1use std::collections::{BTreeMap, BTreeSet};
2
3use slop_algebra::AbstractField;
4use slop_alloc::{CanCopyFromRef, CpuBackend, ToHost};
5use slop_challenger::{
6 CanObserve, FieldChallenger, GrindingChallenger, IopCtx, VariableLengthChallenger,
7};
8use slop_multilinear::{Mle, MultilinearPcsChallenger, Point};
9
10use crate::{
11 air::MachineAir, prove_gkr_round, prover::Traces, Chip, ChipEvaluation, LogupGkrCpuCircuit,
12 LogupGkrCpuTraceGenerator, ShardContext, GKR_GRINDING_BITS,
13};
14
15use super::{LogUpEvaluations, LogUpGkrOutput, LogupGkrProof, LogupGkrRoundProof};
16
17pub struct GkrProverImpl<GC: IopCtx, SC: ShardContext<GC>> {
19 trace_generator: LogupGkrCpuTraceGenerator<GC::F, GC::EF, SC::Air>,
21}
22
23impl<GC: IopCtx, SC: ShardContext<GC>> GkrProverImpl<GC, SC> {
25 #[must_use]
27 pub fn new(trace_generator: LogupGkrCpuTraceGenerator<GC::F, GC::EF, SC::Air>) -> Self {
28 Self { trace_generator }
29 }
30
31 pub fn prove_gkr_circuit(
33 &self,
34 numerator_value: GC::EF,
35 denominator_value: GC::EF,
36 eval_point: Point<GC::EF>,
37 mut circuit: LogupGkrCpuCircuit<GC::F, GC::EF>,
38 challenger: &mut GC::Challenger,
39 ) -> (Point<GC::EF>, Vec<LogupGkrRoundProof<GC::EF>>) {
40 let mut round_proofs = Vec::new();
41 let mut numerator_eval = numerator_value;
43 let mut denominator_eval = denominator_value;
44 let mut eval_point = eval_point;
45 while let Some(layer) = circuit.next_layer() {
46 let round_proof =
47 prove_gkr_round(layer, &eval_point, numerator_eval, denominator_eval, challenger);
48 challenger.observe_ext_element(round_proof.numerator_0);
50 challenger.observe_ext_element(round_proof.numerator_1);
51 challenger.observe_ext_element(round_proof.denominator_0);
52 challenger.observe_ext_element(round_proof.denominator_1);
53 eval_point = round_proof.sumcheck_proof.point_and_eval.0.clone();
55 let last_coordinate = challenger.sample_ext_element::<GC::EF>();
57 numerator_eval = round_proof.numerator_0
59 + (round_proof.numerator_1 - round_proof.numerator_0) * last_coordinate;
60 denominator_eval = round_proof.denominator_0
61 + (round_proof.denominator_1 - round_proof.denominator_0) * last_coordinate;
62 eval_point.add_dimension_back(last_coordinate);
63 round_proofs.push(round_proof);
65 }
66 (eval_point, round_proofs)
67 }
68
69 #[allow(clippy::too_many_arguments)]
70 pub(crate) fn prove_logup_gkr(
71 &self,
72 chips: &BTreeSet<Chip<GC::F, SC::Air>>,
73 preprocessed_traces: &Traces<GC::F, CpuBackend>,
74 traces: &Traces<GC::F, CpuBackend>,
75 public_values: Vec<GC::F>,
76 challenger: &mut GC::Challenger,
77 ) -> LogupGkrProof<<GC::Challenger as GrindingChallenger>::Witness, GC::EF> {
78 let max_interaction_arity = chips
79 .iter()
80 .flat_map(|c| c.sends().iter().chain(c.receives().iter()))
81 .map(|i| i.values.len() + 1)
82 .max()
83 .unwrap();
84 let beta_seed_dim = max_interaction_arity.next_power_of_two().ilog2();
85
86 let witness = challenger.grind(GKR_GRINDING_BITS);
87
88 let alpha = challenger.sample_ext_element::<GC::EF>();
90 let beta_seed = (0..beta_seed_dim)
91 .map(|_| challenger.sample_ext_element::<GC::EF>())
92 .collect::<Point<_>>();
93 let _pv_challenge = challenger.sample_ext_element::<GC::EF>();
94
95 let num_interactions =
96 chips.iter().map(|chip| chip.sends().len() + chip.receives().len()).sum::<usize>();
97 let num_interaction_variables = num_interactions.next_power_of_two().ilog2();
98
99 #[cfg(sp1_debug_constraints)]
100 {
101 use crate::{
102 air::InteractionScope, debug_interactions_with_all_chips, InteractionKind,
103 };
104 use slop_alloc::CanCopyIntoRef;
105
106 let mut host_preprocessed_traces = BTreeMap::new();
107
108 for (name, preprocessed_trace) in preprocessed_traces.iter() {
109 let host_preprocessed_trace =
110 CpuBackend::copy_to_dst(&CpuBackend, preprocessed_trace).unwrap();
111 host_preprocessed_traces.insert(name.clone(), host_preprocessed_trace);
112 }
113
114 let mut host_traces = BTreeMap::new();
115 for (name, trace) in traces.iter() {
116 let host_trace = CpuBackend::copy_to_dst(&CpuBackend, trace).unwrap();
117 host_traces.insert(name.clone(), host_trace);
118 }
119
120 let host_traces = Traces { named_traces: host_traces };
121
122 let host_preprocessed_traces = Traces { named_traces: host_preprocessed_traces };
123
124 debug_interactions_with_all_chips::<GC::F, SC::Air>(
125 &chips.iter().cloned().collect::<Vec<_>>(),
126 &host_preprocessed_traces,
127 &host_traces,
128 public_values.clone(),
129 InteractionKind::all_kinds(),
130 InteractionScope::Local,
131 );
132 }
133
134 let (output, circuit) = {
136 let _span = tracing::debug_span!("generate GKR circuit").entered();
137 self.trace_generator.generate_gkr_circuit(
138 chips,
139 preprocessed_traces.clone(),
140 traces.clone(),
141 public_values,
142 alpha,
143 beta_seed,
144 )
145 };
146
147 let LogUpGkrOutput { numerator, denominator } = &output;
148
149 let host_numerator = numerator.to_host().unwrap();
150 let host_denominator = denominator.to_host().unwrap();
151
152 challenger.observe_variable_length_extension_slice(host_numerator.guts().as_slice());
153 challenger.observe_variable_length_extension_slice(host_denominator.guts().as_slice());
154 let output_host =
155 LogUpGkrOutput { numerator: host_numerator, denominator: host_denominator };
156
157 let initial_number_of_variables = numerator.num_variables();
159 assert_eq!(initial_number_of_variables, num_interaction_variables + 1);
160 let first_eval_point = challenger.sample_point::<GC::EF>(initial_number_of_variables);
161
162 let first_point = numerator.backend().copy_to(&first_eval_point).unwrap();
164 let first_point_eq = Mle::partial_lagrange(&first_point);
165 let first_numerator_eval = numerator.eval_at_eq(&first_point_eq).to_host().unwrap()[0];
166 let first_denominator_eval = denominator.eval_at_eq(&first_point_eq).to_host().unwrap()[0];
167
168 let (eval_point, round_proofs) = {
169 let _span = tracing::debug_span!("prove GKR circuit").entered();
170 self.prove_gkr_circuit(
171 first_numerator_eval,
172 first_denominator_eval,
173 first_eval_point,
174 circuit,
175 challenger,
176 )
177 };
178
179 let mut chip_evaluations = BTreeMap::new();
181
182 let trace_dimension = traces.values().next().unwrap().num_variables();
183 let eval_point = eval_point.last_k(trace_dimension as usize);
184 let eval_point_b = numerator.backend().copy_to(&eval_point).unwrap();
185 let eval_point_eq = Mle::partial_lagrange(&eval_point_b);
186
187 challenger.observe(GC::F::from_canonical_usize(chips.len()));
188 for chip in chips.iter() {
189 let name = chip.name();
190 let main_trace = traces.get(name).unwrap();
191 let preprocessed_trace = preprocessed_traces.get(name);
192
193 let main_evaluation = main_trace.eval_at_eq(&eval_point, &eval_point_eq);
194 let preprocessed_evaluation =
195 preprocessed_trace.as_ref().map(|t| t.eval_at_eq(&eval_point, &eval_point_eq));
196 let main_evaluation = main_evaluation.to_host().unwrap();
197 let preprocessed_evaluation = preprocessed_evaluation.map(|e| e.to_host().unwrap());
198 let openings = ChipEvaluation {
199 main_trace_evaluations: main_evaluation,
200 preprocessed_trace_evaluations: preprocessed_evaluation,
201 };
202 if let Some(prep_eval) = openings.preprocessed_trace_evaluations.as_ref() {
204 challenger.observe_variable_length_extension_slice(prep_eval);
205 }
206 challenger.observe_variable_length_extension_slice(&openings.main_trace_evaluations);
207
208 chip_evaluations.insert(name.to_string(), openings);
209 }
210
211 let logup_evaluations =
212 LogUpEvaluations { point: eval_point, chip_openings: chip_evaluations };
213
214 LogupGkrProof { circuit_output: output_host, round_proofs, logup_evaluations, witness }
215 }
216}