use std::cell::LazyCell;
use feanor_math::algorithms::int_factor::is_prime_power;
use feanor_math::delegate::WrapHom;
use feanor_math::homomorphism::*;
use feanor_math::assert_el_eq;
use feanor_math::integer::{int_cast, IntegerRingStore};
use feanor_math::ring::*;
use feanor_math::rings::zn::ZnRingStore;
use crate::bfv::eval::AsBFVPlaintext;
use crate::bfv::eval::EncodedBFVPlaintextRing;
use crate::bfv::eval::EncodedBFVPlaintextRingBase;
use crate::bgv::SecretKeyDistribution;
use crate::bgv::modswitch::compute_optimal_special_modulus;
use crate::circuit::create_circuit_cached;
use crate::digit_extract::DigitExtract;
use crate::lin_transform::composite;
use crate::lin_transform::pow2;
use super::*;
pub struct ThinBootstrapper<Params: BFVInstantiation> {
digit_extract: DigitExtract,
slots_to_coeffs_thin: PlaintextCircuit<EncodedBFVPlaintextRingBase<Params>>,
coeffs_to_slots_thin: PlaintextCircuit<EncodedBFVPlaintextRingBase<Params>>,
plaintext_ring_hierarchy: Vec<PlaintextRing<Params>>,
slots_to_coeffs_plaintext_ring: EncodedBFVPlaintextRing<Params>,
intermediate_plaintext_ring: EncodedBFVPlaintextRing<Params>
}
impl<Params: BFVInstantiation> ThinBootstrapper<Params> {
#[instrument(skip_all)]
pub fn create(
instantiation: &Params,
original_plaintext_ring: PlaintextRing<Params>,
intermediate_plaintext_ring: PlaintextRing<Params>,
C: CiphertextRing<Params>,
slots_to_coeffs_thin: PlaintextCircuit<Params::PlaintextRing>,
coeffs_to_slots_thin: PlaintextCircuit<Params::PlaintextRing>,
digit_extract: DigitExtract,
slots_to_coeffs_ciphertext_ring: CiphertextRing<Params>
) -> Self {
let p = digit_extract.p();
let r = digit_extract.r();
let e = digit_extract.e();
let plaintext_ring_hierarchy = ((r + 1)..e).map(|k| instantiation.create_plaintext_ring(ZZbig.pow(ZZbig.clone_el(&p), k))).collect();
let slots_to_coeffs_plaintext_ring = EncodedBFVPlaintextRingBase::new(original_plaintext_ring, slots_to_coeffs_ciphertext_ring);
let intermediate_plaintext_ring = EncodedBFVPlaintextRingBase::new(intermediate_plaintext_ring, C);
let coeffs_to_slots_thin: PlaintextCircuit<EncodedBFVPlaintextRingBase<Params>> = coeffs_to_slots_thin.change_ring_uniform(|x|
x.change_ring(|x| WrapHom::to_delegate_ring(intermediate_plaintext_ring.get_ring()).map(x))
);
let slots_to_coeffs_thin: PlaintextCircuit<EncodedBFVPlaintextRingBase<Params>> = slots_to_coeffs_thin.change_ring_uniform(|x|
x.change_ring(|x| WrapHom::to_delegate_ring(slots_to_coeffs_plaintext_ring.get_ring()).map(x))
);
Self {
digit_extract,
coeffs_to_slots_thin,
slots_to_coeffs_thin,
intermediate_plaintext_ring,
plaintext_ring_hierarchy,
slots_to_coeffs_plaintext_ring
}
}
#[instrument(skip_all)]
pub fn build_pow2<const LOG: bool>(
instantiation: &Params,
P: &PlaintextRing<Params>,
C: &CiphertextRing<Params>,
v: usize,
digit_extract_error_bound: Option<usize>,
gk_digits: &RNSGadgetVectorDigitIndices,
cache_dir: Option<&str>
) -> Self
where Params::PlaintextRing: SerializableElementRing,
Params::CiphertextRing: Clone
{
let log2_m = ZZi64.abs_log2_ceil(&(instantiation.number_ring().galois_group().m() as i64)).unwrap();
assert_eq!(instantiation.number_ring().galois_group().m(), 1 << log2_m);
let t = int_cast(P.base_ring().integer_ring().clone_el(P.base_ring().modulus()), ZZbig, P.base_ring().integer_ring());
let (p, r) = is_prime_power(&ZZbig, &t).unwrap();
let e = r + v;
if LOG {
println!("Setting up bootstrapping for plaintext modulus p^r = {}^{} = {} within the cyclotomic ring {:?}", ZZbig.format(&p), r, ZZbig.format(&t), instantiation.number_ring());
println!("Using e = r + v = {} + {}", r, v);
}
let plaintext_ring = instantiation.create_plaintext_ring(ZZbig.pow(ZZbig.clone_el(&p), e));
let original_plaintext_ring = instantiation.create_plaintext_ring(ZZbig.pow(ZZbig.clone_el(&p), r));
let digit_extract = if let Some(B) = digit_extract_error_bound {
assert_eq!(1, v, "if `digit_extract_error_bound` is set, `v` must be 1");
DigitExtract::new_bounded_error(int_cast(ZZbig.clone_el(&p), ZZi64, ZZbig), e, B as i64)
} else {
DigitExtract::new_default(int_cast(ZZbig.clone_el(&p), ZZi64, ZZbig), e, r)
};
let H = LazyCell::new(|| {
let hypercube = HypercubeStructure::default_pow2_hypercube(plaintext_ring.acting_galois_group(), ZZbig.clone_el(&p));
HypercubeIsomorphism::new::<LOG>(&&plaintext_ring, &hypercube, cache_dir)
});
let original_H = LazyCell::new(|| H.change_modulus(&original_plaintext_ring));
let m = plaintext_ring.number_ring().galois_group().m();
let slots_to_coeffs = create_circuit_cached::<_, _, LOG>(&original_plaintext_ring, &filename_keys![slots2coeffs, m: m, p: &p, r: r], cache_dir, || pow2::slots_to_coeffs_thin(&original_H));
let coeffs_to_slots = create_circuit_cached::<_, _, LOG>(&plaintext_ring, &filename_keys![coeffs2slots, m: m, p: &p, e: e], cache_dir, || pow2::coeffs_to_slots_thin(&H));
let min_rns_factor_log2 = C.base_ring().as_iter().map(|rns_factor| *rns_factor.modulus() as i64).map(|rns_factor| (rns_factor as f64).log2()).min_by(f64::total_cmp).unwrap();
let slots_to_coeffs_rns_factors = ((ZZbig.abs_log2_ceil(&t).unwrap() as f64 + P.number_ring().product_expansion_factor().log2()) * log2_m as f64 / min_rns_factor_log2).ceil() as usize;
let slots_to_coeffs_ciphertext_ring = {
let (drop_additional, special_modulus) = compute_optimal_special_modulus(C.get_ring(), RNSFactorIndexList::empty_ref(), C.base_ring().len().saturating_sub(slots_to_coeffs_rns_factors), gk_digits);
RingValue::from(C.get_ring().drop_rns_factor(&drop_additional.subtract(&special_modulus)))
};
return Self::create(
instantiation,
original_plaintext_ring,
plaintext_ring,
C.clone(),
slots_to_coeffs,
coeffs_to_slots,
digit_extract,
slots_to_coeffs_ciphertext_ring
);
}
#[instrument(skip_all)]
pub fn build_odd<const LOG: bool>(
instantiation: &Params,
P: &PlaintextRing<Params>,
C: &CiphertextRing<Params>,
v: usize,
digit_extract_error_bound: Option<usize>,
gk_digits: &RNSGadgetVectorDigitIndices,
cache_dir: Option<&str>
) -> Self
where Params::PlaintextRing: SerializableElementRing,
Params::CiphertextRing: Clone
{
assert!(instantiation.number_ring().galois_group().m() % 2 != 0);
let t = int_cast(P.base_ring().integer_ring().clone_el(P.base_ring().modulus()), ZZbig, P.base_ring().integer_ring());
let (p, r) = is_prime_power(&ZZbig, &t).unwrap();
let e = r + v;
if LOG {
println!("Setting up bootstrapping for plaintext modulus p^r = {}^{} = {} within the cyclotomic ring {:?}", ZZbig.format(&p), r, ZZbig.format(&t), instantiation.number_ring());
println!("Using e = r + v = {} + {}", r, v);
}
let plaintext_ring = instantiation.create_plaintext_ring(ZZbig.pow(ZZbig.clone_el(&p), e));
let original_plaintext_ring = instantiation.create_plaintext_ring(ZZbig.pow(ZZbig.clone_el(&p), r));
let p_i64 = int_cast(ZZbig.clone_el(&p), ZZi64, ZZbig);
let digit_extract = if p_i64 == 2 && e <= 23 && digit_extract_error_bound.is_none() {
DigitExtract::new_precomputed_p_is_2(p_i64, e, r)
} else if let Some(B) = digit_extract_error_bound {
assert_eq!(1, v, "if `digit_extract_error_bound` is set, `v` must be 1");
DigitExtract::new_bounded_error(int_cast(ZZbig.clone_el(&p), ZZi64, ZZbig), e, B as i64)
} else {
DigitExtract::new_default(p_i64, e, r)
};
let H = LazyCell::new(|| {
let hypercube = HypercubeStructure::halevi_shoup_hypercube(plaintext_ring.acting_galois_group(), ZZbig.clone_el(&p));
HypercubeIsomorphism::new::<LOG>(&&plaintext_ring, &hypercube, cache_dir)
});
let original_H = LazyCell::new(|| H.change_modulus(&original_plaintext_ring));
let m = plaintext_ring.number_ring().galois_group().m();
let slots_to_coeffs = create_circuit_cached::<_, _, LOG>(&original_plaintext_ring, &filename_keys![slots2coeffs, m: m, p: &p, r: r], cache_dir, || composite::slots_to_powcoeffs_thin(&original_H));
let coeffs_to_slots = create_circuit_cached::<_, _, LOG>(&plaintext_ring, &filename_keys![coeffs2slots, m: m, p: &p, e: e], cache_dir, || composite::powcoeffs_to_slots_thin(&H));
let min_rns_factor_log2 = C.base_ring().as_iter().map(|rns_factor| *rns_factor.modulus() as i64).map(|rns_factor| (rns_factor as f64).log2()).min_by(f64::total_cmp).unwrap();
let slots_to_coeffs_rns_factors = (ZZbig.abs_log2_ceil(&t).unwrap() as f64 * (m as f64).log2() / min_rns_factor_log2).ceil() as usize;
let slots_to_coeffs_ciphertext_ring = {
let (drop_additional, special_modulus) = compute_optimal_special_modulus(C.get_ring(), RNSFactorIndexList::empty_ref(), C.base_ring().len().saturating_sub(slots_to_coeffs_rns_factors), gk_digits);
RingValue::from(C.get_ring().drop_rns_factor(&drop_additional.subtract(&special_modulus)))
};
return Self::create(
instantiation,
original_plaintext_ring,
plaintext_ring,
C.clone(),
slots_to_coeffs,
coeffs_to_slots,
digit_extract,
slots_to_coeffs_ciphertext_ring
);
}
pub fn r(&self) -> usize {
self.digit_extract.e() - self.digit_extract.v()
}
pub fn e(&self) -> usize {
self.digit_extract.e()
}
pub fn v(&self) -> usize {
self.digit_extract.v()
}
pub fn p(&self) -> El<BigIntRing> {
ZZbig.clone_el(self.digit_extract.p())
}
pub fn intermediate_plaintext_ring(&self) -> &PlaintextRing<Params> {
self.intermediate_plaintext_ring.get_ring().plaintext_ring()
}
pub fn base_plaintext_ring(&self) -> &PlaintextRing<Params> {
self.slots_to_coeffs_plaintext_ring.get_ring().plaintext_ring()
}
pub fn coeffs_to_slots_ciphertext_ring(&self) -> &CiphertextRing<Params> {
self.slots_to_coeffs_plaintext_ring.get_ring().ciphertext_ring()
}
pub fn main_ciphertext_ring(&self) -> &CiphertextRing<Params> {
self.intermediate_plaintext_ring.get_ring().ciphertext_ring()
}
pub fn required_galois_keys(&self, P: &PlaintextRing<Params>) -> Vec<GaloisGroupEl> {
let mut result = Vec::new();
result.extend(self.slots_to_coeffs_thin.required_galois_keys(&P.acting_galois_group()).into_iter());
result.extend(self.coeffs_to_slots_thin.required_galois_keys(&P.acting_galois_group()).into_iter());
result.sort_by_key(|g| P.acting_galois_group().representative(g));
result.dedup_by(|g, s| P.acting_galois_group().eq_el(g, s));
return result;
}
#[instrument(skip_all)]
pub fn bootstrap_thin<const LOG: bool>(
&self,
C: &CiphertextRing<Params>,
C_mul: &CiphertextRing<Params>,
P: &PlaintextRing<Params>,
ct: Ciphertext<Params>,
rk: &RelinKey<Params>,
gks: &[(GaloisGroupEl, KeySwitchKey<Params>)],
sk_encaps_data: Option<&SparseKeyEncapsulationKey<Params>>,
debug_sk: Option<&SecretKey<Params>>
) -> Ciphertext<Params> {
assert!(LOG || debug_sk.is_none());
let ZZ = P.base_ring().integer_ring();
assert_el_eq!(ZZbig, ZZbig.pow(self.p(), self.r()), int_cast(ZZ.clone_el(P.base_ring().modulus()), ZZbig, ZZ));
assert!(self.base_plaintext_ring().get_ring() == P.get_ring());
assert!(self.main_ciphertext_ring().get_ring() == C.get_ring());
let P_base = self.base_plaintext_ring();
log_time::<_, _, LOG, _>("Performing thin bootstrapping", |[]| {
if let Some(sk) = debug_sk {
Params::dec_println_slots(P_base, C, &ct, sk, None);
}
let C_input = self.coeffs_to_slots_ciphertext_ring();
let ct_input = Params::mod_switch_ct(P_base, &C_input, C, ct);
let C_to_C_input_drop_factors = RNSFactorIndexList::missing_from(C_input.base_ring(), C.base_ring());
let sk_input = debug_sk.map(|sk| C_input.get_ring().drop_rns_factor_element(C.get_ring(), &C_to_C_input_drop_factors, &sk));
if let Some(sk) = &sk_input {
Params::dec_println_slots(P_base, &C_input, &ct_input, sk, None);
}
let values_in_coefficients = log_time::<_, _, LOG, _>("1. Computing Slots-to-Coeffs transform", |[key_switches]| {
let galois_group = P_base.acting_galois_group();
let modswitched_gks = self.slots_to_coeffs_thin.required_galois_keys(&galois_group).iter().map(|g| {
if let Some((_, gk)) = gks.iter().filter(|(provided_g, _)| galois_group.eq_el(g, provided_g)).next() {
(g.clone(), (
gk.0.clone(C.get_ring()).modulus_switch(C_input.get_ring(), &C_to_C_input_drop_factors, C.get_ring()),
gk.1.clone(C.get_ring()).modulus_switch(C_input.get_ring(), &C_to_C_input_drop_factors, C.get_ring()),
))
} else {
panic!("missing galois key for {}", galois_group.underlying_ring().format(galois_group.as_ring_el(g)))
}
}).collect::<Vec<_>>();
let result = self.slots_to_coeffs_thin.evaluate_bfv::<Params, _>(
&self.slots_to_coeffs_plaintext_ring,
P_base,
&C_input,
None,
std::slice::from_ref(&ct_input),
None,
&modswitched_gks,
key_switches,
None
);
assert_eq!(1, result.len());
return result.into_iter().next().unwrap();
});
if let Some(sk) = &sk_input {
Params::dec_println(P_base, &C_input, &values_in_coefficients, sk);
}
let P_main = self.intermediate_plaintext_ring();
assert_el_eq!(ZZbig, ZZbig.pow(self.p(), self.e()), int_cast(ZZ.clone_el(P_main.base_ring().modulus()), ZZbig, ZZ));
let noisy_decryption = if let Some(sk_encaps_data) = sk_encaps_data {
let ct_with_sparse_key = log_time::<_, _, LOG, _>("2.1. Switching to sparse key", |[]| {
let ct_modswitched = Params::mod_switch_ct(&P_base, &sk_encaps_data.C_sparse_sk, &C_input, values_in_coefficients);
Params::key_switch(&sk_encaps_data.C_sparse_sk, ct_modswitched, &sk_encaps_data.switch_to_sparse_key)
});
if let Some(sk) = &debug_sk {
Params::dec_println(P_base, &sk_encaps_data.C_sparse_sk, &ct_with_sparse_key, &Params::mod_switch_sk(P_base, &sk_encaps_data.C_sparse_sk, C, sk));
}
log_time::<_, _, LOG, _>("2.2. Computing noisy decryption c0 + c1 * s", |[]| {
let (c0, c1) = Params::mod_switch_to_plaintext(P_main, &sk_encaps_data.C_sparse_sk, ct_with_sparse_key);
return Params::hom_add_plain(P_main, C, &c0, Params::hom_mul_plain(P_main, C, &c1, Params::clone_ct(C, &sk_encaps_data.encapsulated_key)));
})
} else {
log_time::<_, _, LOG, _>("2. Computing noisy decryption c0 + c1 * s", |[]| {
let (c0, c1) = Params::mod_switch_to_plaintext(P_main, &C_input, values_in_coefficients);
let enc_sk = Params::enc_sk(P_main, C);
return Params::hom_add_plain(P_main, C, &c0, Params::hom_mul_plain(P_main, C, &c1, enc_sk));
})
};
if let Some(sk) = debug_sk {
Params::dec_println(P_main, C, &noisy_decryption, sk);
}
let noisy_decryption_in_slots = log_time::<_, _, LOG, _>("3. Computing Coeffs-to-Slots transform", |[key_switches]| {
let result = self.coeffs_to_slots_thin.evaluate_bfv::<Params, _>(
&self.intermediate_plaintext_ring,
P_main,
C,
None,
std::slice::from_ref(&noisy_decryption),
None,
gks,
key_switches,
None
);
assert_eq!(1, result.len());
return result.into_iter().next().unwrap();
});
if let Some(sk) = debug_sk {
Params::dec_println_slots(P_main, C, &noisy_decryption_in_slots, sk, None);
}
let result = log_time::<_, _, LOG, _>("4. Performing digit extraction", |[key_switches]| {
let rounding_divisor_half = P_main.base_ring().coerce(&ZZbig, ZZbig.rounded_div(ZZbig.pow(self.p(), self.v()), &ZZbig.int_hom().map(2)));
let digit_extraction_input = Params::hom_add_plain(P_main, C, &P_main.inclusion().map(rounding_divisor_half), noisy_decryption_in_slots);
self.digit_extract.evaluate_bfv::<Params>(P_base, &self.plaintext_ring_hierarchy, P_main, C, C_mul, digit_extraction_input, rk, key_switches, debug_sk).0
});
return result;
})
}
}
pub struct SparseKeyEncapsulationKey<Params: BFVInstantiation> {
pub C_sparse_sk: CiphertextRing<Params>,
pub switch_to_sparse_key: KeySwitchKey<Params>,
pub encapsulated_key: Ciphertext<Params>
}
impl<Params> SparseKeyEncapsulationKey<Params>
where Params: BFVInstantiation,
Params::PlaintextRing: AsBFVPlaintext<Params>
{
pub fn create<R: CryptoRng + Rng>(P: &PlaintextRing<Params>, C: &CiphertextRing<Params>, C_sparse_sk: CiphertextRing<Params>, sparse_sk: SecretKey<Params>, standard_sk: &SecretKey<Params>, mut rng: R, noise_sigma: f64) -> Self {
let switch_to_sparse_key = Params::gen_switch_key(
&C_sparse_sk,
&mut rng,
&Params::mod_switch_sk(P, &C_sparse_sk, C, standard_sk),
&sparse_sk,
&RNSGadgetVectorDigitIndices::select_digits(C_sparse_sk.base_ring().len(), C_sparse_sk.base_ring().len()),
noise_sigma
);
let ZZ_to_Pbase = P.base_ring().can_hom(P.base_ring().integer_ring()).unwrap().compose(P.base_ring().integer_ring().can_hom(&ZZbig).unwrap());
let sparse_sk_as_plain = P.from_canonical_basis(C_sparse_sk.wrt_canonical_basis(&sparse_sk).iter().map(|x| ZZ_to_Pbase.map(C_sparse_sk.base_ring().smallest_lift(x))));
let encapsulated_key = Params::enc_sym(P, C, &mut rng, &sparse_sk_as_plain, standard_sk, noise_sigma);
SparseKeyEncapsulationKey {
switch_to_sparse_key: switch_to_sparse_key,
encapsulated_key: encapsulated_key,
C_sparse_sk: C_sparse_sk
}
}
pub fn new<R: CryptoRng + Rng>(P: &PlaintextRing<Params>, C: &CiphertextRing<Params>, standard_sk: &SecretKey<Params>, C_sparse_rns_factor_count: usize, hwt: usize, mut rng: R, noise_sigma: f64) -> Self {
let C_sparse_sk = RingValue::from(C.get_ring().drop_rns_factor(&RNSFactorIndexList::from(C.base_ring().len().checked_sub(C_sparse_rns_factor_count).unwrap()..C.base_ring().len(), C.base_ring().len())));
let sparse_sk = Params::gen_sk(&C_sparse_sk, &mut rng, SecretKeyDistribution::SparseWithHwt(hwt));
return Self::create(P, C, C_sparse_sk, sparse_sk, standard_sk, rng, noise_sigma);
}
}
impl DigitExtract {
pub fn evaluate_bfv<Params: BFVInstantiation>(&self,
P_base: &PlaintextRing<Params>,
P_intermediate: &[PlaintextRing<Params>],
P_main: &PlaintextRing<Params>,
C: &CiphertextRing<Params>,
C_mul: &CiphertextRing<Params>,
input: Ciphertext<Params>,
rk: &RelinKey<Params>,
key_switches: &mut usize,
debug_sk: Option<&SecretKey<Params>>
) -> (Ciphertext<Params>, Ciphertext<Params>) {
let ZZ = P_base.base_ring().integer_ring();
let (p, actual_r) = is_prime_power(ZZ, P_base.base_ring().modulus()).unwrap();
assert!(actual_r >= self.r());
assert_eq!(self.e() - self.r() - 1, P_intermediate.len());
assert_el_eq!(ZZbig, self.p(), int_cast(ZZ.clone_el(&p), ZZbig, ZZ));
for i in 0..(self.e() - self.r() - 1) {
assert_el_eq!(ZZbig, ZZbig.pow(ZZbig.clone_el(self.p()), actual_r + i + 1), int_cast(ZZ.clone_el(P_intermediate[i].base_ring().modulus()), ZZbig, ZZ));
}
let get_P = |exp: usize| if exp == self.r() {
P_base
} else if exp == self.e() {
P_main
} else {
&P_intermediate[exp - self.r() - 1]
};
let result = self.evaluate_generic(
input,
|exp, params, circuit| {
circuit.evaluate_bfv::<Params, _>(
ZZi64,
get_P(exp),
C,
Some(C_mul),
params,
Some(rk),
&[],
key_switches,
debug_sk
)
},
|exp_from, _, x| {
if let Some(sk) = debug_sk {
Params::dec_println_slots(get_P(exp_from), C, &x, sk, Some("."));
}
return x;
}
);
return result;
}
}
#[test]
fn test_pow2_bfv_thin_bootstrapping_17() {
let mut rng = rand::rng();
let params = Pow2BFV::new(1 << 8);
let t = 17;
let P = params.create_plaintext_ring(int_cast(t, ZZbig, ZZi64));
let (C, C_mul) = params.create_ciphertext_rings(790..800);
let digits = RNSGadgetVectorDigitIndices::select_digits(3, C.base_ring().len());
let bootstrapper = ThinBootstrapper::build_pow2::<true>(¶ms, &P, &C, 2, None, &digits, Some("."));
let sk = Pow2BFV::gen_sk(&C, &mut rng, SecretKeyDistribution::UniformTernary);
let gk = bootstrapper.required_galois_keys(&P).into_iter().map(|g| {
let gk = Pow2BFV::gen_gk(&C, &mut rng, &sk, &g, &digits, 3.2);
(g, gk)
}).collect::<Vec<_>>();
let rk = Pow2BFV::gen_rk(&C, &mut rng, &sk, &digits, 3.2);
let m = P.int_hom().map(2);
let ct = Pow2BFV::enc_sym(&P, &C, &mut rng, &m, &sk, 3.2);
let res_ct = bootstrapper.bootstrap_thin::<true>(
&C,
&C_mul,
&P,
ct,
&rk,
&gk,
None,
Some(&sk)
);
Pow2BFV::dec_println_slots(&P, &C, &res_ct, &sk, Some("."));
assert_el_eq!(P, P.int_hom().map(2), Pow2BFV::dec(&P, &C, res_ct, &sk));
}
#[test]
fn test_pow2_bfv_thin_bootstrapping_23() {
let mut rng = rand::rng();
let params = Pow2BFV::new(1 << 8);
let t = 23;
let P = params.create_plaintext_ring(int_cast(t, ZZbig, ZZi64));
let (C, C_mul) = params.create_ciphertext_rings(790..800);
let digits = RNSGadgetVectorDigitIndices::select_digits(3, C.base_ring().len());
let bootstrapper = ThinBootstrapper::build_pow2::<true>(¶ms, &P, &C, 2, None, &digits, Some("."));
let sk = Pow2BFV::gen_sk(&C, &mut rng, SecretKeyDistribution::UniformTernary);
let gk = bootstrapper.required_galois_keys(&P).into_iter().map(|g| {
let gk = Pow2BFV::gen_gk(&C, &mut rng, &sk, &g, &digits, 3.2);
(g, gk)
}).collect::<Vec<_>>();
let rk = Pow2BFV::gen_rk(&C, &mut rng, &sk, &digits, 3.2);
let m = P.int_hom().map(2);
let ct = Pow2BFV::enc_sym(&P, &C, &mut rng, &m, &sk, 3.2);
let res_ct = bootstrapper.bootstrap_thin::<true>(
&C,
&C_mul,
&P,
ct,
&rk,
&gk,
None,
None
);
assert_el_eq!(P, P.int_hom().map(2), Pow2BFV::dec(&P, &C, res_ct, &sk));
}
#[test]
fn test_pow2_bfv_thin_bootstrapping_sparse_key_encapsulation() {
let mut rng = rand::rng();
let params = Pow2BFV::new(1 << 8);
let t = 17;
let P = params.create_plaintext_ring(int_cast(t, ZZbig, ZZi64));
let (C, C_mul) = params.create_ciphertext_rings(790..800);
let digits = RNSGadgetVectorDigitIndices::select_digits(3, C.base_ring().len());
let bootstrapper = ThinBootstrapper::build_pow2::<true>(¶ms, &P, &C, 2, None, &digits, Some("."));
let sk = Pow2BFV::gen_sk(&C, &mut rng, SecretKeyDistribution::UniformTernary);
let gk = bootstrapper.required_galois_keys(&P).into_iter().map(|g| {
let gk = Pow2BFV::gen_gk(&C, &mut rng, &sk, &g, &digits, 3.2);
(g, gk)
}).collect::<Vec<_>>();
let rk = Pow2BFV::gen_rk(&C, &mut rng, &sk, &digits, 3.2);
let encaps = SparseKeyEncapsulationKey::new(bootstrapper.intermediate_plaintext_ring(), &C, &sk, 2, 16, &mut rng, 3.2);
let m = P.int_hom().map(2);
let ct = Pow2BFV::enc_sym(&P, &C, &mut rng, &m, &sk, 3.2);
let res_ct = bootstrapper.bootstrap_thin::<true>(
&C,
&C_mul,
&P,
ct,
&rk,
&gk,
Some(&encaps),
Some(&sk)
);
assert_el_eq!(P, P.int_hom().map(2), Pow2BFV::dec(&P, &C, res_ct, &sk));
}
#[test]
fn test_composite_bfv_thin_bootstrapping_2() {
let mut rng = rand::rng();
let params = CompositeBFV::new(31, 11);
let t = 8;
let P = params.create_plaintext_ring(int_cast(t, ZZbig, ZZi64));
let (C, C_mul) = params.create_ciphertext_rings(685..700);
let digits = RNSGadgetVectorDigitIndices::select_digits(3, C.base_ring().len());
let bootstrapper = ThinBootstrapper::build_odd::<true>(¶ms, &P, &C, 9, None, &digits, Some("."));
let sk = CompositeBFV::gen_sk(&C, &mut rng, SecretKeyDistribution::UniformTernary);
let gk = bootstrapper.required_galois_keys(&P).into_iter().map(|g| {
let gk = CompositeBFV::gen_gk(&C, &mut rng, &sk, &g, &digits, 3.2);
(g, gk)
}).collect::<Vec<_>>();
let rk = CompositeBFV::gen_rk(&C, &mut rng, &sk, &digits, 3.2);
let m = P.int_hom().map(2);
let ct = CompositeBFV::enc_sym(&P, &C, &mut rng, &m, &sk, 3.2);
let res_ct = bootstrapper.bootstrap_thin::<true>(
&C,
&C_mul,
&P,
ct,
&rk,
&gk,
None,
None
);
assert_el_eq!(P, P.int_hom().map(2), CompositeBFV::dec(&P, &C, res_ct, &sk));
}
#[test]
fn test_digit_extract_homomorphic() {
let mut rng = rand::rng();
let params = Pow2BFV::new(1 << 7);
let P1 = params.create_plaintext_ring(int_cast(17 * 17, ZZbig, ZZi64));
let P2 = params.create_plaintext_ring(int_cast(17 * 17 * 17, ZZbig, ZZi64));
let (C, C_mul) = params.create_ciphertext_rings(790..800);
let sk = Pow2BFV::gen_sk(&C, &mut rng, SecretKeyDistribution::UniformTernary);
let rk = Pow2BFV::gen_rk(&C, &mut rng, &sk, &RNSGadgetVectorDigitIndices::select_digits(7, C.base_ring().len()), 3.2);
let m = P2.int_hom().map(17 * 17 + 2 * 17 + 5);
let ct = Pow2BFV::enc_sym(&P2, &C, &mut rng, &m, &sk, 3.2);
let digitextract = DigitExtract::new_default(17, 2, 1);
let (ct_high, ct_low) = digitextract.evaluate_bfv::<Pow2BFV>(&P1, &[], &P2, &C, &C_mul, ct, &rk, &mut 0, Some(&sk));
let m_high = Pow2BFV::dec(&P1, &C, Pow2BFV::clone_ct(&C, &ct_high), &sk);
assert!(P1.wrt_canonical_basis(&m_high).iter().skip(1).all(|x| P1.base_ring().is_zero(&x)));
let m_high = P1.base_ring().smallest_positive_lift(P1.wrt_canonical_basis(&m_high).at(0));
assert_eq!(2, m_high % 17);
let m_low = Pow2BFV::dec(&P2, &C, Pow2BFV::clone_ct(&C, &ct_low), &sk);
assert!(P1.wrt_canonical_basis(&m_low).iter().skip(1).all(|x| P2.base_ring().is_zero(&x)));
let m_low = P1.base_ring().smallest_positive_lift(P1.wrt_canonical_basis(&m_low).at(0));
assert_eq!(5, m_low % (17 * 17));
}
#[test]
#[ignore]
fn measure_time_double_rns_composite_bfv_thin_bootstrapping() {
let (chrome_layer, _guard) = tracing_chrome::ChromeLayerBuilder::new().build();
let filtered_chrome_layer = chrome_layer.with_filter(tracing_subscriber::filter::filter_fn(|metadata| !["small_basis_to_mult_basis", "mult_basis_to_small_basis", "small_basis_to_coeff_basis", "coeff_basis_to_small_basis"].contains(&metadata.name())));
tracing_subscriber::registry().with(filtered_chrome_layer).init();
let mut rng = rand::rng();
let params = CompositeBFV::new(37, 949);
let t = 4;
let P = params.create_plaintext_ring(int_cast(t, ZZbig, ZZi64));
let (C, C_mul) = params.create_ciphertext_rings(805..820);
let gk_digits = RNSGadgetVectorDigitIndices::select_digits(7, C.base_ring().len());
let rk_digits = RNSGadgetVectorDigitIndices::select_digits(5, C.base_ring().len());
let bootstrapper = ThinBootstrapper::build_odd::<true>(¶ms, &P, &C, 6, None, &gk_digits, Some("."));
let sk = CompositeBFV::gen_sk(&C, &mut rng, SecretKeyDistribution::UniformTernary);
let gk = bootstrapper.required_galois_keys(&P).into_iter().map(|g| {
let gk = CompositeBFV::gen_gk(&C, &mut rng, &sk, &g, &gk_digits, 3.2);
(g, gk)
}).collect::<Vec<_>>();
let rk = CompositeBFV::gen_rk(&C, &mut rng, &sk, &rk_digits, 3.2);
let encaps = SparseKeyEncapsulationKey::new(bootstrapper.intermediate_plaintext_ring(), &C, &sk, 2, 32, &mut rng, 3.2);
let m = P.int_hom().map(2);
let ct = CompositeBFV::enc_sym(&P, &C, &mut rng, &m, &sk, 3.2);
let res_ct = bootstrapper.bootstrap_thin::<true>(
&C,
&C_mul,
&P,
ct,
&rk,
&gk,
Some(&encaps),
None
);
println!("final noise budget: {}", CompositeBFV::noise_budget(&P, &C, &res_ct, &sk));
assert_el_eq!(P, P.int_hom().map(2), CompositeBFV::dec(&P, &C, res_ct, &sk));
}
#[test]
#[ignore]
fn measure_time_double_rns_pow2_bfv_thin_bootstrapping() {
let (chrome_layer, _guard) = tracing_chrome::ChromeLayerBuilder::new().build();
let filtered_chrome_layer = chrome_layer.with_filter(tracing_subscriber::filter::filter_fn(|metadata| !["small_basis_to_mult_basis", "mult_basis_to_small_basis", "small_basis_to_coeff_basis", "coeff_basis_to_small_basis"].contains(&metadata.name())));
tracing_subscriber::registry().with(filtered_chrome_layer).init();
let mut rng = rand::rng();
let params = Pow2BFV::new(1 << 16);
let t = 257;
let P = params.create_plaintext_ring(int_cast(t, ZZbig, ZZi64));
let (C, C_mul) = params.create_ciphertext_rings(805..820);
let gk_digits = RNSGadgetVectorDigitIndices::select_digits(7, C.base_ring().len());
let rk_digits = RNSGadgetVectorDigitIndices::select_digits(5, C.base_ring().len());
let bootstrapper = ThinBootstrapper::build_pow2::<true>(¶ms, &P, &C, 1, Some(6), &gk_digits, Some("."));
let sk = Pow2BFV::gen_sk(&C, &mut rng, SecretKeyDistribution::SparseWithHwt(128));
let gk = bootstrapper.required_galois_keys(&P).into_iter().map(|g| {
let gk = Pow2BFV::gen_gk(&C, &mut rng, &sk, &g, &gk_digits, 3.2);
(g, gk)
}).collect::<Vec<_>>();
let rk = Pow2BFV::gen_rk(&C, &mut rng, &sk, &rk_digits, 3.2);
let encaps = SparseKeyEncapsulationKey::new(bootstrapper.intermediate_plaintext_ring(), &C, &sk, 2, 32, &mut rng, 3.2);
let m = P.int_hom().map(2);
let ct = Pow2BFV::enc_sym(&P, &C, &mut rng, &m, &sk, 3.2);
let res_ct = bootstrapper.bootstrap_thin::<true>(
&C,
&C_mul,
&P,
ct,
&rk,
&gk,
Some(&encaps),
None
);
println!("final noise budget: {}", Pow2BFV::noise_budget(&P, &C, &res_ct, &sk));
assert_el_eq!(P, P.int_hom().map(2), Pow2BFV::dec(&P, &C, res_ct, &sk));
}
#[test]
#[ignore]
fn measure_time_single_rns_composite_bfv_thin_bootstrapping() {
let (chrome_layer, _guard) = tracing_chrome::ChromeLayerBuilder::new().build();
let filtered_chrome_layer = chrome_layer.with_filter(tracing_subscriber::filter::filter_fn(|metadata| !["small_basis_to_mult_basis", "mult_basis_to_small_basis", "small_basis_to_coeff_basis", "coeff_basis_to_small_basis"].contains(&metadata.name())));
tracing_subscriber::registry().with(filtered_chrome_layer).init();
let mut rng = rand::rng();
let params = CompositeSingleRNSBFV::new(37, 949);
let t = 4;
let P = params.create_plaintext_ring(int_cast(t, ZZbig, ZZi64));
let (C, C_mul) = params.create_ciphertext_rings(805..820);
let gk_digits = RNSGadgetVectorDigitIndices::select_digits(7, C.base_ring().len());
let rk_digits = RNSGadgetVectorDigitIndices::select_digits(5, C.base_ring().len());
let bootstrapper = ThinBootstrapper::build_odd::<true>(¶ms, &P, &C, 6, None, &gk_digits, Some("."));
let sk = CompositeSingleRNSBFV::gen_sk(&C, &mut rng, SecretKeyDistribution::UniformTernary);
let gk = bootstrapper.required_galois_keys(&P).into_iter().map(|g| {
let gk = CompositeSingleRNSBFV::gen_gk(&C, &mut rng, &sk, &g, &gk_digits, 3.2);
return (g, gk);
}).collect::<Vec<_>>();
let rk = CompositeSingleRNSBFV::gen_rk(&C, &mut rng, &sk, &rk_digits, 3.2);
let encaps = SparseKeyEncapsulationKey::new(bootstrapper.intermediate_plaintext_ring(), &C, &sk, 2, 32, &mut rng, 3.2);
let m = P.int_hom().map(2);
let ct = CompositeSingleRNSBFV::enc_sym(&P, &C, &mut rng, &m, &sk, 3.2);
let res_ct = bootstrapper.bootstrap_thin::<true>(
&C,
&C_mul,
&P,
ct,
&rk,
&gk,
Some(&encaps),
None
);
println!("final noise budget: {}", CompositeSingleRNSBFV::noise_budget(&P, &C, &res_ct, &sk));
assert_el_eq!(P, P.int_hom().map(2), CompositeSingleRNSBFV::dec(&P, &C, res_ct, &sk));
}