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https://github.com/logos-storage/plonky2.git
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* Draw challenge points from the extension field * Now building * Misc * Default eval_unfiltered_base * fmt * A few field settings * Add to Sage * Display tweak * eval_filtered_base * Quartic in bench * Missing methods * Fix tests * PR feedback
180 lines
5.9 KiB
Rust
180 lines
5.9 KiB
Rust
use anyhow::Result;
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use crate::field::extension_field::Extendable;
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use crate::field::field::Field;
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use crate::fri::FriConfig;
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use crate::gates::gate::GateRef;
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use crate::generator::WitnessGenerator;
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use crate::polynomial::commitment::ListPolynomialCommitment;
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use crate::proof::{Hash, HashTarget, Proof};
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use crate::prover::prove;
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use crate::verifier::verify;
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use crate::witness::PartialWitness;
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#[derive(Clone)]
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pub struct CircuitConfig {
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pub num_wires: usize,
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pub num_routed_wires: usize,
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pub security_bits: usize,
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pub rate_bits: usize,
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/// The number of challenge points to generate, for IOPs that have soundness errors of (roughly)
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/// `degree / |F|`.
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pub num_challenges: usize,
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// TODO: Find a better place for this.
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pub fri_config: FriConfig,
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}
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impl Default for CircuitConfig {
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fn default() -> Self {
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CircuitConfig {
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num_wires: 4,
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num_routed_wires: 4,
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security_bits: 128,
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rate_bits: 3,
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num_challenges: 3,
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fri_config: FriConfig {
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proof_of_work_bits: 1,
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rate_bits: 1,
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reduction_arity_bits: vec![1],
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num_query_rounds: 1,
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blinding: vec![true],
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},
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}
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}
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}
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impl CircuitConfig {
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pub fn num_advice_wires(&self) -> usize {
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self.num_wires - self.num_routed_wires
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}
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}
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/// Circuit data required by the prover or the verifier.
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pub struct CircuitData<F: Extendable<D>, const D: usize> {
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pub(crate) prover_only: ProverOnlyCircuitData<F>,
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pub(crate) verifier_only: VerifierOnlyCircuitData<F>,
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pub(crate) common: CommonCircuitData<F, D>,
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}
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impl<F: Extendable<D>, const D: usize> CircuitData<F, D> {
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pub fn prove(&self, inputs: PartialWitness<F>) -> Proof<F, D> {
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prove(&self.prover_only, &self.common, inputs)
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}
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pub fn verify(&self, proof: Proof<F, D>) -> Result<()> {
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verify(proof, &self.verifier_only, &self.common)
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}
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}
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/// Circuit data required by the prover. This may be thought of as a proving key, although it
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/// includes code for witness generation.
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///
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/// The goal here is to make proof generation as fast as we can, rather than making this prover
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/// structure as succinct as we can. Thus we include various precomputed data which isn't strictly
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/// required, like LDEs of preprocessed polynomials. If more succinctness was desired, we could
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/// construct a more minimal prover structure and convert back and forth.
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pub struct ProverCircuitData<F: Extendable<D>, const D: usize> {
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pub(crate) prover_only: ProverOnlyCircuitData<F>,
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pub(crate) common: CommonCircuitData<F, D>,
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}
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impl<F: Extendable<D>, const D: usize> ProverCircuitData<F, D> {
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pub fn prove(&self, inputs: PartialWitness<F>) -> Proof<F, D> {
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prove(&self.prover_only, &self.common, inputs)
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}
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}
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/// Circuit data required by the prover.
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pub struct VerifierCircuitData<F: Extendable<D>, const D: usize> {
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pub(crate) verifier_only: VerifierOnlyCircuitData<F>,
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pub(crate) common: CommonCircuitData<F, D>,
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}
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impl<F: Extendable<D>, const D: usize> VerifierCircuitData<F, D> {
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pub fn verify(&self, proof: Proof<F, D>) -> Result<()> {
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verify(proof, &self.verifier_only, &self.common)
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}
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}
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/// Circuit data required by the prover, but not the verifier.
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pub(crate) struct ProverOnlyCircuitData<F: Field> {
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pub generators: Vec<Box<dyn WitnessGenerator<F>>>,
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/// Commitments to the constants polynomial.
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pub constants_commitment: ListPolynomialCommitment<F>,
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/// Commitments to the sigma polynomial.
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pub sigmas_commitment: ListPolynomialCommitment<F>,
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}
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/// Circuit data required by the verifier, but not the prover.
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pub(crate) struct VerifierOnlyCircuitData<F: Field> {
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/// A commitment to each constant polynomial.
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pub(crate) constants_root: Hash<F>,
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/// A commitment to each permutation polynomial.
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pub(crate) sigmas_root: Hash<F>,
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}
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/// Circuit data required by both the prover and the verifier.
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pub(crate) struct CommonCircuitData<F: Extendable<D>, const D: usize> {
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pub(crate) config: CircuitConfig,
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pub(crate) degree_bits: usize,
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/// The types of gates used in this circuit.
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pub(crate) gates: Vec<GateRef<F, D>>,
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/// The largest number of constraints imposed by any gate.
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pub(crate) num_gate_constraints: usize,
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/// The `{k_i}` valued used in `S_ID_i` in Plonk's permutation argument.
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pub(crate) k_is: Vec<F>,
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/// A digest of the "circuit" (i.e. the instance, minus public inputs), which can be used to
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/// seed Fiat-Shamir.
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pub(crate) circuit_digest: Hash<F>,
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}
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impl<F: Extendable<D>, const D: usize> CommonCircuitData<F, D> {
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pub fn degree(&self) -> usize {
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1 << self.degree_bits
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}
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pub fn lde_size(&self) -> usize {
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1 << (self.degree_bits + self.config.rate_bits)
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}
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pub fn lde_generator(&self) -> F {
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F::primitive_root_of_unity(self.degree_bits + self.config.rate_bits)
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}
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pub fn constraint_degree(&self) -> usize {
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self.gates
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.iter()
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.map(|g| g.0.degree())
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.max()
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.expect("No gates?")
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}
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pub fn quotient_degree(&self) -> usize {
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self.constraint_degree() - 1
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}
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pub fn total_constraints(&self) -> usize {
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// 2 constraints for each Z check.
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self.config.num_challenges * 2 + self.num_gate_constraints
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}
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}
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/// The `Target` version of `VerifierCircuitData`, for use inside recursive circuits. Note that this
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/// is intentionally missing certain fields, such as `CircuitConfig`, because we support only a
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/// limited form of dynamic inner circuits. We can't practically make things like the wire count
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/// dynamic, at least not without setting a maximum wire count and paying for the worst case.
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pub struct VerifierCircuitTarget {
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/// A commitment to each constant polynomial.
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pub(crate) constants_root: HashTarget,
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/// A commitment to each permutation polynomial.
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pub(crate) sigmas_root: HashTarget,
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}
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