297d07ad1ba5e43f1bca32301651339e22904cc8c"
  2174. "42f58c30c04aafdb038dda0847dd988dcda6f3bfd15c4b4c4525004aa06eeff8"
  2175. "ca61783aacec57fb3d1f92b0fe2fd1a85f6724517b65e614ad6808d6f6ee34df"
  2176. "f7310fdc82aebfd904b01e1dc54b2927094b2db68d6f903b68401adebf5a7e08"
  2177. "d78ff4ef5d63653a65040cf9bfd4aca7984a74d37145986780fc0b16ac451649"
  2178. "de6188a7dbdf191f64b5fc5e2ab47b57f7f7276cd419c17a3ca8e1b939ae49e4"
  2179. "88acba6b965610b5480109c8b17b80e1b7b750dfc7598d5d5011fd2dcc5600a3"
  2180. "2ef5b52a1ecc820e308aa342721aac0943bf6686b64b2579376504ccc493d97e"
  2181. "6aed3fb0f9cd71a43dd497f01f17c0e2cb3797aa2a2f256656168e6c496afc5f"
  2182. "b93246f6b1116398a346f1a641f3b041e989f7914f90cc2c7fff357876e506b5"
  2183. "0d334ba77c225bc307ba537152f3f1610e4eafe595f6d9d90d11faa933a15ef1"
  2184. "369546868a7f3a45a96768d40fd9d03412c091c6315cf4fde7cb68606937380d"
  2185. "b2eaaa707b4c4185c32eddcdd306705e4dc1ffc872eeee475a64dfac86aba41c"
  2186. "0618983f8741c5ef68d3a101e8a3b8cac60c905c15fc910840b94c00a0b9d0"
  2187. },
  2188. {
  2189. "833fe62409237b9d62ec77587520911e9a759cec1d19755b7da901b96dca3d42",
  2190. "ec172b93ad5e563bf4932c70e1245034c35467ef2efd4d64ebf819683467e2bf",
  2191. "dc2a4459e7369633a52b1bf277839a00201009a3efbf3ecb69bea2186c26b589"
  2192. "09351fc9ac90b3ecfdfbc7c66431e0303dca179c138ac17ad9bef1177331a704",
  2193. "ddaf35a193617abacc417349ae20413112e6fa4e89a97ea20a9eeee64b55d39a"
  2194. "2192992a274fc1a836ba3c23a3feebbd454d4423643ce80e2a9ac94fa54ca49f"
  2195. },
  2196. { NULL, NULL, NULL, NULL}
  2197. };
  2198. (void)arg;
  2199. for (i = 0; items[i].pk; ++i) {
  2200. ed25519_keypair_t kp;
  2201. ed25519_signature_t sig;
  2202. uint8_t sk_seed[32];
  2203. uint8_t *msg;
  2204. size_t msg_len;
  2205. base16_decode((char*)sk_seed, sizeof(sk_seed),
  2206. items[i].sk, 64);
  2207. ed25519_secret_key_from_seed(&kp.seckey, sk_seed);
  2208. tt_int_op(0, OP_EQ, ed25519_public_key_generate(&kp.pubkey, &kp.seckey));
  2209. test_memeq_hex(kp.pubkey.pubkey, items[i].pk);
  2210. msg_len = strlen(items[i].msg) / 2;
  2211. msg = tor_malloc(msg_len);
  2212. base16_decode((char*)msg, msg_len, items[i].msg, strlen(items[i].msg));
  2213. tt_int_op(0, OP_EQ, ed25519_sign(&sig, msg, msg_len, &kp));
  2214. test_memeq_hex(sig.sig, items[i].sig);
  2215. tor_free(msg);
  2216. }
  2217. done:
  2218. tor_free(mem_op_hex_tmp);
  2219. }
  2220. static void
  2221. test_crypto_ed25519_encode(void *arg)
  2222. {
  2223. char buf[ED25519_SIG_BASE64_LEN+1];
  2224. ed25519_keypair_t kp;
  2225. ed25519_public_key_t pk;
  2226. ed25519_signature_t sig1, sig2;
  2227. char *mem_op_hex_tmp = NULL;
  2228. (void) arg;
  2229. /* Test roundtrip. */
  2230. tt_int_op(0, OP_EQ, ed25519_keypair_generate(&kp, 0));
  2231. tt_int_op(0, OP_EQ, ed25519_public_to_base64(buf, &kp.pubkey));
  2232. tt_int_op(ED25519_BASE64_LEN, OP_EQ, strlen(buf));
  2233. tt_int_op(0, OP_EQ, ed25519_public_from_base64(&pk, buf));
  2234. tt_mem_op(kp.pubkey.pubkey, OP_EQ, pk.pubkey, ED25519_PUBKEY_LEN);
  2235. tt_int_op(0, OP_EQ, ed25519_sign(&sig1, (const uint8_t*)"ABC", 3, &kp));
  2236. tt_int_op(0, OP_EQ, ed25519_signature_to_base64(buf, &sig1));
  2237. tt_int_op(0, OP_EQ, ed25519_signature_from_base64(&sig2, buf));
  2238. tt_mem_op(sig1.sig, OP_EQ, sig2.sig, ED25519_SIG_LEN);
  2239. /* Test known value. */
  2240. tt_int_op(0, OP_EQ, ed25519_public_from_base64(&pk,
  2241. "lVIuIctLjbGZGU5wKMNXxXlSE3cW4kaqkqm04u6pxvM"));
  2242. test_memeq_hex(pk.pubkey,
  2243. "95522e21cb4b8db199194e7028c357c57952137716e246aa92a9b4e2eea9c6f3");
  2244. done:
  2245. tor_free(mem_op_hex_tmp);
  2246. }
  2247. static void
  2248. test_crypto_ed25519_convert(void *arg)
  2249. {
  2250. const uint8_t msg[] =
  2251. "The eyes are not here / There are no eyes here.";
  2252. const int N = 30;
  2253. int i;
  2254. (void)arg;
  2255. for (i = 0; i < N; ++i) {
  2256. curve25519_keypair_t curve25519_keypair;
  2257. ed25519_keypair_t ed25519_keypair;
  2258. ed25519_public_key_t ed25519_pubkey;
  2259. int bit=0;
  2260. ed25519_signature_t sig;
  2261. tt_int_op(0,OP_EQ,curve25519_keypair_generate(&curve25519_keypair, i&1));
  2262. tt_int_op(0,OP_EQ,ed25519_keypair_from_curve25519_keypair(
  2263. &ed25519_keypair, &bit, &curve25519_keypair));
  2264. tt_int_op(0,OP_EQ,ed25519_public_key_from_curve25519_public_key(
  2265. &ed25519_pubkey, &curve25519_keypair.pubkey, bit));
  2266. tt_mem_op(ed25519_pubkey.pubkey, OP_EQ, ed25519_keypair.pubkey.pubkey, 32);
  2267. tt_int_op(0,OP_EQ,ed25519_sign(&sig, msg, sizeof(msg), &ed25519_keypair));
  2268. tt_int_op(0,OP_EQ,ed25519_checksig(&sig, msg, sizeof(msg),
  2269. &ed25519_pubkey));
  2270. tt_int_op(-1,OP_EQ,ed25519_checksig(&sig, msg, sizeof(msg)-1,
  2271. &ed25519_pubkey));
  2272. sig.sig[0] ^= 15;
  2273. tt_int_op(-1,OP_EQ,ed25519_checksig(&sig, msg, sizeof(msg),
  2274. &ed25519_pubkey));
  2275. }
  2276. done:
  2277. ;
  2278. }
  2279. static void
  2280. test_crypto_ed25519_blinding(void *arg)
  2281. {
  2282. const uint8_t msg[] =
  2283. "Eyes I dare not meet in dreams / In death's dream kingdom";
  2284. const int N = 30;
  2285. int i;
  2286. (void)arg;
  2287. for (i = 0; i < N; ++i) {
  2288. uint8_t blinding[32];
  2289. ed25519_keypair_t ed25519_keypair;
  2290. ed25519_keypair_t ed25519_keypair_blinded;
  2291. ed25519_public_key_t ed25519_pubkey_blinded;
  2292. ed25519_signature_t sig;
  2293. crypto_rand((char*) blinding, sizeof(blinding));
  2294. tt_int_op(0,OP_EQ,ed25519_keypair_generate(&ed25519_keypair, 0));
  2295. tt_int_op(0,OP_EQ,ed25519_keypair_blind(&ed25519_keypair_blinded,
  2296. &ed25519_keypair, blinding));
  2297. tt_int_op(0,OP_EQ,ed25519_public_blind(&ed25519_pubkey_blinded,
  2298. &ed25519_keypair.pubkey, blinding));
  2299. tt_mem_op(ed25519_pubkey_blinded.pubkey, OP_EQ,
  2300. ed25519_keypair_blinded.pubkey.pubkey, 32);
  2301. tt_int_op(0,OP_EQ,ed25519_sign(&sig, msg, sizeof(msg),
  2302. &ed25519_keypair_blinded));
  2303. tt_int_op(0,OP_EQ,ed25519_checksig(&sig, msg, sizeof(msg),
  2304. &ed25519_pubkey_blinded));
  2305. tt_int_op(-1,OP_EQ,ed25519_checksig(&sig, msg, sizeof(msg)-1,
  2306. &ed25519_pubkey_blinded));
  2307. sig.sig[0] ^= 15;
  2308. tt_int_op(-1,OP_EQ,ed25519_checksig(&sig, msg, sizeof(msg),
  2309. &ed25519_pubkey_blinded));
  2310. }
  2311. done:
  2312. ;
  2313. }
  2314. /** Test that our blinding functions will fail if we pass them bad pubkeys */
  2315. static void
  2316. test_crypto_ed25519_blinding_fail(void *arg)
  2317. {
  2318. int retval;
  2319. uint8_t param[32] = {2};
  2320. ed25519_public_key_t pub;
  2321. ed25519_public_key_t pub_blinded;
  2322. (void)arg;
  2323. /* This point is not on the curve: the blind routines should fail */
  2324. const char badkey[] =
  2325. "e19c65de75c68cf3b7643ea732ba9eb1a3d20d6d57ba223c2ece1df66feb5af0";
  2326. retval = base16_decode((char*)pub.pubkey, sizeof(pub.pubkey),
  2327. badkey, strlen(badkey));
  2328. tt_int_op(retval, OP_EQ, sizeof(pub.pubkey));
  2329. retval = ed25519_public_blind(&pub_blinded, &pub, param);
  2330. tt_int_op(retval, OP_EQ, -1);
  2331. /* This point is legit: blind routines should be happy */
  2332. const char goodkey[] =
  2333. "4ba2e44760dff4c559ef3c38768c1c14a8a54740c782c8d70803e9d6e3ad8794";
  2334. retval = base16_decode((char*)pub.pubkey, sizeof(pub.pubkey),
  2335. goodkey, strlen(goodkey));
  2336. tt_int_op(retval, OP_EQ, sizeof(pub.pubkey));
  2337. retval = ed25519_public_blind(&pub_blinded, &pub, param);
  2338. tt_int_op(retval, OP_EQ, 0);
  2339. done:
  2340. ;
  2341. }
  2342. static void
  2343. test_crypto_ed25519_testvectors(void *arg)
  2344. {
  2345. unsigned i;
  2346. char *mem_op_hex_tmp = NULL;
  2347. (void)arg;
  2348. for (i = 0; i < ARRAY_LENGTH(ED25519_SECRET_KEYS); ++i) {
  2349. uint8_t sk[32];
  2350. ed25519_secret_key_t esk;
  2351. ed25519_public_key_t pk, blind_pk, pkfromcurve;
  2352. ed25519_keypair_t keypair, blind_keypair;
  2353. curve25519_keypair_t curvekp;
  2354. uint8_t blinding_param[32];
  2355. ed25519_signature_t sig;
  2356. int sign;
  2357. memset(&curvekp, 0xd0, sizeof(curvekp));
  2358. #define DECODE(p,s) base16_decode((char*)(p),sizeof(p),(s),strlen(s))
  2359. #define EQ(a,h) test_memeq_hex((const char*)(a), (h))
  2360. tt_int_op(sizeof(sk), OP_EQ, DECODE(sk, ED25519_SECRET_KEYS[i]));
  2361. tt_int_op(sizeof(blinding_param), OP_EQ, DECODE(blinding_param,
  2362. ED25519_BLINDING_PARAMS[i]));
  2363. tt_int_op(0, OP_EQ, ed25519_secret_key_from_seed(&esk, sk));
  2364. EQ(esk.seckey, ED25519_EXPANDED_SECRET_KEYS[i]);
  2365. tt_int_op(0, OP_EQ, ed25519_public_key_generate(&pk, &esk));
  2366. EQ(pk.pubkey, ED25519_PUBLIC_KEYS[i]);
  2367. memcpy(&curvekp.seckey.secret_key, esk.seckey, 32);
  2368. curve25519_public_key_generate(&curvekp.pubkey, &curvekp.seckey);
  2369. tt_int_op(0, OP_EQ,
  2370. ed25519_keypair_from_curve25519_keypair(&keypair, &sign, &curvekp));
  2371. tt_int_op(0, OP_EQ, ed25519_public_key_from_curve25519_public_key(
  2372. &pkfromcurve, &curvekp.pubkey, sign));
  2373. tt_mem_op(keypair.pubkey.pubkey, OP_EQ, pkfromcurve.pubkey, 32);
  2374. EQ(curvekp.pubkey.public_key, ED25519_CURVE25519_PUBLIC_KEYS[i]);
  2375. /* Self-signing */
  2376. memcpy(&keypair.seckey, &esk, sizeof(esk));
  2377. memcpy(&keypair.pubkey, &pk, sizeof(pk));
  2378. tt_int_op(0, OP_EQ, ed25519_sign(&sig, pk.pubkey, 32, &keypair));
  2379. EQ(sig.sig, ED25519_SELF_SIGNATURES[i]);
  2380. /* Blinding */
  2381. tt_int_op(0, OP_EQ,
  2382. ed25519_keypair_blind(&blind_keypair, &keypair, blinding_param));
  2383. tt_int_op(0, OP_EQ,
  2384. ed25519_public_blind(&blind_pk, &pk, blinding_param));
  2385. EQ(blind_keypair.seckey.seckey, ED25519_BLINDED_SECRET_KEYS[i]);
  2386. EQ(blind_pk.pubkey, ED25519_BLINDED_PUBLIC_KEYS[i]);
  2387. tt_mem_op(blind_pk.pubkey, OP_EQ, blind_keypair.pubkey.pubkey, 32);
  2388. #undef DECODE
  2389. #undef EQ
  2390. }
  2391. done:
  2392. tor_free(mem_op_hex_tmp);
  2393. }
  2394. static void
  2395. test_crypto_ed25519_storage(void *arg)
  2396. {
  2397. (void)arg;
  2398. ed25519_keypair_t *keypair = NULL;
  2399. ed25519_public_key_t pub;
  2400. ed25519_secret_key_t sec;
  2401. char *fname_1 = tor_strdup(get_fname("ed_seckey_1"));
  2402. char *fname_2 = tor_strdup(get_fname("ed_pubkey_2"));
  2403. char *contents = NULL;
  2404. char *tag = NULL;
  2405. keypair = tor_malloc_zero(sizeof(ed25519_keypair_t));
  2406. tt_int_op(0,OP_EQ,ed25519_keypair_generate(keypair, 0));
  2407. tt_int_op(0,OP_EQ,
  2408. ed25519_seckey_write_to_file(&keypair->seckey, fname_1, "foo"));
  2409. tt_int_op(0,OP_EQ,
  2410. ed25519_pubkey_write_to_file(&keypair->pubkey, fname_2, "bar"));
  2411. tt_int_op(-1, OP_EQ, ed25519_pubkey_read_from_file(&pub, &tag, fname_1));
  2412. tt_ptr_op(tag, OP_EQ, NULL);
  2413. tt_int_op(-1, OP_EQ, ed25519_seckey_read_from_file(&sec, &tag, fname_2));
  2414. tt_ptr_op(tag, OP_EQ, NULL);
  2415. tt_int_op(0, OP_EQ, ed25519_pubkey_read_from_file(&pub, &tag, fname_2));
  2416. tt_str_op(tag, OP_EQ, "bar");
  2417. tor_free(tag);
  2418. tt_int_op(0, OP_EQ, ed25519_seckey_read_from_file(&sec, &tag, fname_1));
  2419. tt_str_op(tag, OP_EQ, "foo");
  2420. tor_free(tag);
  2421. /* whitebox test: truncated keys. */
  2422. tt_int_op(0, OP_EQ, do_truncate(fname_1, 40));
  2423. tt_int_op(0, OP_EQ, do_truncate(fname_2, 40));
  2424. tt_int_op(-1, OP_EQ, ed25519_pubkey_read_from_file(&pub, &tag, fname_2));
  2425. tt_ptr_op(tag, OP_EQ, NULL);
  2426. tor_free(tag);
  2427. tt_int_op(-1, OP_EQ, ed25519_seckey_read_from_file(&sec, &tag, fname_1));
  2428. tt_ptr_op(tag, OP_EQ, NULL);
  2429. done:
  2430. tor_free(fname_1);
  2431. tor_free(fname_2);
  2432. tor_free(contents);
  2433. tor_free(tag);
  2434. ed25519_keypair_free(keypair);
  2435. }
  2436. static void
  2437. test_crypto_siphash(void *arg)
  2438. {
  2439. /* From the reference implementation, taking
  2440. k = 00 01 02 ... 0f
  2441. and in = 00; 00 01; 00 01 02; ...
  2442. */
  2443. const uint8_t VECTORS[64][8] =
  2444. {
  2445. { 0x31, 0x0e, 0x0e, 0xdd, 0x47, 0xdb, 0x6f, 0x72, },
  2446. { 0xfd, 0x67, 0xdc, 0x93, 0xc5, 0x39, 0xf8, 0x74, },
  2447. { 0x5a, 0x4f, 0xa9, 0xd9, 0x09, 0x80, 0x6c, 0x0d, },
  2448. { 0x2d, 0x7e, 0xfb, 0xd7, 0x96, 0x66, 0x67, 0x85, },
  2449. { 0xb7, 0x87, 0x71, 0x27, 0xe0, 0x94, 0x27, 0xcf, },
  2450. { 0x8d, 0xa6, 0x99, 0xcd, 0x64, 0x55, 0x76, 0x18, },
  2451. { 0xce, 0xe3, 0xfe, 0x58, 0x6e, 0x46, 0xc9, 0xcb, },
  2452. { 0x37, 0xd1, 0x01, 0x8b, 0xf5, 0x00, 0x02, 0xab, },
  2453. { 0x62, 0x24, 0x93, 0x9a, 0x79, 0xf5, 0xf5, 0x93, },
  2454. { 0xb0, 0xe4, 0xa9, 0x0b, 0xdf, 0x82, 0x00, 0x9e, },
  2455. { 0xf3, 0xb9, 0xdd, 0x94, 0xc5, 0xbb, 0x5d, 0x7a, },
  2456. { 0xa7, 0xad, 0x6b, 0x22, 0x46, 0x2f, 0xb3, 0xf4, },
  2457. { 0xfb, 0xe5, 0x0e, 0x86, 0xbc, 0x8f, 0x1e, 0x75, },
  2458. { 0x90, 0x3d, 0x84, 0xc0, 0x27, 0x56, 0xea, 0x14, },
  2459. { 0xee, 0xf2, 0x7a, 0x8e, 0x90, 0xca, 0x23, 0xf7, },
  2460. { 0xe5, 0x45, 0xbe, 0x49, 0x61, 0xca, 0x29, 0xa1, },
  2461. { 0xdb, 0x9b, 0xc2, 0x57, 0x7f, 0xcc, 0x2a, 0x3f, },
  2462. { 0x94, 0x47, 0xbe, 0x2c, 0xf5, 0xe9, 0x9a, 0x69, },
  2463. { 0x9c, 0xd3, 0x8d, 0x96, 0xf0, 0xb3, 0xc1, 0x4b, },
  2464. { 0xbd, 0x61, 0x79, 0xa7, 0x1d, 0xc9, 0x6d, 0xbb, },
  2465. { 0x98, 0xee, 0xa2, 0x1a, 0xf2, 0x5c, 0xd6, 0xbe, },
  2466. { 0xc7, 0x67, 0x3b, 0x2e, 0xb0, 0xcb, 0xf2, 0xd0, },
  2467. { 0x88, 0x3e, 0xa3, 0xe3, 0x95, 0x67, 0x53, 0x93, },
  2468. { 0xc8, 0xce, 0x5c, 0xcd, 0x8c, 0x03, 0x0c, 0xa8, },
  2469. { 0x94, 0xaf, 0x49, 0xf6, 0xc6, 0x50, 0xad, 0xb8, },
  2470. { 0xea, 0xb8, 0x85, 0x8a, 0xde, 0x92, 0xe1, 0xbc, },
  2471. { 0xf3, 0x15, 0xbb, 0x5b, 0xb8, 0x35, 0xd8, 0x17, },
  2472. { 0xad, 0xcf, 0x6b, 0x07, 0x63, 0x61, 0x2e, 0x2f, },
  2473. { 0xa5, 0xc9, 0x1d, 0xa7, 0xac, 0xaa, 0x4d, 0xde, },
  2474. { 0x71, 0x65, 0x95, 0x87, 0x66, 0x50, 0xa2, 0xa6, },
  2475. { 0x28, 0xef, 0x49, 0x5c, 0x53, 0xa3, 0x87, 0xad, },
  2476. { 0x42, 0xc3, 0x41, 0xd8, 0xfa, 0x92, 0xd8, 0x32, },
  2477. { 0xce, 0x7c, 0xf2, 0x72, 0x2f, 0x51, 0x27, 0x71, },
  2478. { 0xe3, 0x78, 0x59, 0xf9, 0x46, 0x23, 0xf3, 0xa7, },
  2479. { 0x38, 0x12, 0x05, 0xbb, 0x1a, 0xb0, 0xe0, 0x12, },
  2480. { 0xae, 0x97, 0xa1, 0x0f, 0xd4, 0x34, 0xe0, 0x15, },
  2481. { 0xb4, 0xa3, 0x15, 0x08, 0xbe, 0xff, 0x4d, 0x31, },
  2482. { 0x81, 0x39, 0x62, 0x29, 0xf0, 0x90, 0x79, 0x02, },
  2483. { 0x4d, 0x0c, 0xf4, 0x9e, 0xe5, 0xd4, 0xdc, 0xca, },
  2484. { 0x5c, 0x73, 0x33, 0x6a, 0x76, 0xd8, 0xbf, 0x9a, },
  2485. { 0xd0, 0xa7, 0x04, 0x53, 0x6b, 0xa9, 0x3e, 0x0e, },
  2486. { 0x92, 0x59, 0x58, 0xfc, 0xd6, 0x42, 0x0c, 0xad, },
  2487. { 0xa9, 0x15, 0xc2, 0x9b, 0xc8, 0x06, 0x73, 0x18, },
  2488. { 0x95, 0x2b, 0x79, 0xf3, 0xbc, 0x0a, 0xa6, 0xd4, },
  2489. { 0xf2, 0x1d, 0xf2, 0xe4, 0x1d, 0x45, 0x35, 0xf9, },
  2490. { 0x87, 0x57, 0x75, 0x19, 0x04, 0x8f, 0x53, 0xa9, },
  2491. { 0x10, 0xa5, 0x6c, 0xf5, 0xdf, 0xcd, 0x9a, 0xdb, },
  2492. { 0xeb, 0x75, 0x09, 0x5c, 0xcd, 0x98, 0x6c, 0xd0, },
  2493. { 0x51, 0xa9, 0xcb, 0x9e, 0xcb, 0xa3, 0x12, 0xe6, },
  2494. { 0x96, 0xaf, 0xad, 0xfc, 0x2c, 0xe6, 0x66, 0xc7, },
  2495. { 0x72, 0xfe, 0x52, 0x97, 0x5a, 0x43, 0x64, 0xee, },
  2496. { 0x5a, 0x16, 0x45, 0xb2, 0x76, 0xd5, 0x92, 0xa1, },
  2497. { 0xb2, 0x74, 0xcb, 0x8e, 0xbf, 0x87, 0x87, 0x0a, },
  2498. { 0x6f, 0x9b, 0xb4, 0x20, 0x3d, 0xe7, 0xb3, 0x81, },
  2499. { 0xea, 0xec, 0xb2, 0xa3, 0x0b, 0x22, 0xa8, 0x7f, },
  2500. { 0x99, 0x24, 0xa4, 0x3c, 0xc1, 0x31, 0x57, 0x24, },
  2501. { 0xbd, 0x83, 0x8d, 0x3a, 0xaf, 0xbf, 0x8d, 0xb7, },
  2502. { 0x0b, 0x1a, 0x2a, 0x32, 0x65, 0xd5, 0x1a, 0xea, },
  2503. { 0x13, 0x50, 0x79, 0xa3, 0x23, 0x1c, 0xe6, 0x60, },
  2504. { 0x93, 0x2b, 0x28, 0x46, 0xe4, 0xd7, 0x06, 0x66, },
  2505. { 0xe1, 0x91, 0x5f, 0x5c, 0xb1, 0xec, 0xa4, 0x6c, },
  2506. { 0xf3, 0x25, 0x96, 0x5c, 0xa1, 0x6d, 0x62, 0x9f, },
  2507. { 0x57, 0x5f, 0xf2, 0x8e, 0x60, 0x38, 0x1b, 0xe5, },
  2508. { 0x72, 0x45, 0x06, 0xeb, 0x4c, 0x32, 0x8a, 0x95, }
  2509. };
  2510. const struct sipkey K = { UINT64_C(0x0706050403020100),
  2511. UINT64_C(0x0f0e0d0c0b0a0908) };
  2512. uint8_t input[64];
  2513. int i, j;
  2514. (void)arg;
  2515. for (i = 0; i < 64; ++i)
  2516. input[i] = i;
  2517. for (i = 0; i < 64; ++i) {
  2518. uint64_t r = siphash24(input, i, &K);
  2519. for (j = 0; j < 8; ++j) {
  2520. tt_int_op( (r >> (j*8)) & 0xff, OP_EQ, VECTORS[i][j]);
  2521. }
  2522. }
  2523. done:
  2524. ;
  2525. }
  2526. /* We want the likelihood that the random buffer exhibits any regular pattern
  2527. * to be far less than the memory bit error rate in the int return value.
  2528. * Using 2048 bits provides a failure rate of 1/(3 * 10^616), and we call
  2529. * 3 functions, leading to an overall error rate of 1/10^616.
  2530. * This is comparable with the 1/10^603 failure rate of test_crypto_rng_range.
  2531. */
  2532. #define FAILURE_MODE_BUFFER_SIZE (2048/8)
  2533. /** Check crypto_rand for a failure mode where it does nothing to the buffer,
  2534. * or it sets the buffer to all zeroes. Return 0 when the check passes,
  2535. * or -1 when it fails. */
  2536. static int
  2537. crypto_rand_check_failure_mode_zero(void)
  2538. {
  2539. char buf[FAILURE_MODE_BUFFER_SIZE];
  2540. memset(buf, 0, FAILURE_MODE_BUFFER_SIZE);
  2541. crypto_rand(buf, FAILURE_MODE_BUFFER_SIZE);
  2542. for (size_t i = 0; i < FAILURE_MODE_BUFFER_SIZE; i++) {
  2543. if (buf[i] != 0) {
  2544. return 0;
  2545. }
  2546. }
  2547. return -1;
  2548. }
  2549. /** Check crypto_rand for a failure mode where every int64_t in the buffer is
  2550. * the same. Return 0 when the check passes, or -1 when it fails. */
  2551. static int
  2552. crypto_rand_check_failure_mode_identical(void)
  2553. {
  2554. /* just in case the buffer size isn't a multiple of sizeof(int64_t) */
  2555. #define FAILURE_MODE_BUFFER_SIZE_I64 \
  2556. (FAILURE_MODE_BUFFER_SIZE/8)
  2557. #define FAILURE_MODE_BUFFER_SIZE_I64_BYTES \
  2558. (FAILURE_MODE_BUFFER_SIZE_I64*8)
  2559. #if FAILURE_MODE_BUFFER_SIZE_I64 < 2
  2560. #error FAILURE_MODE_BUFFER_SIZE needs to be at least 2*8
  2561. #endif
  2562. int64_t buf[FAILURE_MODE_BUFFER_SIZE_I64];
  2563. memset(buf, 0, FAILURE_MODE_BUFFER_SIZE_I64_BYTES);
  2564. crypto_rand((char *)buf, FAILURE_MODE_BUFFER_SIZE_I64_BYTES);
  2565. for (size_t i = 1; i < FAILURE_MODE_BUFFER_SIZE_I64; i++) {
  2566. if (buf[i] != buf[i-1]) {
  2567. return 0;
  2568. }
  2569. }
  2570. return -1;
  2571. }
  2572. /** Check crypto_rand for a failure mode where it increments the "random"
  2573. * value by 1 for every byte in the buffer. (This is OpenSSL's PREDICT mode.)
  2574. * Return 0 when the check passes, or -1 when it fails. */
  2575. static int
  2576. crypto_rand_check_failure_mode_predict(void)
  2577. {
  2578. unsigned char buf[FAILURE_MODE_BUFFER_SIZE];
  2579. memset(buf, 0, FAILURE_MODE_BUFFER_SIZE);
  2580. crypto_rand((char *)buf, FAILURE_MODE_BUFFER_SIZE);
  2581. for (size_t i = 1; i < FAILURE_MODE_BUFFER_SIZE; i++) {
  2582. /* check if the last byte was incremented by 1, including integer
  2583. * wrapping */
  2584. if (buf[i] - buf[i-1] != 1 && buf[i-1] - buf[i] != 255) {
  2585. return 0;
  2586. }
  2587. }
  2588. return -1;
  2589. }
  2590. #undef FAILURE_MODE_BUFFER_SIZE
  2591. /** Test that our ed25519 validation function rejects evil public keys and
  2592. * accepts good ones. */
  2593. static void
  2594. test_crypto_ed25519_validation(void *arg)
  2595. {
  2596. (void) arg;
  2597. int retval;
  2598. ed25519_public_key_t pub1;
  2599. /* See https://lists.torproject.org/pipermail/tor-dev/2017-April/012230.html
  2600. for a list of points with torsion components in ed25519. */
  2601. { /* Point with torsion component (order 8l) */
  2602. const char badkey[] =
  2603. "300ef2e64e588e1df55b48e4da0416ffb64cc85d5b00af6463d5cc6c2b1c185e";
  2604. retval = base16_decode((char*)pub1.pubkey, sizeof(pub1.pubkey),
  2605. badkey, strlen(badkey));
  2606. tt_int_op(retval, OP_EQ, sizeof(pub1.pubkey));
  2607. tt_int_op(ed25519_validate_pubkey(&pub1), OP_EQ, -1);
  2608. }
  2609. { /* Point with torsion component (order 4l) */
  2610. const char badkey[] =
  2611. "f43e3a046db8749164c6e69b193f1e942c7452e7d888736f40b98093d814d5e7";
  2612. retval = base16_decode((char*)pub1.pubkey, sizeof(pub1.pubkey),
  2613. badkey, strlen(badkey));
  2614. tt_int_op(retval, OP_EQ, sizeof(pub1.pubkey));
  2615. tt_int_op(ed25519_validate_pubkey(&pub1), OP_EQ, -1);
  2616. }
  2617. { /* Point with torsion component (order 2l) */
  2618. const char badkey[] =
  2619. "c9fff3af0471c28e33e98c2043e44f779d0427b1e37c521a6bddc011ed1869af";
  2620. retval = base16_decode((char*)pub1.pubkey, sizeof(pub1.pubkey),
  2621. badkey, strlen(badkey));
  2622. tt_int_op(retval, OP_EQ, sizeof(pub1.pubkey));
  2623. tt_int_op(ed25519_validate_pubkey(&pub1), OP_EQ, -1);
  2624. }
  2625. { /* This point is not even on the curve */
  2626. const char badkey[] =
  2627. "e19c65de75c68cf3b7643ea732ba9eb1a3d20d6d57ba223c2ece1df66feb5af0";
  2628. retval = base16_decode((char*)pub1.pubkey, sizeof(pub1.pubkey),
  2629. badkey, strlen(badkey));
  2630. tt_int_op(retval, OP_EQ, sizeof(pub1.pubkey));
  2631. tt_int_op(ed25519_validate_pubkey(&pub1), OP_EQ, -1);
  2632. }
  2633. { /* This one is a good key */
  2634. const char goodkey[] =
  2635. "4ba2e44760dff4c559ef3c38768c1c14a8a54740c782c8d70803e9d6e3ad8794";
  2636. retval = base16_decode((char*)pub1.pubkey, sizeof(pub1.pubkey),
  2637. goodkey, strlen(goodkey));
  2638. tt_int_op(retval, OP_EQ, sizeof(pub1.pubkey));
  2639. tt_int_op(ed25519_validate_pubkey(&pub1), OP_EQ, 0);
  2640. }
  2641. done: ;
  2642. }
  2643. static void
  2644. test_crypto_failure_modes(void *arg)
  2645. {
  2646. int rv = 0;
  2647. (void)arg;
  2648. rv = crypto_early_init();
  2649. tt_int_op(rv, OP_EQ, 0);
  2650. /* Check random works */
  2651. rv = crypto_rand_check_failure_mode_zero();
  2652. tt_int_op(rv, OP_EQ, 0);
  2653. rv = crypto_rand_check_failure_mode_identical();
  2654. tt_int_op(rv, OP_EQ, 0);
  2655. rv = crypto_rand_check_failure_mode_predict();
  2656. tt_int_op(rv, OP_EQ, 0);
  2657. done:
  2658. ;
  2659. }
  2660. #define CRYPTO_LEGACY(name) \
  2661. { #name, test_crypto_ ## name , 0, NULL, NULL }
  2662. #define ED25519_TEST_ONE(name, fl, which) \
  2663. { #name "/ed25519_" which, test_crypto_ed25519_ ## name, (fl), \
  2664. &ed25519_test_setup, (void*)which }
  2665. #define ED25519_TEST(name, fl) \
  2666. ED25519_TEST_ONE(name, (fl), "donna"), \
  2667. ED25519_TEST_ONE(name, (fl), "ref10")
  2668. struct testcase_t crypto_tests[] = {
  2669. CRYPTO_LEGACY(formats),
  2670. CRYPTO_LEGACY(rng),
  2671. { "rng_range", test_crypto_rng_range, 0, NULL, NULL },
  2672. { "rng_strongest", test_crypto_rng_strongest, TT_FORK, NULL, NULL },
  2673. { "rng_strongest_nosyscall", test_crypto_rng_strongest, TT_FORK,
  2674. &passthrough_setup, (void*)"nosyscall" },
  2675. { "rng_strongest_nofallback", test_crypto_rng_strongest, TT_FORK,
  2676. &passthrough_setup, (void*)"nofallback" },
  2677. { "rng_strongest_broken", test_crypto_rng_strongest, TT_FORK,
  2678. &passthrough_setup, (void*)"broken" },
  2679. { "openssl_version", test_crypto_openssl_version, TT_FORK, NULL, NULL },
  2680. { "aes_AES", test_crypto_aes128, TT_FORK, &passthrough_setup, (void*)"aes" },
  2681. { "aes_EVP", test_crypto_aes128, TT_FORK, &passthrough_setup, (void*)"evp" },
  2682. { "aes128_ctr_testvec", test_crypto_aes_ctr_testvec, 0,
  2683. &passthrough_setup, (void*)"128" },
  2684. { "aes192_ctr_testvec", test_crypto_aes_ctr_testvec, 0,
  2685. &passthrough_setup, (void*)"192" },
  2686. { "aes256_ctr_testvec", test_crypto_aes_ctr_testvec, 0,
  2687. &passthrough_setup, (void*)"256" },
  2688. CRYPTO_LEGACY(sha),
  2689. CRYPTO_LEGACY(pk),
  2690. { "pk_fingerprints", test_crypto_pk_fingerprints, TT_FORK, NULL, NULL },
  2691. { "pk_base64", test_crypto_pk_base64, TT_FORK, NULL, NULL },
  2692. { "pk_pem_encrypted", test_crypto_pk_pem_encrypted, TT_FORK, NULL, NULL },
  2693. CRYPTO_LEGACY(digests),
  2694. { "digest_names", test_crypto_digest_names, 0, NULL, NULL },
  2695. { "sha3", test_crypto_sha3, TT_FORK, NULL, NULL},
  2696. { "sha3_xof", test_crypto_sha3_xof, TT_FORK, NULL, NULL},
  2697. { "mac_sha3", test_crypto_mac_sha3, TT_FORK, NULL, NULL},
  2698. CRYPTO_LEGACY(dh),
  2699. { "aes_iv_AES", test_crypto_aes_iv, TT_FORK, &passthrough_setup,
  2700. (void*)"aes" },
  2701. { "aes_iv_EVP", test_crypto_aes_iv, TT_FORK, &passthrough_setup,
  2702. (void*)"evp" },
  2703. CRYPTO_LEGACY(base32_decode),
  2704. { "kdf_TAP", test_crypto_kdf_TAP, 0, NULL, NULL },
  2705. { "hkdf_sha256", test_crypto_hkdf_sha256, 0, NULL, NULL },
  2706. { "hkdf_sha256_testvecs", test_crypto_hkdf_sha256_testvecs, 0, NULL, NULL },
  2707. { "curve25519_impl", test_crypto_curve25519_impl, 0, NULL, NULL },
  2708. { "curve25519_impl_hibit", test_crypto_curve25519_impl, 0, NULL, (void*)"y"},
  2709. { "curve25516_testvec", test_crypto_curve25519_testvec, 0, NULL, NULL },
  2710. { "curve25519_basepoint",
  2711. test_crypto_curve25519_basepoint, TT_FORK, NULL, NULL },
  2712. { "curve25519_wrappers", test_crypto_curve25519_wrappers, 0, NULL, NULL },
  2713. { "curve25519_encode", test_crypto_curve25519_encode, 0, NULL, NULL },
  2714. { "curve25519_persist", test_crypto_curve25519_persist, 0, NULL, NULL },
  2715. ED25519_TEST(simple, 0),
  2716. ED25519_TEST(test_vectors, 0),
  2717. ED25519_TEST(encode, 0),
  2718. ED25519_TEST(convert, 0),
  2719. ED25519_TEST(blinding, 0),
  2720. ED25519_TEST(blinding_fail, 0),
  2721. ED25519_TEST(testvectors, 0),
  2722. ED25519_TEST(validation, 0),
  2723. { "ed25519_storage", test_crypto_ed25519_storage, 0, NULL, NULL },
  2724. { "siphash", test_crypto_siphash, 0, NULL, NULL },
  2725. { "failure_modes", test_crypto_failure_modes, TT_FORK, NULL, NULL },
  2726. END_OF_TESTCASES
  2727. };