1use super::Certificate;
17use crate::{
18 AlgebraicSponge,
19 SNARK,
20 SNARKError,
21 fft::EvaluationDomain,
22 polycommit::sonic_pc::{
23 Commitment,
24 CommitterUnionKey,
25 Evaluations,
26 LabeledCommitment,
27 QuerySet,
28 Randomness,
29 SonicKZG10,
30 },
31 r1cs::{ConstraintSynthesizer, SynthesisError},
32 snark::varuna::{
33 CircuitProvingKey,
34 CircuitVerifyingKey,
35 Proof,
36 SNARKMode,
37 UniversalSRS,
38 VarunaVersion,
39 ahp::{AHPError, AHPForR1CS, CircuitId, EvaluationsProvider},
40 proof,
41 prover,
42 witness_label,
43 },
44 srs::UniversalVerifier,
45};
46use rand::RngCore;
47use snarkvm_curves::PairingEngine;
48use snarkvm_fields::{One, PrimeField, ToConstraintField, Zero};
49use snarkvm_utilities::{ToBytes, dev_eprintln, dev_println, to_bytes_le};
50
51use anyhow::{Result, anyhow, bail, ensure};
52use core::marker::PhantomData;
53use itertools::Itertools;
54use rand::{CryptoRng, Rng};
55use std::{borrow::Borrow, collections::BTreeMap, ops::Deref, sync::Arc};
56
57use crate::srs::UniversalProver;
58
59#[derive(Clone, Debug)]
61pub struct VarunaSNARK<E: PairingEngine, FS: AlgebraicSponge<E::Fq, 2>, SM: SNARKMode>(
62 #[doc(hidden)] PhantomData<(E, FS, SM)>,
63);
64
65impl<E: PairingEngine, FS: AlgebraicSponge<E::Fq, 2>, SM: SNARKMode> VarunaSNARK<E, FS, SM> {
66 pub const PROTOCOL_NAME: &'static [u8] = b"VARUNA-2023";
69
70 pub fn batch_circuit_setup<C: ConstraintSynthesizer<E::Fr>>(
74 universal_srs: &UniversalSRS<E>,
75 circuits: &[&C],
76 ) -> Result<Vec<(CircuitProvingKey<E, SM>, CircuitVerifyingKey<E>)>> {
77 let index_time = start_timer!(|| "Varuna::CircuitSetup");
78
79 let universal_prover = &universal_srs.to_universal_prover()?;
80
81 let mut circuit_keys = Vec::with_capacity(circuits.len());
82 for circuit in circuits {
83 let mut indexed_circuit = AHPForR1CS::<_, SM>::index(*circuit)?;
84 universal_srs.download_powers_for(0..indexed_circuit.max_degree()?).map_err(|e| {
87 anyhow!("Failed to download powers for degree {}: {e}", indexed_circuit.max_degree().unwrap())
88 })?;
89 let coefficient_support = AHPForR1CS::<E::Fr, SM>::get_degree_bounds(&indexed_circuit.index_info)?;
90
91 let supported_hiding_bound = 1;
93 let supported_lagrange_sizes = [].into_iter(); let (committer_key, _) = SonicKZG10::<E, FS>::trim(
95 universal_srs,
96 indexed_circuit.max_degree()?,
97 supported_lagrange_sizes,
98 supported_hiding_bound,
99 Some(coefficient_support.as_slice()),
100 )?;
101
102 let ck = CommitterUnionKey::union(std::iter::once(&committer_key));
103
104 let commit_time = start_timer!(|| format!("Commit to index polynomials for {}", indexed_circuit.id));
105 let setup_rng = None::<&mut dyn RngCore>; let (mut circuit_commitments, commitment_randomnesses): (_, _) = SonicKZG10::<E, FS>::commit(
108 universal_prover,
109 &ck,
110 indexed_circuit.interpolate_matrix_evals()?.map(Into::into),
111 setup_rng,
112 )?;
113 let empty_randomness = Randomness::<E>::empty();
114 ensure!(commitment_randomnesses.iter().all(|r| r == &empty_randomness));
115 end_timer!(commit_time);
116
117 circuit_commitments.sort_by(|c1, c2| c1.label().cmp(c2.label()));
118 let circuit_commitments = circuit_commitments.into_iter().map(|c| *c.commitment()).collect();
119 indexed_circuit.prune_row_col_evals();
120 let circuit_verifying_key = CircuitVerifyingKey {
121 circuit_info: indexed_circuit.index_info,
122 circuit_commitments,
123 id: indexed_circuit.id,
124 };
125 let circuit_proving_key = CircuitProvingKey {
126 circuit_verifying_key: circuit_verifying_key.clone(),
127 circuit: Arc::new(indexed_circuit),
128 committer_key: Arc::new(committer_key),
129 };
130 circuit_keys.push((circuit_proving_key, circuit_verifying_key));
131 }
132
133 end_timer!(index_time);
134 Ok(circuit_keys)
135 }
136
137 fn init_sponge<'a>(
138 fs_parameters: &FS::Parameters,
139 inputs_and_batch_sizes: &BTreeMap<CircuitId, (usize, &[Vec<E::Fr>])>,
140 circuit_commitments: impl Iterator<Item = &'a [crate::polycommit::sonic_pc::Commitment<E>]>,
141 ) -> FS {
142 let mut sponge = FS::new_with_parameters(fs_parameters);
143 sponge.absorb_bytes(Self::PROTOCOL_NAME);
144 for (batch_size, inputs) in inputs_and_batch_sizes.values() {
145 sponge.absorb_bytes(&(*batch_size as u64).to_le_bytes());
146 for input in inputs.iter() {
147 sponge.absorb_nonnative_field_elements(input.iter().copied());
148 }
149 }
150 for circuit_specific_commitments in circuit_commitments {
151 sponge.absorb_native_field_elements(circuit_specific_commitments);
152 }
153 sponge
154 }
155
156 fn init_sponge_for_certificate(
157 fs_parameters: &FS::Parameters,
158 verifying_key: &CircuitVerifyingKey<E>,
159 ) -> Result<FS> {
160 let mut sponge = FS::new_with_parameters(fs_parameters);
161 sponge.absorb_bytes(&to_bytes_le![&Self::PROTOCOL_NAME]?);
162 sponge.absorb_bytes(&verifying_key.circuit_info.to_bytes_le()?);
163 sponge.absorb_native_field_elements(&verifying_key.circuit_commitments);
164 sponge.absorb_bytes(&verifying_key.id.0);
165 Ok(sponge)
166 }
167
168 fn absorb_labeled_with_sums(
169 comms: &[LabeledCommitment<Commitment<E>>],
170 sums: &[prover::MatrixSums<E::Fr>],
171 sponge: &mut FS,
172 ) {
173 let commitments: Vec<_> = comms.iter().map(|c| *c.commitment()).collect();
174 Self::absorb_with_sums(&commitments, sums, sponge)
175 }
176
177 fn absorb_labeled(comms: &[LabeledCommitment<Commitment<E>>], sponge: &mut FS) {
178 let commitments: Vec<_> = comms.iter().map(|c| *c.commitment()).collect();
179 Self::absorb(&commitments, sponge);
180 }
181
182 fn absorb(commitments: &[Commitment<E>], sponge: &mut FS) {
183 let sponge_time = start_timer!(|| "Absorbing commitments");
184 sponge.absorb_native_field_elements(commitments);
185 end_timer!(sponge_time);
186 }
187
188 fn absorb_with_sums(commitments: &[Commitment<E>], sums: &[prover::MatrixSums<E::Fr>], sponge: &mut FS) {
189 let sponge_time = start_timer!(|| "Absorbing commitments and message");
190 Self::absorb(commitments, sponge);
191 Self::absorb_sums(sums, sponge);
192 end_timer!(sponge_time);
193 }
194
195 fn absorb_sums(sums: &[prover::MatrixSums<E::Fr>], sponge: &mut FS) {
196 for sum in sums.iter() {
197 sponge.absorb_nonnative_field_elements([sum.sum_a, sum.sum_b, sum.sum_c]);
198 }
199 }
200}
201
202impl<E: PairingEngine, FS, SM> SNARK for VarunaSNARK<E, FS, SM>
203where
204 E::Fr: PrimeField,
205 E::Fq: PrimeField,
206 FS: AlgebraicSponge<E::Fq, 2>,
207 SM: SNARKMode,
208{
209 type BaseField = E::Fq;
210 type Certificate = Certificate<E>;
211 type FSParameters = FS::Parameters;
212 type FiatShamirRng = FS;
213 type Proof = Proof<E>;
214 type ProvingKey = CircuitProvingKey<E, SM>;
215 type ScalarField = E::Fr;
216 type UniversalProver = UniversalProver<E>;
217 type UniversalSRS = UniversalSRS<E>;
218 type UniversalVerifier = UniversalVerifier<E>;
219 type VerifierInput = [E::Fr];
220 type VerifyingKey = CircuitVerifyingKey<E>;
221
222 fn universal_setup(max_degree: usize) -> Result<Self::UniversalSRS> {
223 let setup_time = start_timer!(|| { format!("Varuna::UniversalSetup with max_degree {max_degree}",) });
224 let srs = SonicKZG10::<E, FS>::load_srs(max_degree).map_err(Into::into);
225 end_timer!(setup_time);
226 srs
227 }
228
229 fn circuit_setup<C: ConstraintSynthesizer<E::Fr>>(
232 universal_srs: &Self::UniversalSRS,
233 circuit: &C,
234 ) -> Result<(Self::ProvingKey, Self::VerifyingKey)> {
235 let mut circuit_keys = Self::batch_circuit_setup::<C>(universal_srs, &[circuit])?;
236 ensure!(circuit_keys.len() == 1);
237 Ok(circuit_keys.pop().unwrap())
238 }
239
240 fn prove_vk(
243 universal_prover: &Self::UniversalProver,
244 fs_parameters: &Self::FSParameters,
245 verifying_key: &Self::VerifyingKey,
246 proving_key: &Self::ProvingKey,
247 ) -> Result<Self::Certificate> {
248 let mut sponge = Self::init_sponge_for_certificate(fs_parameters, verifying_key)?;
250 let mut challenges = sponge.squeeze_nonnative_field_elements(verifying_key.circuit_commitments.len());
255 let point = challenges.pop().ok_or(anyhow!("Failed to squeeze random element"))?;
256 let one = E::Fr::one();
257 let linear_combination_challenges = core::iter::once(&one).chain(challenges.iter());
258
259 let circuit_id = std::iter::once(&verifying_key.id);
260 let circuit_poly_info = AHPForR1CS::<E::Fr, SM>::index_polynomial_info(circuit_id);
261
262 let mut lc = crate::polycommit::sonic_pc::LinearCombination::empty("circuit_check");
265 for (label, &c) in circuit_poly_info.keys().zip(linear_combination_challenges) {
266 lc.add(c, label.clone());
267 }
268
269 let query_set = QuerySet::from_iter([("circuit_check".into(), ("challenge".into(), point))]);
270 let committer_key = CommitterUnionKey::union(std::iter::once(proving_key.committer_key.as_ref()));
271
272 let empty_randomness = vec![Randomness::<E>::empty(); 12];
273 let certificate = SonicKZG10::<E, FS>::open_combinations(
274 universal_prover,
275 &committer_key,
276 &[lc],
277 proving_key.circuit.interpolate_matrix_evals()?,
278 &empty_randomness,
279 &query_set,
280 &mut sponge,
281 )?;
282
283 Ok(Self::Certificate::new(certificate))
284 }
285
286 fn verify_vk<C: ConstraintSynthesizer<Self::ScalarField>>(
290 universal_verifier: &Self::UniversalVerifier,
291 fs_parameters: &Self::FSParameters,
292 circuit: &C,
293 verifying_key: &Self::VerifyingKey,
294 certificate: &Self::Certificate,
295 ) -> Result<bool> {
296 let circuit_id = &verifying_key.id;
298 let state = AHPForR1CS::<E::Fr, SM>::index_helper(circuit)?;
299 if state.index_info != verifying_key.circuit_info {
300 bail!("Circuit info mismatch, expected {:?}, got {:?}", verifying_key.circuit_info, state.index_info);
301 }
302 if state.id != *circuit_id {
303 bail!("Circuit ID mismatch, expected {:?}, got {:?}.", circuit_id, state.id);
304 }
305
306 if certificate.pc_proof.is_hiding() {
308 bail!("Certificate should not be hiding");
309 }
310
311 let mut sponge = Self::init_sponge_for_certificate(fs_parameters, verifying_key)?;
313
314 let mut challenges = sponge.squeeze_nonnative_field_elements(verifying_key.circuit_commitments.len());
319 let point = challenges.pop().ok_or(anyhow!("Failed to squeeze random element"))?;
320 let combiners = core::iter::once(E::Fr::one()).chain(challenges);
321
322 let (lc, evaluation) =
325 AHPForR1CS::<E::Fr, SM>::evaluate_index_polynomials(state, circuit_id, point, combiners)?;
326
327 ensure!(verifying_key.circuit_commitments.len() == lc.terms.len());
328 let commitments = verifying_key
329 .iter()
330 .cloned()
331 .zip_eq(lc.terms.keys())
332 .map(|(c, label)| LabeledCommitment::new(format!("{label:?}"), c, None))
333 .collect_vec();
334 let evaluations = Evaluations::from_iter([(("circuit_check".into(), point), evaluation)]);
335 let query_set = QuerySet::from_iter([("circuit_check".into(), ("challenge".into(), point))]);
336
337 SonicKZG10::<E, FS>::check_combinations(
338 universal_verifier,
339 &[lc],
340 &commitments,
341 &query_set,
342 &evaluations,
343 &certificate.pc_proof,
344 &mut sponge,
345 )
346 }
347
348 fn prove_batch<C: ConstraintSynthesizer<E::Fr>, R: Rng + CryptoRng>(
352 universal_prover: &Self::UniversalProver,
353 fs_parameters: &Self::FSParameters,
354 varuna_version: VarunaVersion,
355 keys_to_constraints: &BTreeMap<&CircuitProvingKey<E, SM>, &[C]>,
356 zk_rng: &mut R,
357 ) -> Result<Self::Proof> {
358 let prover_time = start_timer!(|| "Varuna::Prover");
359 if keys_to_constraints.is_empty() {
360 bail!(SNARKError::EmptyBatch);
361 }
362
363 let mut circuits_to_constraints = BTreeMap::new();
364 for (pk, constraints) in keys_to_constraints {
365 circuits_to_constraints.insert(pk.circuit.deref(), *constraints);
366 }
367 let prover_state = AHPForR1CS::<_, SM>::init_prover(&circuits_to_constraints, zk_rng)?;
368
369 let mut batch_sizes = BTreeMap::new();
372 let mut circuit_infos = BTreeMap::new();
373 let mut inputs_and_batch_sizes = BTreeMap::new();
374 let mut total_instances = 0usize;
375 let mut public_inputs = BTreeMap::new(); let num_unique_circuits = keys_to_constraints.len();
377 let mut circuit_ids = Vec::with_capacity(num_unique_circuits);
378 for pk in keys_to_constraints.keys() {
379 let batch_size = prover_state.batch_size(&pk.circuit).ok_or(anyhow!("Batch size not found."))?;
380 let public_input = prover_state.public_inputs(&pk.circuit).ok_or(anyhow!("Public input not found."))?;
381 let padded_public_input =
382 prover_state.padded_public_inputs(&pk.circuit).ok_or(anyhow!("Padded public input not found."))?;
383 let circuit_id = pk.circuit.id;
384 batch_sizes.insert(circuit_id, batch_size);
385 circuit_infos.insert(circuit_id, &pk.circuit_verifying_key.circuit_info);
386 inputs_and_batch_sizes.insert(circuit_id, (batch_size, padded_public_input));
387 public_inputs.insert(circuit_id, public_input);
388 total_instances = total_instances.saturating_add(batch_size);
389
390 circuit_ids.push(circuit_id);
391 }
392 ensure!(prover_state.total_instances == total_instances);
393
394 let committer_key = CommitterUnionKey::union(keys_to_constraints.keys().map(|pk| pk.committer_key.deref()));
395
396 let circuit_commitments =
397 keys_to_constraints.keys().map(|pk| pk.circuit_verifying_key.circuit_commitments.as_slice());
398
399 let mut sponge = Self::init_sponge(fs_parameters, &inputs_and_batch_sizes, circuit_commitments.clone());
400
401 let prover_state = AHPForR1CS::<_, SM>::prover_first_round(prover_state, zk_rng)?;
405
406 let first_round_comm_time = start_timer!(|| "Committing to first round polys");
407 let (first_commitments, first_commitment_randomnesses) = {
408 let first_round_oracles = prover_state.first_round_oracles.as_ref().unwrap();
409 SonicKZG10::<E, FS>::commit(
410 universal_prover,
411 &committer_key,
412 first_round_oracles.iter().map(Into::into),
413 SM::ZK.then_some(zk_rng),
414 )?
415 };
416 end_timer!(first_round_comm_time);
417
418 Self::absorb_labeled(&first_commitments, &mut sponge);
419
420 let (verifier_first_message, verifier_state) = AHPForR1CS::<_, SM>::verifier_first_round(
421 &batch_sizes,
422 &circuit_infos,
423 prover_state.max_constraint_domain,
424 prover_state.max_variable_domain,
425 prover_state.max_non_zero_domain,
426 &mut sponge,
427 )?;
428 let (second_oracles, prover_state) =
434 AHPForR1CS::<_, SM>::prover_second_round(&verifier_first_message, prover_state, zk_rng)?;
435
436 let second_round_comm_time = start_timer!(|| "Committing to second round polys");
437 let (second_commitments, second_commitment_randomnesses) = SonicKZG10::<E, FS>::commit(
438 universal_prover,
439 &committer_key,
440 second_oracles.iter().map(Into::into),
441 SM::ZK.then_some(zk_rng),
442 )?;
443 end_timer!(second_round_comm_time);
444
445 Self::absorb_labeled(&second_commitments, &mut sponge);
446
447 let (verifier_second_msg, verifier_state) =
448 AHPForR1CS::<_, SM>::verifier_second_round(verifier_state, &mut sponge, varuna_version)?;
449 let (prover_prepare_third_message, prover_state, verifier_prepare_third_msg, verifier_state) = {
455 match varuna_version {
456 VarunaVersion::V1 => (None, prover_state, None, verifier_state),
457 VarunaVersion::V2 => {
458 let (prover_prepare_third_message, prover_state) = AHPForR1CS::<_, SM>::prover_prepare_third_round(
459 &verifier_first_message,
460 &verifier_second_msg,
461 prover_state,
462 zk_rng,
463 )?;
464
465 Self::absorb_sums(
466 &prover_prepare_third_message.sums.clone().into_iter().flatten().collect_vec(),
467 &mut sponge,
468 );
469
470 let (verifier_prepare_third_msg, verifier_state) =
471 AHPForR1CS::<_, SM>::verifier_prepare_third_round(
472 verifier_state,
473 &batch_sizes,
474 &circuit_infos,
475 &mut sponge,
476 )?;
477
478 (Some(prover_prepare_third_message), prover_state, Some(verifier_prepare_third_msg), verifier_state)
479 }
480 }
481 };
482 let (prover_third_message, third_oracles, prover_state) = AHPForR1CS::<_, SM>::prover_third_round(
488 &verifier_first_message,
489 &verifier_second_msg,
490 &verifier_prepare_third_msg,
491 prover_state,
492 zk_rng,
493 varuna_version,
494 )?;
495
496 let third_round_comm_time = start_timer!(|| "Committing to third round polys");
497 let (third_commitments, third_commitment_randomnesses) = SonicKZG10::<E, FS>::commit(
498 universal_prover,
499 &committer_key,
500 third_oracles.iter().map(Into::into),
501 SM::ZK.then_some(zk_rng),
502 )?;
503 end_timer!(third_round_comm_time);
504
505 match varuna_version {
506 VarunaVersion::V1 => {
507 let prover_third_message = prover_third_message
508 .clone()
509 .ok_or_else(|| anyhow!("Expected prover to contribute sums in the third round."))?;
510 if prover_prepare_third_message.is_some() {
511 return Err(anyhow!("Expected prover to not contribute sums in the prepare third round."))?;
512 }
513 Self::absorb_labeled_with_sums(
514 &third_commitments,
515 &prover_third_message.sums.into_iter().flatten().collect_vec(),
516 &mut sponge,
517 );
518 }
519 VarunaVersion::V2 => {
520 if prover_third_message.is_some() {
521 return Err(anyhow!("Expected prover to not contribute sums in the third round."))?;
522 }
523 Self::absorb_labeled(&third_commitments, &mut sponge);
524 }
525 }
526
527 let prover_third_message = match varuna_version {
529 VarunaVersion::V1 => prover_third_message,
530 VarunaVersion::V2 => prover_prepare_third_message,
531 }
532 .ok_or_else(|| anyhow!("Prover did not contribute sums in the expected round."))?;
533
534 let (verifier_third_msg, verifier_state) =
535 AHPForR1CS::<_, SM>::verifier_third_round(verifier_state, &mut sponge)?;
536 let (prover_fourth_message, fourth_oracles, mut prover_state) =
542 AHPForR1CS::<_, SM>::prover_fourth_round(&verifier_second_msg, &verifier_third_msg, prover_state, zk_rng)?;
543
544 let fourth_round_comm_time = start_timer!(|| "Committing to fourth round polys");
545 let (fourth_commitments, fourth_commitment_randomnesses) = SonicKZG10::<E, FS>::commit(
546 universal_prover,
547 &committer_key,
548 fourth_oracles.iter().map(Into::into),
549 SM::ZK.then_some(zk_rng),
550 )?;
551 end_timer!(fourth_round_comm_time);
552
553 Self::absorb_labeled_with_sums(&fourth_commitments, &prover_fourth_message.sums, &mut sponge);
554
555 let (verifier_fourth_msg, verifier_state) =
556 AHPForR1CS::<_, SM>::verifier_fourth_round(verifier_state, &mut sponge)?;
557 let first_round_oracles = prover_state.first_round_oracles.take().unwrap();
561 let index_a_polys =
562 prover_state.circuit_specific_states.values_mut().flat_map(|s| s.a_polys.take().unwrap()).collect_vec();
563 let index_b_polys =
564 prover_state.circuit_specific_states.values_mut().flat_map(|s| s.b_polys.take().unwrap()).collect_vec();
565
566 let fifth_oracles = AHPForR1CS::<_, SM>::prover_fifth_round(verifier_fourth_msg, prover_state, zk_rng)?;
569
570 let fifth_round_comm_time = start_timer!(|| "Committing to fifth round polys");
571 let (fifth_commitments, fifth_commitment_randomnesses) = SonicKZG10::<E, FS>::commit(
572 universal_prover,
573 &committer_key,
574 fifth_oracles.iter().map(Into::into),
575 SM::ZK.then_some(zk_rng),
576 )?;
577 end_timer!(fifth_round_comm_time);
578
579 Self::absorb_labeled(&fifth_commitments, &mut sponge);
580
581 let verifier_state = AHPForR1CS::<_, SM>::verifier_fifth_round(verifier_state, &mut sponge)?;
582 let polynomials: Vec<_> = index_a_polys
586 .into_iter()
587 .chain(index_b_polys)
588 .chain(first_round_oracles.into_iter())
589 .chain(second_oracles.into_iter())
590 .chain(third_oracles.into_iter())
591 .chain(fourth_oracles.into_iter())
592 .chain(fifth_oracles.into_iter())
593 .collect();
594 ensure!(
595 polynomials.len()
596 == num_unique_circuits * 6 + AHPForR1CS::<E::Fr, SM>::num_first_round_oracles(total_instances) +
598 AHPForR1CS::<E::Fr, SM>::num_second_round_oracles() +
599 AHPForR1CS::<E::Fr, SM>::num_third_round_oracles() +
600 AHPForR1CS::<E::Fr, SM>::num_fourth_round_oracles(num_unique_circuits) +
601 AHPForR1CS::<E::Fr, SM>::num_fifth_round_oracles()
602 );
603
604 let witness_comm_len = if SM::ZK { first_commitments.len() - 1 } else { first_commitments.len() };
606 let mask_poly = SM::ZK.then(|| *first_commitments[witness_comm_len].commitment());
607 let witness_commitments = first_commitments[..witness_comm_len]
608 .iter()
609 .map(|c| proof::WitnessCommitments { w: *c.commitment() })
610 .collect_vec();
611 let fourth_commitments_chunked = fourth_commitments.chunks_exact(3);
612 let (g_a_commitments, g_b_commitments, g_c_commitments) = fourth_commitments_chunked
613 .map(|c| (*c[0].commitment(), *c[1].commitment(), *c[2].commitment()))
614 .multiunzip();
615
616 #[rustfmt::skip]
617 let commitments = proof::Commitments {
618 witness_commitments,
619 mask_poly,
620 h_0: *second_commitments[0].commitment(),
621 g_1: *third_commitments[0].commitment(),
622 h_1: *third_commitments[1].commitment(),
623 g_a_commitments,
624 g_b_commitments,
625 g_c_commitments,
626 h_2: *fifth_commitments[0].commitment(),
627 };
628
629 let indexer_randomness = vec![Randomness::<E>::empty(); 6 * num_unique_circuits];
631 let commitment_randomnesses: Vec<Randomness<E>> = indexer_randomness
632 .into_iter()
633 .chain(first_commitment_randomnesses)
634 .chain(second_commitment_randomnesses)
635 .chain(third_commitment_randomnesses)
636 .chain(fourth_commitment_randomnesses)
637 .chain(fifth_commitment_randomnesses)
638 .collect();
639
640 let empty_randomness = Randomness::<E>::empty();
641 if SM::ZK {
642 ensure!(commitment_randomnesses.iter().any(|r| r != &empty_randomness));
643 } else {
644 ensure!(commitment_randomnesses.iter().all(|r| r == &empty_randomness));
645 }
646
647 let (query_set, verifier_state) = AHPForR1CS::<_, SM>::verifier_query_set(verifier_state);
649 let lc_s = AHPForR1CS::<_, SM>::construct_linear_combinations(
650 &public_inputs,
651 &polynomials,
652 &prover_third_message,
653 &prover_fourth_message,
654 &verifier_state,
655 varuna_version,
656 )?;
657
658 let eval_time = start_timer!(|| "Evaluating linear combinations over query set");
659 let mut evaluations = std::collections::BTreeMap::new();
660 for (label, (_, point)) in query_set.to_set() {
661 if !AHPForR1CS::<E::Fr, SM>::LC_WITH_ZERO_EVAL.contains(&label.as_str()) {
662 let lc = lc_s.get(&label).ok_or_else(|| AHPError::MissingEval(label.to_string()))?;
663 let evaluation = polynomials.get_lc_eval(lc, point)?;
664 evaluations.insert(label, evaluation);
665 }
666 }
667
668 let evaluations = proof::Evaluations::from_map(&evaluations, batch_sizes.clone());
669 end_timer!(eval_time);
670
671 sponge.absorb_nonnative_field_elements(evaluations.to_field_elements());
672
673 let pc_proof = SonicKZG10::<E, FS>::open_combinations(
674 universal_prover,
675 &committer_key,
676 lc_s.values(),
677 polynomials,
678 &commitment_randomnesses,
679 &query_set.to_set(),
680 &mut sponge,
681 )?;
682
683 let proof = Proof::<E>::new(
684 batch_sizes,
685 commitments,
686 evaluations,
687 prover_third_message,
688 prover_fourth_message,
689 pc_proof,
690 )?;
691 proof.check_batch_sizes()?;
692 ensure!(proof.pc_proof.is_hiding() == SM::ZK);
693
694 end_timer!(prover_time);
695 Ok(proof)
696 }
697
698 fn verify_batch<B: Borrow<Self::VerifierInput>>(
702 universal_verifier: &Self::UniversalVerifier,
703 fs_parameters: &Self::FSParameters,
704 varuna_version: VarunaVersion,
705 keys_to_inputs: &BTreeMap<&Self::VerifyingKey, &[B]>,
706 proof: &Self::Proof,
707 ) -> Result<bool> {
708 if keys_to_inputs.is_empty() {
709 bail!(SNARKError::EmptyBatch);
710 }
711
712 proof.check_batch_sizes()?;
713 let batch_sizes_vec = proof.batch_sizes();
714 let mut batch_sizes = BTreeMap::new();
715 for (i, (vk, public_inputs_i)) in keys_to_inputs.iter().enumerate() {
716 batch_sizes.insert(vk.id, batch_sizes_vec[i]);
717
718 if public_inputs_i.is_empty() {
719 bail!(SNARKError::EmptyBatch);
720 }
721
722 if public_inputs_i.len() != batch_sizes_vec[i] {
723 bail!(SNARKError::BatchSizeMismatch);
724 }
725 }
726
727 let mut max_num_constraints = 0;
729 let mut max_num_variables = 0;
730 let mut max_non_zero_domain = None;
731 let mut public_inputs = BTreeMap::new();
732 let mut padded_public_vec = Vec::with_capacity(keys_to_inputs.len());
733 let mut inputs_and_batch_sizes = BTreeMap::new();
734 let mut input_domains = BTreeMap::new();
735 let mut circuit_infos = BTreeMap::new();
736 let mut circuit_ids = Vec::with_capacity(keys_to_inputs.len());
737 for (&vk, &public_inputs_i) in keys_to_inputs.iter() {
738 max_num_constraints = max_num_constraints.max(vk.circuit_info.num_constraints);
739 max_num_variables = max_num_variables.max(vk.circuit_info.num_public_and_private_variables);
740
741 let non_zero_domains = AHPForR1CS::<_, SM>::cmp_non_zero_domains(&vk.circuit_info, max_non_zero_domain)?;
742 max_non_zero_domain = non_zero_domains.max_non_zero_domain;
743
744 let input_domain = EvaluationDomain::<E::Fr>::new(vk.circuit_info.num_public_inputs)
745 .ok_or(anyhow!("Failed to create EvaluationDomain from num_public_inputs"))?;
746 input_domains.insert(vk.id, input_domain);
747
748 let input_fields = public_inputs_i
749 .iter()
750 .map(|input| {
751 let input = input.borrow().to_field_elements()?;
752 ensure!(input.len() > 0);
753 ensure!(input[0] == E::Fr::one());
754 if input.len() > input_domain.size() {
755 bail!(SNARKError::PublicInputSizeMismatch);
756 }
757 Ok(input)
758 })
759 .collect::<Result<Vec<_>, _>>()?;
760
761 let (padded_public_inputs_i, parsed_public_inputs_i): (Vec<_>, Vec<_>) = {
762 input_fields
763 .iter()
764 .map(|input| {
765 let input_len = input.len().max(input_domain.size());
766 let mut new_input = Vec::with_capacity(input_len);
767 new_input.extend_from_slice(input);
768 new_input.resize(input_len, E::Fr::zero());
769 dev_println!("Number of padded public variables: {}", new_input.len());
770 let unformatted = prover::ConstraintSystem::unformat_public_input(&new_input);
771 (new_input, unformatted)
772 })
773 .unzip()
774 };
775 let circuit_id = vk.id;
776 public_inputs.insert(circuit_id, parsed_public_inputs_i);
777 padded_public_vec.push(padded_public_inputs_i);
778 circuit_infos.insert(circuit_id, &vk.circuit_info);
779 circuit_ids.push(circuit_id);
780 }
781 for (i, (vk, &batch_size)) in keys_to_inputs.keys().zip(batch_sizes.values()).enumerate() {
782 inputs_and_batch_sizes.insert(vk.id, (batch_size, padded_public_vec[i].as_slice()));
783 }
784 let max_constraint_domain =
785 EvaluationDomain::<E::Fr>::new(max_num_constraints).ok_or(SynthesisError::PolyTooLarge)?;
786 let max_variable_domain =
787 EvaluationDomain::<E::Fr>::new(max_num_variables).ok_or(SynthesisError::PolyTooLarge)?;
788 let max_non_zero_domain = max_non_zero_domain.ok_or(SynthesisError::PolyTooLarge)?;
789
790 let comms = &proof.commitments;
791 let proof_has_correct_zk_mode = if SM::ZK {
792 proof.pc_proof.is_hiding() & comms.mask_poly.is_some()
793 } else {
794 !proof.pc_proof.is_hiding() & comms.mask_poly.is_none()
795 };
796 if !proof_has_correct_zk_mode {
797 dev_eprintln!(
798 "Found `mask_poly` in the first round when not expected, or proof has incorrect hiding mode ({})",
799 proof.pc_proof.is_hiding()
800 );
801 return Ok(false);
802 }
803
804 let verifier_time = start_timer!(|| format!("Varuna::Verify with batch sizes: {batch_sizes:?}"));
805
806 let first_round_info = AHPForR1CS::<E::Fr, SM>::first_round_polynomial_info(batch_sizes.iter());
807
808 let mut first_comms_consumed = 0;
809 let mut first_commitments = batch_sizes
810 .iter()
811 .flat_map(|(circuit_id, &batch_size)| {
812 let first_comms = comms.witness_commitments[first_comms_consumed..][..batch_size]
813 .iter()
814 .enumerate()
815 .map(|(j, w_comm)| {
816 LabeledCommitment::new_with_info(
817 &first_round_info[&witness_label(*circuit_id, "w", j)],
818 w_comm.w,
819 )
820 });
821 first_comms_consumed += batch_size;
822 first_comms
823 })
824 .collect_vec();
825
826 if SM::ZK {
827 first_commitments.push(LabeledCommitment::new_with_info(
828 first_round_info.get("mask_poly").ok_or(anyhow!("Missing mask_poly"))?,
829 comms.mask_poly.ok_or(anyhow!("Missing mask_poly"))?,
830 ));
831 }
832
833 let second_round_info = AHPForR1CS::<E::Fr, SM>::second_round_polynomial_info();
834 let second_commitments = [LabeledCommitment::new_with_info(&second_round_info["h_0"], comms.h_0)];
835
836 let third_round_info = AHPForR1CS::<E::Fr, SM>::third_round_polynomial_info(max_variable_domain.size());
837 let third_commitments = [
838 LabeledCommitment::new_with_info(&third_round_info["g_1"], comms.g_1),
839 LabeledCommitment::new_with_info(&third_round_info["h_1"], comms.h_1),
840 ];
841
842 let fourth_round_info =
843 AHPForR1CS::<E::Fr, SM>::fourth_round_polynomial_info(circuit_infos.clone().into_iter());
844 let fourth_commitments = comms
845 .g_a_commitments
846 .iter()
847 .zip_eq(comms.g_b_commitments.iter())
848 .zip_eq(comms.g_c_commitments.iter())
849 .zip_eq(circuit_ids.iter())
850 .flat_map(|(((g_a, g_b), g_c), circuit_id)| {
851 [
852 LabeledCommitment::new_with_info(&fourth_round_info[&witness_label(*circuit_id, "g_a", 0)], *g_a),
853 LabeledCommitment::new_with_info(&fourth_round_info[&witness_label(*circuit_id, "g_b", 0)], *g_b),
854 LabeledCommitment::new_with_info(&fourth_round_info[&witness_label(*circuit_id, "g_c", 0)], *g_c),
855 ]
856 })
857 .collect_vec();
858
859 let fifth_round_info = AHPForR1CS::<E::Fr, SM>::fifth_round_polynomial_info();
860 let fifth_commitments = [LabeledCommitment::new_with_info(&fifth_round_info["h_2"], comms.h_2)];
861
862 let circuit_commitments = keys_to_inputs.keys().map(|vk| vk.circuit_commitments.as_slice());
863 let mut sponge = Self::init_sponge(fs_parameters, &inputs_and_batch_sizes, circuit_commitments.clone());
864
865 let first_round_time = start_timer!(|| "First round");
868 Self::absorb_labeled(&first_commitments, &mut sponge);
869 let (_, verifier_state) = AHPForR1CS::<_, SM>::verifier_first_round(
870 &batch_sizes,
871 &circuit_infos,
872 max_constraint_domain,
873 max_variable_domain,
874 max_non_zero_domain,
875 &mut sponge,
876 )?;
877 end_timer!(first_round_time);
878 let second_round_time = start_timer!(|| "Second round");
883 Self::absorb_labeled(&second_commitments, &mut sponge);
884 let (_, verifier_state) =
885 AHPForR1CS::<_, SM>::verifier_second_round(verifier_state, &mut sponge, varuna_version)?;
886 end_timer!(second_round_time);
887 let verifier_state = {
892 match varuna_version {
893 VarunaVersion::V1 => verifier_state,
894 VarunaVersion::V2 => {
895 let prepare_third_round_time = start_timer!(|| "Prep third round");
896 Self::absorb_sums(&proof.third_msg.sums.clone().into_iter().flatten().collect_vec(), &mut sponge);
897 let (_, verifier_state) = AHPForR1CS::<_, SM>::verifier_prepare_third_round(
898 verifier_state,
899 &batch_sizes,
900 &circuit_infos,
901 &mut sponge,
902 )?;
903 end_timer!(prepare_third_round_time);
904 verifier_state
905 }
906 }
907 };
908 let third_round_time = start_timer!(|| "Third round");
913 match varuna_version {
914 VarunaVersion::V1 => {
915 Self::absorb_labeled_with_sums(
916 &third_commitments,
917 &proof.third_msg.sums.clone().into_iter().flatten().collect_vec(),
918 &mut sponge,
919 );
920 }
921 VarunaVersion::V2 => {
922 Self::absorb_labeled(&third_commitments, &mut sponge);
923 }
924 }
925 let (_, verifier_state) = AHPForR1CS::<_, SM>::verifier_third_round(verifier_state, &mut sponge)?;
926 end_timer!(third_round_time);
927 let fourth_round_time = start_timer!(|| "Fourth round");
932
933 Self::absorb_labeled_with_sums(&fourth_commitments, &proof.fourth_msg.sums, &mut sponge);
934 let (_, verifier_state) = AHPForR1CS::<_, SM>::verifier_fourth_round(verifier_state, &mut sponge)?;
935 end_timer!(fourth_round_time);
936 let fifth_round_time = start_timer!(|| "Fifth round");
941
942 Self::absorb_labeled(&fifth_commitments, &mut sponge);
943 let verifier_state = AHPForR1CS::<_, SM>::verifier_fifth_round(verifier_state, &mut sponge)?;
944 end_timer!(fifth_round_time);
945 let commitments: Vec<_> = circuit_commitments
952 .into_iter()
953 .flatten()
954 .zip_eq(AHPForR1CS::<E::Fr, SM>::index_polynomial_info(circuit_ids.iter()).values())
955 .map(|(c, info)| LabeledCommitment::new_with_info(info, *c))
956 .chain(first_commitments)
957 .chain(second_commitments)
958 .chain(third_commitments)
959 .chain(fourth_commitments)
960 .chain(fifth_commitments)
961 .collect();
962
963 let query_set_time = start_timer!(|| "Constructing query set");
964 let (query_set, verifier_state) = AHPForR1CS::<_, SM>::verifier_query_set(verifier_state);
965 end_timer!(query_set_time);
966
967 sponge.absorb_nonnative_field_elements(proof.evaluations.to_field_elements());
968
969 let mut evaluations = Evaluations::new();
970
971 let mut current_circuit_id = "".to_string();
972 let mut circuit_index: i64 = -1;
973
974 for (label, (_point_name, q)) in query_set.to_set() {
975 if AHPForR1CS::<E::Fr, SM>::LC_WITH_ZERO_EVAL.contains(&label.as_ref()) {
976 evaluations.insert((label, q), E::Fr::zero());
977 } else {
978 if label != "g_1" {
979 let circuit_id = CircuitId::from_witness_label(&label).to_string();
980 if circuit_id != current_circuit_id {
981 circuit_index += 1;
982 current_circuit_id = circuit_id;
983 }
984 }
985 let eval = proof
986 .evaluations
987 .get(circuit_index as usize, &label)
988 .ok_or_else(|| AHPError::MissingEval(label.clone()))?;
989 evaluations.insert((label, q), eval);
990 }
991 }
992
993 let lc_time = start_timer!(|| "Constructing linear combinations");
994 let lc_s = AHPForR1CS::<_, SM>::construct_linear_combinations(
995 &public_inputs,
996 &evaluations,
997 &proof.third_msg,
998 &proof.fourth_msg,
999 &verifier_state,
1000 varuna_version,
1001 )?;
1002 end_timer!(lc_time);
1003
1004 let pc_time = start_timer!(|| "Checking linear combinations with PC");
1005 let evaluations_are_correct = SonicKZG10::<E, FS>::check_combinations(
1006 universal_verifier,
1007 lc_s.values(),
1008 &commitments,
1009 &query_set.to_set(),
1010 &evaluations,
1011 &proof.pc_proof,
1012 &mut sponge,
1013 )?;
1014 end_timer!(pc_time);
1015
1016 if !evaluations_are_correct {
1017 dev_eprintln!("SonicKZG10::Check failed using final challenge: {:?}", verifier_state.gamma);
1018 }
1019
1020 end_timer!(verifier_time, || format!(
1021 " SonicKZG10::Check for AHP Verifier linear equations: {}",
1022 evaluations_are_correct & proof_has_correct_zk_mode
1023 ));
1024 Ok(evaluations_are_correct & proof_has_correct_zk_mode)
1025 }
1026}