burn_proof.rs 4.4 KB

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  1. use darkfi::{
  2. crypto::{
  3. keypair::{PublicKey, SecretKey},
  4. merkle_node::MerkleNode,
  5. proof::{ProvingKey, VerifyingKey},
  6. util::{mod_r_p, pedersen_commitment_scalar, pedersen_commitment_u64},
  7. Proof,
  8. },
  9. zk::{
  10. vm::{Witness, ZkCircuit},
  11. vm_stack::empty_witnesses,
  12. },
  13. zkas::decoder::ZkBinary,
  14. Result,
  15. };
  16. use halo2_gadgets::poseidon::primitives as poseidon;
  17. use halo2_proofs::circuit::Value;
  18. use incrementalmerkletree::{bridgetree::BridgeTree, Tree};
  19. use pasta_curves::{
  20. arithmetic::CurveAffine,
  21. group::{ff::Field, Curve},
  22. pallas,
  23. };
  24. use rand::rngs::OsRng;
  25. #[test]
  26. fn burn_proof() -> Result<()> {
  27. /* ANCHOR: main */
  28. let bincode = include_bytes!("../proof/burn.zk.bin");
  29. let zkbin = ZkBinary::decode(bincode)?;
  30. // ======
  31. // Prover
  32. // ======
  33. // Witness values
  34. let value = 42;
  35. let token_id = pallas::Base::from(22);
  36. let value_blind = pallas::Scalar::random(&mut OsRng);
  37. let token_blind = pallas::Scalar::random(&mut OsRng);
  38. let serial = pallas::Base::random(&mut OsRng);
  39. let coin_blind = pallas::Base::random(&mut OsRng);
  40. let secret = SecretKey::random(&mut OsRng);
  41. let sig_secret = SecretKey::random(&mut OsRng);
  42. // Build the coin
  43. let coin2 = {
  44. let coords = PublicKey::from_secret(secret).0.to_affine().coordinates().unwrap();
  45. let messages =
  46. [*coords.x(), *coords.y(), pallas::Base::from(value), token_id, serial, coin_blind];
  47. poseidon::Hash::<_, poseidon::P128Pow5T3, poseidon::ConstantLength<6>, 3, 2>::init()
  48. .hash(messages)
  49. };
  50. // Fill the merkle tree with some random coins that we want to witness,
  51. // and also add the above coin.
  52. let mut tree = BridgeTree::<MerkleNode, 32>::new(100);
  53. let coin0 = pallas::Base::random(&mut OsRng);
  54. let coin1 = pallas::Base::random(&mut OsRng);
  55. let coin3 = pallas::Base::random(&mut OsRng);
  56. tree.append(&MerkleNode(coin0));
  57. tree.witness();
  58. tree.append(&MerkleNode(coin1));
  59. tree.append(&MerkleNode(coin2));
  60. let leaf_pos = tree.witness().unwrap();
  61. tree.append(&MerkleNode(coin3));
  62. tree.witness();
  63. let root = tree.root(0).unwrap();
  64. let merkle_path = tree.authentication_path(leaf_pos, &root).unwrap();
  65. let leaf_pos: u64 = leaf_pos.into();
  66. let prover_witnesses = vec![
  67. Witness::Base(Value::known(secret.0)),
  68. Witness::Base(Value::known(serial)),
  69. Witness::Base(Value::known(pallas::Base::from(value))),
  70. Witness::Base(Value::known(token_id)),
  71. Witness::Base(Value::known(coin_blind)),
  72. Witness::Scalar(Value::known(value_blind)),
  73. Witness::Scalar(Value::known(token_blind)),
  74. Witness::Uint32(Value::known(leaf_pos.try_into().unwrap())),
  75. Witness::MerklePath(Value::known(merkle_path.try_into().unwrap())),
  76. Witness::Base(Value::known(sig_secret.0)),
  77. ];
  78. // Create the public inputs
  79. let nullifier = [secret.0, serial];
  80. let nullifier =
  81. poseidon::Hash::<_, poseidon::P128Pow5T3, poseidon::ConstantLength<2>, 3, 2>::init()
  82. .hash(nullifier);
  83. let value_commit = pedersen_commitment_u64(value, value_blind);
  84. let value_coords = value_commit.to_affine().coordinates().unwrap();
  85. let token_commit = pedersen_commitment_scalar(mod_r_p(token_id), token_blind);
  86. let token_coords = token_commit.to_affine().coordinates().unwrap();
  87. let sig_pubkey = PublicKey::from_secret(sig_secret);
  88. let sig_coords = sig_pubkey.0.to_affine().coordinates().unwrap();
  89. let merkle_root = tree.root(0).unwrap();
  90. let public_inputs = vec![
  91. nullifier,
  92. *value_coords.x(),
  93. *value_coords.y(),
  94. *token_coords.x(),
  95. *token_coords.y(),
  96. merkle_root.0,
  97. *sig_coords.x(),
  98. *sig_coords.y(),
  99. ];
  100. // Create the circuit
  101. let circuit = ZkCircuit::new(prover_witnesses, zkbin.clone());
  102. let proving_key = ProvingKey::build(13, &circuit);
  103. let proof = Proof::create(&proving_key, &[circuit], &public_inputs, &mut OsRng)?;
  104. // ========
  105. // Verifier
  106. // ========
  107. // Construct empty witnesses
  108. let verifier_witnesses = empty_witnesses(&zkbin);
  109. // Create the circuit
  110. let circuit = ZkCircuit::new(verifier_witnesses, zkbin);
  111. let verifying_key = VerifyingKey::build(13, &circuit);
  112. proof.verify(&verifying_key, &public_inputs)?;
  113. /* ANCHOR_END: main */
  114. Ok(())
  115. }