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+/* This file is part of DarkFi (https://dark.fi)
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+ *
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+ * Copyright (C) 2020-2022 Dyne.org foundation
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+ *
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+ * This program is free software: you can redistribute it and/or modify
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+ * it under the terms of the GNU Affero General Public License as
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+ * published by the Free Software Foundation, either version 3 of the
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+ * License, or (at your option) any later version.
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+ *
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+ * This program is distributed in the hope that it will be useful,
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+ * but WITHOUT ANY WARRANTY; without even the implied warranty of
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+ * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
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+ * GNU Affero General Public License for more details.
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+ *
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+ * You should have received a copy of the GNU Affero General Public License
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+ * along with this program. If not, see <https://www.gnu.org/licenses/>.
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+ */
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+
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+// ../zkas simple.zk
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+
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+use darkfi::{
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+ zk::{
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+ proof::{Proof, ProvingKey, VerifyingKey},
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+ vm::{Witness, ZkCircuit},
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+ vm_stack::empty_witnesses,
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+ },
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+ zkas::decoder::ZkBinary,
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+ Result,
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+};
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+use darkfi_sdk::{
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+ crypto::{constants::MERKLE_DEPTH, poseidon_hash, MerkleNode},
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+ incrementalmerkletree::{bridgetree::BridgeTree, Hashable, Tree},
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+ pasta::{group::ff::Field, pallas},
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+};
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+use darkfi_serial::Encodable;
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+use halo2_proofs::circuit::Value;
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+use rand::rngs::OsRng;
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+
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+type MerkleTree = BridgeTree<MerkleNode, { MERKLE_DEPTH }>;
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+
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+fn main() -> Result<()> {
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+ let mut tree = MerkleTree::new(100);
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+
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+ // Add 10 random things to the tree
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+ for _ in 0..10 {
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+ let random_leaf = pallas::Base::random(&mut OsRng);
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+ let node = MerkleNode::from(random_leaf);
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+ tree.append(&node);
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+ }
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+
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+ let leaf = pallas::Base::random(&mut OsRng);
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+ let node = MerkleNode::from(leaf);
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+ tree.append(&node);
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+
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+ let leaf_position = tree.witness().unwrap();
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+
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+ // Add 10 more random things to the tree
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+ for _ in 0..10 {
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+ let random_leaf = pallas::Base::random(&mut OsRng);
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+ let node = MerkleNode::from(random_leaf);
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+ tree.append(&node);
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+ }
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+
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+ let root = tree.root(0).unwrap();
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+
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+ // Now begin zk proof API
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+
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+ let bincode = include_bytes!("../proof/inclusion_proof.zk.bin");
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+ let zkbin = ZkBinary::decode(bincode)?;
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+
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+ // ======
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+ // Prover
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+ // ======
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+ // Bigger k = more rows, but slower circuit
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+ // Number of rows is 2^k
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+ let k = 11;
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+ println!("k = {}", k);
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+
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+ // Witness values
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+ let merkle_path = tree.authentication_path(leaf_position, &root).unwrap();
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+ let leaf_position: u64 = leaf_position.into();
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+ let blind = pallas::Base::random(&mut OsRng);
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+
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+ let prover_witnesses = vec![
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+ Witness::Base(Value::known(leaf)),
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+ Witness::Uint32(Value::known(leaf_position.try_into().unwrap())),
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+ Witness::MerklePath(Value::known(merkle_path.clone().try_into().unwrap())),
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+ Witness::Base(Value::known(blind)),
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+ ];
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+
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+ // Create the public inputs
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+ let merkle_root = {
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+ let position: u64 = leaf_position.into();
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+ let mut current = MerkleNode::from(leaf);
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+ for (level, sibling) in merkle_path.iter().enumerate() {
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+ let level = level as u8;
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+ current = if position & (1 << level) == 0 {
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+ MerkleNode::combine(level.into(), ¤t, sibling)
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+ } else {
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+ MerkleNode::combine(level.into(), sibling, ¤t)
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+ };
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+ }
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+ current
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+ };
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+
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+ let enc_leaf = poseidon_hash::<2>([leaf, blind]);
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+ let public_inputs = vec![merkle_root.inner(), enc_leaf];
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+
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+ // Create the circuit
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+ let circuit = ZkCircuit::new(prover_witnesses, zkbin.clone());
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+
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+ let now = std::time::Instant::now();
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+ let proving_key = ProvingKey::build(k, &circuit);
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+ println!("ProvingKey built [{} s]", now.elapsed().as_secs_f64());
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+ let now = std::time::Instant::now();
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+ let proof = Proof::create(&proving_key, &[circuit], &public_inputs, &mut OsRng)?;
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+ println!("Proof created [{} s]", now.elapsed().as_secs_f64());
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+
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+ // ========
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+ // Verifier
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+ // ========
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+
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+ // Construct empty witnesses
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+ let verifier_witnesses = empty_witnesses(&zkbin);
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+
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+ // Create the circuit
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+ let circuit = ZkCircuit::new(verifier_witnesses, zkbin);
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+
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+ let now = std::time::Instant::now();
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+ let verifying_key = VerifyingKey::build(k, &circuit);
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+ println!("VerifyingKey built [{} s]", now.elapsed().as_secs_f64());
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+ let now = std::time::Instant::now();
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+ proof.verify(&verifying_key, &public_inputs)?;
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+ println!("proof verify [{} s]", now.elapsed().as_secs_f64());
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+
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+ let mut data = vec![];
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+ proof.encode(&mut data)?;
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+ println!("proof size: {}", data.len());
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+
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+ Ok(())
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+}
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