279 lines
8.6 KiB
Nim
279 lines
8.6 KiB
Nim
# Constantine
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# Copyright (c) 2018-2019 Status Research & Development GmbH
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# Copyright (c) 2020-Present Mamy André-Ratsimbazafy
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# Licensed and distributed under either of
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# * MIT license (license terms in the root directory or at http://opensource.org/licenses/MIT).
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# * Apache v2 license (license terms in the root directory or at http://www.apache.org/licenses/LICENSE-2.0).
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# at your option. This file may not be copied, modified, or distributed except according to those terms.
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import
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# Standard library
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std/[unittest, times],
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# Internal
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../constantine/arithmetic,
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../constantine/io/[io_bigints, io_fields],
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../constantine/config/[curves, common, type_bigint],
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# Test utilities
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../helpers/prng_unsafe
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const Iters = 24
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var rng: RngState
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let seed = uint32(getTime().toUnix() and (1'i64 shl 32 - 1)) # unixTime mod 2^32
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rng.seed(seed)
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echo "\n------------------------------------------------------\n"
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echo "test_finite_fields_double_precision xoshiro512** seed: ", seed
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template addsubnegTest(rng_gen: untyped): untyped =
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proc `addsubneg _ rng_gen`(C: static Curve) =
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# Try to exercise all code paths for in-place/out-of-place add/sum/sub/diff/double/neg
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# (1 - (-a) - b + (-a) - 2a) + (2a + 2b + (-b)) == 1
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let aFp = rng_gen(rng, Fp[C])
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let bFp = rng_gen(rng, Fp[C])
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var accumFp {.noInit.}: Fp[C]
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var OneFp {.noInit.}: Fp[C]
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var accum {.noInit.}, One {.noInit.}, a{.noInit.}, na{.noInit.}, b{.noInit.}, nb{.noInit.}, a2 {.noInit.}, b2 {.noInit.}: FpDbl[C]
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OneFp.setOne()
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One.prod2x(OneFp, OneFp)
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a.prod2x(aFp, OneFp)
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b.prod2x(bFp, OneFp)
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block: # sanity check
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var t: Fp[C]
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t.redc2x(One)
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doAssert bool t.isOne()
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a2.sum2xMod(a, a)
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na.neg2xMod(a)
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block: # sanity check
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var t0, t1: Fp[C]
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t0.redc2x(na)
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t1.neg(aFp)
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doAssert bool(t0 == t1),
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"Beware, if the hex are the same, it means the outputs are the same (mod p),\n" &
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"but one might not be completely reduced\n" &
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" t0: " & t0.toHex() & "\n" &
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" t1: " & t1.toHex() & "\n"
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block: # sanity check
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var t0, t1: Fp[C]
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t0.redc2x(a2)
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t1.double(aFp)
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doAssert bool(t0 == t1),
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"Beware, if the hex are the same, it means the outputs are the same (mod p),\n" &
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"but one might not be completely reduced\n" &
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" t0: " & t0.toHex() & "\n" &
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" t1: " & t1.toHex() & "\n"
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b2.sum2xMod(b, b)
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nb.neg2xMod(b)
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accum.diff2xMod(One, na)
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accum.diff2xMod(accum, b)
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accum.sum2xMod(accum, na)
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accum.diff2xMod(accum, a2)
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var t{.noInit.}: FpDbl[C]
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t.sum2xMod(a2, b2)
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t.sum2xMod(t, nb)
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accum.sum2xMod(accum, t)
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accumFp.redc2x(accum)
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doAssert bool accumFp.isOne(),
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"Beware, if the hex are the same, it means the outputs are the same (mod p),\n" &
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"but one might not be completely reduced\n" &
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" accumFp: " & accumFp.toHex()
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template mulTest(rng_gen: untyped): untyped =
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proc `mul _ rng_gen`(C: static Curve) =
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let a = rng_gen(rng, Fp[C])
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let b = rng_gen(rng, Fp[C])
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var r_fp{.noInit.}, r_fpDbl{.noInit.}: Fp[C]
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var tmpDbl{.noInit.}: FpDbl[C]
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r_fp.prod(a, b)
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tmpDbl.prod2x(a, b)
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r_fpDbl.redc2x(tmpDbl)
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doAssert bool(r_fp == r_fpDbl)
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template sqrTest(rng_gen: untyped): untyped =
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proc `sqr _ rng_gen`(C: static Curve) =
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let a = rng_gen(rng, Fp[C])
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var mulDbl{.noInit.}, sqrDbl{.noInit.}: FpDbl[C]
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mulDbl.prod2x(a, a)
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sqrDbl.square2x(a)
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doAssert bool(mulDbl == sqrDbl),
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"\nOriginal: " & a.mres.limbs.toString() &
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"\n Mul: " & mulDbl.limbs2x.toString() &
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"\n Sqr: " & sqrDbl.limbs2x.toString()
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addsubnegTest(random_unsafe)
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addsubnegTest(randomHighHammingWeight)
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addsubnegTest(random_long01Seq)
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mulTest(random_unsafe)
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mulTest(randomHighHammingWeight)
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mulTest(random_long01Seq)
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sqrTest(random_unsafe)
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sqrTest(randomHighHammingWeight)
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sqrTest(random_long01Seq)
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suite "Field Addition/Substraction/Negation via double-precision field elements" & " [" & $WordBitwidth & "-bit mode]":
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test "With P-224 field modulus":
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for _ in 0 ..< Iters:
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addsubneg_random_unsafe(P224)
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for _ in 0 ..< Iters:
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addsubneg_randomHighHammingWeight(P224)
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for _ in 0 ..< Iters:
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addsubneg_random_long01Seq(P224)
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test "With P-256 field modulus":
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for _ in 0 ..< Iters:
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addsubneg_random_unsafe(P256)
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for _ in 0 ..< Iters:
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addsubneg_randomHighHammingWeight(P256)
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for _ in 0 ..< Iters:
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addsubneg_random_long01Seq(P256)
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test "With BN254_Snarks field modulus":
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for _ in 0 ..< Iters:
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addsubneg_random_unsafe(BN254_Snarks)
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for _ in 0 ..< Iters:
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addsubneg_randomHighHammingWeight(BN254_Snarks)
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for _ in 0 ..< Iters:
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addsubneg_random_long01Seq(BN254_Snarks)
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test "With BLS12_381 field modulus":
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for _ in 0 ..< Iters:
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addsubneg_random_unsafe(BLS12_381)
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for _ in 0 ..< Iters:
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addsubneg_randomHighHammingWeight(BLS12_381)
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for _ in 0 ..< Iters:
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addsubneg_random_long01Seq(BLS12_381)
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test "With Curve25519 field modulus":
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for _ in 0 ..< Iters:
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addsubneg_random_unsafe(Curve25519)
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for _ in 0 ..< Iters:
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addsubneg_randomHighHammingWeight(Curve25519)
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for _ in 0 ..< Iters:
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addsubneg_random_long01Seq(Curve25519)
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test "With Bandersnatch field modulus":
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for _ in 0 ..< Iters:
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addsubneg_random_unsafe(Bandersnatch)
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for _ in 0 ..< Iters:
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addsubneg_randomHighHammingWeight(Bandersnatch)
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for _ in 0 ..< Iters:
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addsubneg_random_long01Seq(Bandersnatch)
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test "Negate 0 returns 0 (unique Montgomery repr)":
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var a: FpDbl[BN254_Snarks]
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var r {.noInit.}: FpDbl[BN254_Snarks]
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r.neg2xMod(a)
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check: bool r.isZero()
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suite "Field Multiplication via double-precision field elements is consistent with single-width." & " [" & $WordBitwidth & "-bit mode]":
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test "With P-224 field modulus":
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for _ in 0 ..< Iters:
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mul_random_unsafe(P224)
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for _ in 0 ..< Iters:
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mul_randomHighHammingWeight(P224)
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for _ in 0 ..< Iters:
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mul_random_long01Seq(P224)
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test "With P-256 field modulus":
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for _ in 0 ..< Iters:
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mul_random_unsafe(P256)
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for _ in 0 ..< Iters:
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mul_randomHighHammingWeight(P256)
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for _ in 0 ..< Iters:
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mul_random_long01Seq(P256)
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test "With BN254_Snarks field modulus":
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for _ in 0 ..< Iters:
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mul_random_unsafe(BN254_Snarks)
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for _ in 0 ..< Iters:
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mul_randomHighHammingWeight(BN254_Snarks)
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for _ in 0 ..< Iters:
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mul_random_long01Seq(BN254_Snarks)
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test "With BLS12_381 field modulus":
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for _ in 0 ..< Iters:
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mul_random_unsafe(BLS12_381)
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for _ in 0 ..< Iters:
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mul_randomHighHammingWeight(BLS12_381)
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for _ in 0 ..< Iters:
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mul_random_long01Seq(BLS12_381)
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test "With Curve25519 field modulus":
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for _ in 0 ..< Iters:
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mul_random_unsafe(Curve25519)
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for _ in 0 ..< Iters:
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mul_randomHighHammingWeight(Curve25519)
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for _ in 0 ..< Iters:
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mul_random_long01Seq(Curve25519)
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test "With Bandersnatch field modulus":
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for _ in 0 ..< Iters:
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mul_random_unsafe(Bandersnatch)
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for _ in 0 ..< Iters:
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mul_randomHighHammingWeight(Bandersnatch)
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for _ in 0 ..< Iters:
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mul_random_long01Seq(Bandersnatch)
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suite "Field Squaring via double-precision field elements is consistent with single-width." & " [" & $WordBitwidth & "-bit mode]":
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test "With P-224 field modulus":
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for _ in 0 ..< Iters:
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sqr_random_unsafe(P224)
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for _ in 0 ..< Iters:
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sqr_randomHighHammingWeight(P224)
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for _ in 0 ..< Iters:
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sqr_random_long01Seq(P224)
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test "With P-256 field modulus":
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for _ in 0 ..< Iters:
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sqr_random_unsafe(P256)
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for _ in 0 ..< Iters:
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sqr_randomHighHammingWeight(P256)
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for _ in 0 ..< Iters:
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sqr_random_long01Seq(P256)
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test "With BN254_Snarks field modulus":
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for _ in 0 ..< Iters:
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sqr_random_unsafe(BN254_Snarks)
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for _ in 0 ..< Iters:
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sqr_randomHighHammingWeight(BN254_Snarks)
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for _ in 0 ..< Iters:
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sqr_random_long01Seq(BN254_Snarks)
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test "With BLS12_381 field modulus":
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for _ in 0 ..< Iters:
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sqr_random_unsafe(BLS12_381)
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for _ in 0 ..< Iters:
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sqr_randomHighHammingWeight(BLS12_381)
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for _ in 0 ..< Iters:
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sqr_random_long01Seq(BLS12_381)
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test "With Curve25519 field modulus":
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for _ in 0 ..< Iters:
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sqr_random_unsafe(Curve25519)
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for _ in 0 ..< Iters:
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sqr_randomHighHammingWeight(Curve25519)
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for _ in 0 ..< Iters:
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sqr_random_long01Seq(Curve25519)
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test "With Bandersnatch field modulus":
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for _ in 0 ..< Iters:
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sqr_random_unsafe(Bandersnatch)
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for _ in 0 ..< Iters:
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sqr_randomHighHammingWeight(Bandersnatch)
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for _ in 0 ..< Iters:
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sqr_random_long01Seq(Bandersnatch) |