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ringct: 17% improvement in Borromean signature verification
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1 changed files with 36 additions and 9 deletions
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@ -118,19 +118,32 @@ namespace rct {
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}
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}
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//see above.
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//see above.
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bool verifyBorromean(const boroSig &bb, const key64 P1, const key64 P2) {
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bool verifyBorromean(const boroSig &bb, const ge_p3 P1[64], const ge_p3 P2[64]) {
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key64 Lv1; key chash, LL;
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key64 Lv1; key chash, LL;
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int ii = 0;
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int ii = 0;
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ge_p2 p2;
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for (ii = 0 ; ii < 64 ; ii++) {
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for (ii = 0 ; ii < 64 ; ii++) {
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addKeys2(LL, bb.s0[ii], bb.ee, P1[ii]);
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// equivalent of: addKeys2(LL, bb.s0[ii], bb.ee, P1[ii]);
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ge_double_scalarmult_base_vartime(&p2, bb.ee.bytes, &P1[ii], bb.s0[ii].bytes);
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ge_tobytes(LL.bytes, &p2);
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chash = hash_to_scalar(LL);
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chash = hash_to_scalar(LL);
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addKeys2(Lv1[ii], bb.s1[ii], chash, P2[ii]);
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// equivalent of: addKeys2(Lv1[ii], bb.s1[ii], chash, P2[ii]);
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ge_double_scalarmult_base_vartime(&p2, chash.bytes, &P2[ii], bb.s1[ii].bytes);
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ge_tobytes(Lv1[ii].bytes, &p2);
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}
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}
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key eeComputed = hash_to_scalar(Lv1); //hash function fine
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key eeComputed = hash_to_scalar(Lv1); //hash function fine
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return equalKeys(eeComputed, bb.ee);
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return equalKeys(eeComputed, bb.ee);
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}
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}
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bool verifyBorromean(const boroSig &bb, const key64 P1, const key64 P2) {
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ge_p3 P1_p3[64], P2_p3[64];
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for (size_t i = 0 ; i < 64 ; ++i) {
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CHECK_AND_ASSERT_MES(ge_frombytes_vartime(&P1_p3[i], P1[i].bytes) == 0, false, "point conv failed");
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CHECK_AND_ASSERT_MES(ge_frombytes_vartime(&P2_p3[i], P2[i].bytes) == 0, false, "point conv failed");
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}
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return verifyBorromean(bb, P1_p3, P2_p3);
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}
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//Multilayered Spontaneous Anonymous Group Signatures (MLSAG signatures)
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//Multilayered Spontaneous Anonymous Group Signatures (MLSAG signatures)
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//This is a just slghtly more efficient version than the ones described below
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//This is a just slghtly more efficient version than the ones described below
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//(will be explained in more detail in Ring Multisig paper
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//(will be explained in more detail in Ring Multisig paper
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@ -336,16 +349,30 @@ namespace rct {
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try
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try
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{
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{
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PERF_TIMER(verRange);
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PERF_TIMER(verRange);
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key64 CiH;
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ge_p3 CiH[64], asCi[64];
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int i = 0;
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int i = 0;
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key Ctmp = identity();
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ge_p3 Ctmp_p3 = ge_p3_identity;
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for (i = 0; i < 64; i++) {
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for (i = 0; i < 64; i++) {
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subKeys(CiH[i], as.Ci[i], H2[i]);
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// faster equivalent of:
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addKeys(Ctmp, Ctmp, as.Ci[i]);
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// subKeys(CiH[i], as.Ci[i], H2[i]);
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// addKeys(Ctmp, Ctmp, as.Ci[i]);
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ge_cached cached;
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ge_p3 p3;
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ge_p1p1 p1;
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CHECK_AND_ASSERT_MES(ge_frombytes_vartime(&p3, H2[i].bytes) == 0, false, "point conv failed");
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ge_p3_to_cached(&cached, &p3);
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CHECK_AND_ASSERT_MES(ge_frombytes_vartime(&asCi[i], as.Ci[i].bytes) == 0, false, "point conv failed");
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ge_sub(&p1, &asCi[i], &cached);
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ge_p3_to_cached(&cached, &asCi[i]);
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ge_p1p1_to_p3(&CiH[i], &p1);
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ge_add(&p1, &Ctmp_p3, &cached);
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ge_p1p1_to_p3(&Ctmp_p3, &p1);
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}
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}
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key Ctmp;
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ge_p3_tobytes(Ctmp.bytes, &Ctmp_p3);
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if (!equalKeys(C, Ctmp))
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if (!equalKeys(C, Ctmp))
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return false;
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return false;
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if (!verifyBorromean(as.asig, as.Ci, CiH))
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if (!verifyBorromean(as.asig, asCi, CiH))
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return false;
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return false;
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return true;
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return true;
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}
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}
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