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120 lines
4.9 KiB
C++
120 lines
4.9 KiB
C++
// Part of the Concrete Compiler Project, under the BSD3 License with Zama
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// Exceptions. See
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// https://github.com/zama-ai/concrete-compiler-internal/blob/main/LICENSE.txt
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// for license information.
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#include "concretelang/Runtime/simulation.h"
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#include "concrete-cpu-noise-model.h"
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#include "concrete-cpu.h"
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#include "concrete/curves.h"
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#include "concretelang/ClientLib/EvaluationKeys.h"
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#include "concretelang/Runtime/wrappers.h"
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#include "concretelang/Support/V0Parameters.h"
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#include <assert.h>
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#include <cmath>
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#include <random>
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inline concrete::SecurityCurve *security_curve() {
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return concrete::getSecurityCurve(128, concrete::BINARY);
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}
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uint64_t from_torus(double torus) {
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assert(torus >= 0 && torus < 1 && "torus value must be in [0, 1)");
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return (uint64_t)round(torus * pow(2, 64));
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}
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// TODO: what's the overhead of creating a csprng everytime? Should we have a
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// single one?
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uint64_t gaussian_noise(double mean, double variance) {
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uint64_t random_gaussian_buff[2];
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auto csprng = concretelang::clientlib::ConcreteCSPRNG(0);
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concrete_cpu_fill_with_random_gaussian(random_gaussian_buff, 2, variance,
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csprng.ptr);
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return random_gaussian_buff[0];
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}
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uint64_t sim_encrypt_lwe_u64(uint64_t message, uint32_t lwe_dim) {
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double variance = security_curve()->getVariance(1, lwe_dim, 64);
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uint64_t encryption_noise = gaussian_noise(0, variance);
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return message + encryption_noise;
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}
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uint64_t sim_keyswitch_lwe_u64(uint64_t plaintext, uint32_t level,
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uint32_t base_log, uint32_t input_lwe_dim,
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uint32_t output_lwe_dim) {
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double variance_ksk = security_curve()->getVariance(1, output_lwe_dim, 64);
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double variance = concrete_cpu_variance_keyswitch(input_lwe_dim, base_log,
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level, 64, variance_ksk);
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uint64_t ks_noise = gaussian_noise(0, variance);
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return plaintext + ks_noise;
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}
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uint64_t sim_bootstrap_lwe_u64(uint64_t plaintext, uint64_t *tlu_allocated,
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uint64_t *tlu_aligned, uint64_t tlu_offset,
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uint64_t tlu_size, uint64_t tlu_stride,
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uint32_t input_lwe_dim, uint32_t poly_size,
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uint32_t level, uint32_t base_log,
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uint32_t glwe_dim) {
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auto tlu = tlu_aligned + tlu_offset;
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// modulus switching
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double variance_ms =
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concrete_cpu_estimate_modulus_switching_noise_with_binary_key(
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input_lwe_dim, log2(poly_size), 64);
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uint64_t shift = (64 - log2(poly_size) - 2);
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// mod_switch noise
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auto noise = gaussian_noise(0, variance_ms);
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noise >>= shift;
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noise += noise & 1;
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noise >>= 1;
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// mod_switch
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uint64_t mod_switched = plaintext >> shift;
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mod_switched += mod_switched & 1;
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mod_switched >>= 1;
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mod_switched += noise;
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mod_switched %= 2 * poly_size;
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uint64_t out;
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// blind rotate & sample extract:
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// instead of doing a plynomial multiplication, then extracting the first
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// coeff, we directly extract the appropriate coeff from the tlu.
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if (mod_switched < poly_size)
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out = tlu[mod_switched];
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else
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out = -tlu[mod_switched % poly_size];
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double variance_bsk = security_curve()->getVariance(glwe_dim, poly_size, 64);
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double variance = concrete_cpu_variance_blind_rotate(
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input_lwe_dim, glwe_dim, poly_size, base_log, level, 64,
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mlir::concretelang::optimizer::DEFAULT_FFT_PRECISION, variance_bsk);
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return out + gaussian_noise(0, variance);
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}
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uint64_t sim_neg_lwe_u64(uint64_t plaintext) { return ~plaintext + 1; }
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void sim_encode_expand_lut_for_boostrap(
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uint64_t *out_allocated, uint64_t *out_aligned, uint64_t out_offset,
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uint64_t out_size, uint64_t out_stride, uint64_t *in_allocated,
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uint64_t *in_aligned, uint64_t in_offset, uint64_t in_size,
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uint64_t in_stride, uint32_t poly_size, uint32_t output_bits,
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bool is_signed) {
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return memref_encode_expand_lut_for_bootstrap(
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out_allocated, out_aligned, out_offset, out_size, out_stride,
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in_allocated, in_aligned, in_offset, in_size, in_stride, poly_size,
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output_bits, is_signed);
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}
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void sim_encode_plaintext_with_crt(uint64_t *output_allocated,
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uint64_t *output_aligned,
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uint64_t output_offset, uint64_t output_size,
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uint64_t output_stride, uint64_t input,
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uint64_t *mods_allocated,
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uint64_t *mods_aligned, uint64_t mods_offset,
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uint64_t mods_size, uint64_t mods_stride,
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uint64_t mods_product) {
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return memref_encode_plaintext_with_crt(
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output_allocated, output_aligned, output_offset, output_size,
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output_stride, input, mods_allocated, mods_aligned, mods_offset,
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mods_size, mods_stride, mods_product);
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}
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