tx.rs 6.3 KB

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  1. // Example transaction flow
  2. use incrementalmerkletree::{bridgetree::BridgeTree, Tree};
  3. use pasta_curves::{group::ff::Field, pallas};
  4. use rand::rngs::OsRng;
  5. use darkfi::{
  6. crypto::{
  7. coin::OwnCoin,
  8. constants::MERKLE_DEPTH,
  9. keypair::{Keypair, PublicKey, SecretKey},
  10. merkle_node::MerkleNode,
  11. note::{EncryptedNote, Note},
  12. nullifier::Nullifier,
  13. proof::{ProvingKey, VerifyingKey},
  14. },
  15. node::state::{state_transition, ProgramState, StateUpdate},
  16. tx::builder::{
  17. TransactionBuilder, TransactionBuilderClearInputInfo, TransactionBuilderInputInfo,
  18. TransactionBuilderOutputInfo,
  19. },
  20. zk::circuit::{BurnContract, MintContract},
  21. Result,
  22. };
  23. /// The state machine, held in memory.
  24. struct MemoryState {
  25. /// The entire Merkle tree state
  26. tree: BridgeTree<MerkleNode, MERKLE_DEPTH>,
  27. /// List of all previous and the current Merkle roots.
  28. /// This is the hashed value of all the children.
  29. merkle_roots: Vec<MerkleNode>,
  30. /// Nullifiers prevent double spending
  31. nullifiers: Vec<Nullifier>,
  32. /// All received coins
  33. // NOTE: We need maybe a flag to keep track of which ones are
  34. // spent. Maybe the spend field links to a tx hash:input index.
  35. // We should also keep track of the tx hash:output index where
  36. // this coin was received.
  37. own_coins: Vec<OwnCoin>,
  38. /// Verifying key for the mint zk circuit.
  39. mint_vk: VerifyingKey,
  40. /// Verifying key for the burn zk circuit.
  41. burn_vk: VerifyingKey,
  42. /// Public key of the cashier
  43. cashier_signature_public: PublicKey,
  44. /// Public key of the faucet
  45. faucet_signature_public: PublicKey,
  46. /// List of all our secret keys
  47. secrets: Vec<SecretKey>,
  48. }
  49. impl ProgramState for MemoryState {
  50. fn is_valid_cashier_public_key(&self, public: &PublicKey) -> bool {
  51. public == &self.cashier_signature_public
  52. }
  53. fn is_valid_faucet_public_key(&self, public: &PublicKey) -> bool {
  54. public == &self.faucet_signature_public
  55. }
  56. fn is_valid_merkle(&self, merkle_root: &MerkleNode) -> bool {
  57. self.merkle_roots.iter().any(|m| m == merkle_root)
  58. }
  59. fn nullifier_exists(&self, nullifier: &Nullifier) -> bool {
  60. self.nullifiers.iter().any(|n| n == nullifier)
  61. }
  62. fn mint_vk(&self) -> &VerifyingKey {
  63. &self.mint_vk
  64. }
  65. fn burn_vk(&self) -> &VerifyingKey {
  66. &self.burn_vk
  67. }
  68. }
  69. impl MemoryState {
  70. fn apply(&mut self, mut update: StateUpdate) {
  71. // Extend our list of nullifiers with the ones from the update
  72. self.nullifiers.append(&mut update.nullifiers);
  73. // Update merkle tree and witnesses
  74. for (coin, enc_note) in update.coins.into_iter().zip(update.enc_notes.into_iter()) {
  75. // Add the new coins to the Merkle tree
  76. let node = MerkleNode(coin.0);
  77. self.tree.append(&node);
  78. // Keep track of all Merkle roots that have existed
  79. self.merkle_roots.push(self.tree.root(0).unwrap());
  80. // If it's our own coin, witness it and append to the vector.
  81. if let Some((note, secret)) = self.try_decrypt_note(enc_note) {
  82. let leaf_position = self.tree.witness().unwrap();
  83. let nullifier = Nullifier::new(secret, note.serial);
  84. let own_coin = OwnCoin { coin, note, secret, nullifier, leaf_position };
  85. self.own_coins.push(own_coin);
  86. }
  87. }
  88. }
  89. fn try_decrypt_note(&self, ciphertext: EncryptedNote) -> Option<(Note, SecretKey)> {
  90. // Loop through all our secret keys...
  91. for secret in &self.secrets {
  92. // .. attempt to decrypt the note ...
  93. if let Ok(note) = ciphertext.decrypt(secret) {
  94. // ... and return the decrypted note for this coin.
  95. return Some((note, *secret))
  96. }
  97. }
  98. // We weren't able to decrypt the note with any of our keys.
  99. None
  100. }
  101. }
  102. fn main() -> Result<()> {
  103. let cashier_signature_secret = SecretKey::random(&mut OsRng);
  104. let cashier_signature_public = PublicKey::from_secret(cashier_signature_secret);
  105. let faucet_signature_secret = SecretKey::random(&mut OsRng);
  106. let faucet_signature_public = PublicKey::from_secret(faucet_signature_secret);
  107. let keypair = Keypair::random(&mut OsRng);
  108. let mint_vk = VerifyingKey::build(11, &MintContract::default());
  109. let burn_vk = VerifyingKey::build(11, &BurnContract::default());
  110. let mut state = MemoryState {
  111. tree: BridgeTree::<MerkleNode, MERKLE_DEPTH>::new(100),
  112. merkle_roots: vec![],
  113. nullifiers: vec![],
  114. own_coins: vec![],
  115. mint_vk,
  116. burn_vk,
  117. cashier_signature_public,
  118. faucet_signature_public,
  119. secrets: vec![keypair.secret],
  120. };
  121. let token_id = pallas::Base::random(&mut OsRng);
  122. let builder = TransactionBuilder {
  123. clear_inputs: vec![TransactionBuilderClearInputInfo {
  124. value: 110,
  125. token_id,
  126. signature_secret: cashier_signature_secret,
  127. }],
  128. inputs: vec![],
  129. outputs: vec![TransactionBuilderOutputInfo {
  130. value: 110,
  131. token_id,
  132. public: keypair.public,
  133. }],
  134. };
  135. let mint_pk = ProvingKey::build(11, &MintContract::default());
  136. let burn_pk = ProvingKey::build(11, &BurnContract::default());
  137. let tx = builder.build(&mint_pk, &burn_pk)?;
  138. tx.verify(&state.mint_vk, &state.burn_vk)?;
  139. let _note = tx.outputs[0].enc_note.decrypt(&keypair.secret)?;
  140. let update = state_transition(&state, tx)?;
  141. state.apply(update);
  142. // Now spend
  143. let owncoin = &state.own_coins[0];
  144. let note = &owncoin.note;
  145. let leaf_position = owncoin.leaf_position;
  146. let root = state.tree.root(0).unwrap();
  147. let merkle_path = state.tree.authentication_path(leaf_position, &root).unwrap();
  148. let builder = TransactionBuilder {
  149. clear_inputs: vec![],
  150. inputs: vec![TransactionBuilderInputInfo {
  151. leaf_position,
  152. merkle_path,
  153. secret: keypair.secret,
  154. note: note.clone(),
  155. }],
  156. outputs: vec![TransactionBuilderOutputInfo {
  157. value: 110,
  158. token_id,
  159. public: keypair.public,
  160. }],
  161. };
  162. let tx = builder.build(&mint_pk, &burn_pk)?;
  163. let update = state_transition(&state, tx)?;
  164. state.apply(update);
  165. Ok(())
  166. }