use std::{marker::PhantomData, ops::Rem};
use midnight_proofs::{
circuit::{Chip, Layouter},
plonk::{Advice, Column, ConstraintSystem, Constraints, Error, Expression, Selector},
poly::Rotation,
};
use num_bigint::{BigInt as BI, ToBigInt};
use num_traits::One;
use crate::{
ecc::curves::WeierstrassCurve,
field::foreign::{
field_chip::FieldChipConfig,
params::FieldEmulationParams,
util::{
compute_u, compute_vj, get_advice_vec, get_identity_auxiliary_bounds, pair_wise_prod,
signed_mod, signed_repr, sum_bigints, sum_exprs, urem,
},
FieldChip,
},
instructions::NativeInstructions,
types::{AssignedBit, AssignedField, InnerValue},
utils::util::bigint_to_fe,
CircuitField,
};
#[derive(Clone, Debug, Eq, PartialEq)]
pub struct TangentConfig<C: WeierstrassCurve> {
q_tangent: Selector,
u_bounds: (BI, BI),
vs_bounds: Vec<(BI, BI)>,
cond_col: Column<Advice>,
_marker: PhantomData<C>,
}
impl<C: WeierstrassCurve> TangentConfig<C> {
pub fn bounds<F, P>(
nb_parallel_range_checks: usize,
max_bit_len: u32,
) -> ((BI, BI), Vec<(BI, BI)>)
where
F: CircuitField,
P: FieldEmulationParams<F, C::Base>,
{
let base = BI::from(2).pow(P::LOG2_BASE);
let nb_limbs = P::NB_LIMBS;
let moduli = P::moduli();
let bs = P::base_powers();
let bs2 = P::double_base_powers();
let a: BI = signed_repr::<C::Base>()(C::A.to_biguint().into());
let a_plus_1 = &a + BI::one();
let limbs_max = vec![&base - BI::one(); nb_limbs as usize];
let limbs_max2 = vec![(&base - BI::one()).pow(2); (nb_limbs * nb_limbs) as usize];
let max_sum_px = sum_bigints(&bs, &limbs_max);
let max_sum_py = max_sum_px.clone();
let max_sum_lambda = max_sum_px.clone();
let max_sum_px2 = sum_bigints(&bs2, &limbs_max2);
let max_sum_lpy = max_sum_px2.clone();
let expr_min =
-BI::from(2) * (max_sum_py + max_sum_lambda + max_sum_lpy) + a_plus_1.clone();
let expr_max = BI::from(3) * (&max_sum_px + &max_sum_px + max_sum_px2) + a_plus_1.clone();
let expr_bounds = (expr_min, expr_max);
let expr_mj_bounds: Vec<_> = moduli
.iter()
.map(|mj| {
let bs_mj = bs.iter().map(|b| b.rem(mj)).collect::<Vec<_>>();
let bs2_mj = bs2.iter().map(|b| b.rem(mj)).collect::<Vec<_>>();
let max_sum_px_mj = sum_bigints(&bs_mj, &limbs_max);
let max_sum_py_mj = max_sum_px_mj.clone();
let max_sum_lambda_mj = max_sum_px_mj.clone();
let max_sum_px2_mj = sum_bigints(&bs2_mj, &limbs_max2);
let max_sum_lpy_mj = max_sum_px2_mj.clone();
let a_plus_1_mj = signed_mod(&a_plus_1, mj);
let expr_mj_min = -BI::from(2)
* (max_sum_py_mj + max_sum_lambda_mj + max_sum_lpy_mj)
+ a_plus_1_mj.clone();
let expr_mj_max =
BI::from(3) * (&max_sum_px_mj + &max_sum_px_mj + max_sum_px2_mj) + a_plus_1_mj;
(expr_mj_min, expr_mj_max)
})
.collect();
get_identity_auxiliary_bounds::<F, C::Base>(
"tangent",
&moduli,
expr_bounds,
&expr_mj_bounds,
nb_parallel_range_checks,
max_bit_len,
)
}
pub fn configure<F, P>(
meta: &mut ConstraintSystem<F>,
field_chip_config: &FieldChipConfig,
cond_col: &Column<Advice>,
nb_parallel_range_checks: usize,
max_bit_len: u32,
) -> TangentConfig<C>
where
F: CircuitField,
P: FieldEmulationParams<F, C::Base>,
{
let m = &C::Base::modulus().to_bigint().unwrap();
let bs = P::base_powers();
let bs2 = P::double_base_powers();
let moduli = P::moduli();
let ((k_min, u_max), vs_bounds) =
Self::bounds::<F, P>(nb_parallel_range_checks, max_bit_len);
let a: BI = signed_repr::<C::Base>()(C::A.to_biguint().into());
let a_plus_1 = &a + BI::one();
let q_tangent = meta.selector();
meta.create_gate("Foreign-field EC assert_tangent", |meta| {
let cond = meta.query_advice(*cond_col, Rotation::next());
let pxs = get_advice_vec(meta, &field_chip_config.x_cols, Rotation::cur());
let pys = get_advice_vec(meta, &field_chip_config.z_cols, Rotation::cur());
let lambdas = get_advice_vec(meta, &field_chip_config.x_cols, Rotation::next());
let u = meta.query_advice(field_chip_config.u_col, Rotation::next());
let vs = get_advice_vec(meta, &field_chip_config.v_cols, Rotation::next());
let px2s = pair_wise_prod(&pxs, &pxs);
let lpys = pair_wise_prod(&lambdas, &pys);
let native_id = &cond
* (Expression::from(3)
* (Expression::from(2) * sum_exprs::<F>(&bs, &pxs)
+ sum_exprs::<F>(&bs2, &px2s))
+ Expression::Constant(bigint_to_fe::<F>(&a_plus_1))
- Expression::from(2)
* (sum_exprs::<F>(&bs, &pys)
+ sum_exprs::<F>(&bs, &lambdas)
+ sum_exprs::<F>(&bs2, &lpys))
- (&u + Expression::Constant(bigint_to_fe::<F>(&k_min)))
* Expression::Constant(bigint_to_fe::<F>(m)));
let mut moduli_ids = moduli
.iter()
.zip(vs)
.zip(vs_bounds.iter())
.map(|((mj, vj), vj_bounds)| {
let (lj_min, _vj_max) = vj_bounds;
let bs2_mj = bs2.iter().map(|b| b.rem(mj)).collect::<Vec<_>>();
let bs_mj = bs.iter().map(|b| b.rem(mj)).collect::<Vec<_>>();
&cond
* (Expression::from(3)
* (Expression::from(2) * sum_exprs::<F>(&bs_mj, &pxs)
+ sum_exprs::<F>(&bs2_mj, &px2s))
+ Expression::Constant(bigint_to_fe::<F>(&signed_mod(&a_plus_1, mj)))
- Expression::from(2)
* (sum_exprs::<F>(&bs_mj, &pys)
+ sum_exprs::<F>(&bs_mj, &lambdas)
+ sum_exprs::<F>(&bs2_mj, &lpys))
- &u * Expression::Constant(bigint_to_fe::<F>(&urem(m, mj)))
- Expression::Constant(bigint_to_fe::<F>(&urem(&(&k_min * m), mj)))
- (vj + Expression::Constant(bigint_to_fe::<F>(lj_min)))
* Expression::Constant(bigint_to_fe::<F>(mj)))
})
.collect::<Vec<_>>();
moduli_ids.push(native_id);
Constraints::with_selector(q_tangent, moduli_ids)
});
TangentConfig {
q_tangent,
u_bounds: (k_min, u_max),
vs_bounds,
cond_col: *cond_col,
_marker: PhantomData,
}
}
}
#[allow(clippy::type_complexity)]
pub fn assert_tangent<F, C, P, N>(
layouter: &mut impl Layouter<F>,
cond: &AssignedBit<F>,
p: (&AssignedField<F, C::Base, P>, &AssignedField<F, C::Base, P>),
lambda: &AssignedField<F, C::Base, P>,
base_chip: &FieldChip<F, C::Base, P, N>,
tangent_config: &TangentConfig<C>,
) -> Result<(), Error>
where
F: CircuitField,
C: WeierstrassCurve,
P: FieldEmulationParams<F, C::Base>,
N: NativeInstructions<F>,
{
let m = &C::Base::modulus().to_bigint().unwrap();
let moduli = P::moduli();
let bs = P::base_powers();
let bs2 = P::double_base_powers();
let base_chip_config = base_chip.config();
let a: BI = signed_repr::<C::Base>()(C::A.to_biguint().into());
let a_plus_1 = &a + BI::one();
let px = &base_chip.normalize(layouter, p.0)?;
let py = &base_chip.normalize(layouter, p.1)?;
let lambda = &base_chip.normalize(layouter, lambda)?;
let mut range_checks = layouter.assign_region(
|| "Tangent",
|mut region| {
let mut offset = 0;
let pxs = px.bigint_limbs();
let pys = py.bigint_limbs();
let lambdas = lambda.bigint_limbs();
let px2s = pxs.clone().map(|pxs| pair_wise_prod(&pxs, &pxs));
let lpys = lambdas.clone().zip(pys.clone()).map(|(ls, pys)| pair_wise_prod(&ls, &pys));
let (k_min, u_max) = tangent_config.u_bounds.clone();
let expr = pxs.clone().map(|v| BI::from(6) * sum_bigints(&bs, &v))
+ px2s.clone().map(|v| BI::from(3) * sum_bigints(&bs2, &v) + a_plus_1.clone())
- (pys.clone().map(|v| sum_bigints(&bs, &v))
+ lambdas.clone().map(|v| sum_bigints(&bs, &v))
+ lpys.clone().map(|v| sum_bigints(&bs2, &v)))
.map(|v| BI::from(2) * v);
let u = expr.map(|e| compute_u(m, &e, (&k_min, &u_max), cond.value()));
let vs_values =
moduli.iter().zip(tangent_config.vs_bounds.iter()).map(|(mj, vj_bounds)| {
let bs_mj = bs.iter().map(|b| b.rem(mj)).collect::<Vec<_>>();
let bs2_mj = bs2.iter().map(|b| b.rem(mj)).collect::<Vec<_>>();
let (lj_min, vj_max) = vj_bounds.clone();
let a_plus_1_mj = signed_mod(&a_plus_1, mj);
let expr_mj = pxs.clone().map(|v| BI::from(6) * sum_bigints(&bs_mj, &v))
+ px2s
.clone()
.map(|v| BI::from(3) * sum_bigints(&bs2_mj, &v) + &a_plus_1_mj)
- (pys.clone().map(|v| sum_bigints(&bs_mj, &v))
+ lambdas.clone().map(|v| sum_bigints(&bs_mj, &v))
+ lpys.clone().map(|v| sum_bigints(&bs2_mj, &v)))
.map(|v| BI::from(2) * v);
expr_mj.zip(u.clone()).map(|(e, u)| {
compute_vj(m, mj, &e, &u, &k_min, (&lj_min, &vj_max), cond.value())
})
});
tangent_config.q_tangent.enable(&mut region, offset)?;
let px_limbs = px.limb_values();
let py_limbs = py.limb_values();
let lambda_limbs = lambda.limb_values();
let px_iter = px_limbs.iter().zip(base_chip_config.x_cols.iter());
let py_iter = py_limbs.iter().zip(base_chip_config.z_cols.iter());
px_iter
.chain(py_iter)
.map(|(cell, &col)| {
cell.copy_advice(|| "ECC.tangent input", &mut region, col, offset)
})
.collect::<Result<Vec<_>, _>>()?;
offset += 1;
lambda_limbs
.iter()
.zip(base_chip_config.x_cols.iter())
.map(|(cell, &col)| {
cell.copy_advice(|| "ECC.tangent lambda", &mut region, col, offset)
})
.collect::<Result<Vec<_>, _>>()?;
let u_value = u.clone().map(|u| bigint_to_fe::<F>(&u));
let u_cell = region.assign_advice(
|| "ECC.tangent u",
base_chip_config.u_col,
offset,
|| u_value,
)?;
let vs_cells = vs_values
.zip(base_chip_config.v_cols.iter())
.map(|(vj, &vj_col)| {
let vj_value = vj.map(|vj| bigint_to_fe::<F>(&vj));
region.assign_advice(|| "ECC.tangent vj", vj_col, offset, || vj_value)
})
.collect::<Result<Vec<_>, _>>()?;
cond.0.copy_advice(
|| "ECC.tangent cond",
&mut region,
tangent_config.cond_col,
offset,
)?;
let u_range_check = (u_cell, u_max);
let vs_max = tangent_config.vs_bounds.clone().into_iter().map(|(_, vj_max)| vj_max);
let vs_range_checks =
vs_cells.into_iter().zip(vs_max.collect::<Vec<_>>()).collect::<Vec<_>>();
Ok([u_range_check].into_iter().chain(vs_range_checks.into_iter()))
},
)?;
range_checks.try_for_each(|(cell, ubound)| {
base_chip
.native_gadget
.assert_lower_than_fixed(layouter, &cell, ubound.magnitude())
})
}