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@@ -0,0 +1,309 @@
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+use bellman::groth16;
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+use bls12_381::Bls12;
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+use ff::{Field, PrimeField};
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+use rand::rngs::OsRng;
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+use std::path::Path;
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+
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+use async_std::sync::{Arc, Mutex};
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+use drk::crypto::{
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+ coin::Coin,
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+ load_params,
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+ merkle::{CommitmentTree, IncrementalWitness},
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+ merkle_node::MerkleNode,
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+ note::{EncryptedNote, Note},
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+ nullifier::Nullifier,
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+ save_params, setup_mint_prover, setup_spend_prover,
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+};
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+use drk::serial::{Decodable, Encodable};
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+use drk::state::{state_transition, ProgramState, StateUpdate};
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+use drk::tx;
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+
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+struct MemoryState {
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+ // The entire merkle tree state
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+ tree: CommitmentTree<MerkleNode>,
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+ // List of all previous and the current merkle roots
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+ // This is the hashed value of all the children.
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+ merkle_roots: Vec<MerkleNode>,
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+ // Nullifiers prevent double spending
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+ nullifiers: Vec<Nullifier>,
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+ // All received coins
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+ // NOTE: we need maybe a flag to keep track of which ones are spent
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+ // Maybe the spend field links to a tx hash:input index
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+ // We should also keep track of the tx hash:output index where this
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+ // coin was received
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+ own_coins: Vec<(Coin, Note, jubjub::Fr, IncrementalWitness<MerkleNode>)>,
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+
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+ // Mint verifying key used by ZK
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+ mint_pvk: groth16::PreparedVerifyingKey<Bls12>,
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+ // Spend verifying key used by ZK
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+ spend_pvk: groth16::PreparedVerifyingKey<Bls12>,
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+
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+ // Public key of the cashier
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+ cashier_public: jubjub::SubgroupPoint,
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+ // List of all our secret keys
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+ secrets: Vec<jubjub::Fr>,
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+}
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+
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+impl ProgramState for MemoryState {
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+ fn is_valid_cashier_public_key(&self, public: &jubjub::SubgroupPoint) -> bool {
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+ public == &self.cashier_public
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+ }
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+ fn is_valid_merkle(&self, merkle_root: &MerkleNode) -> bool {
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+ self.merkle_roots.iter().any(|m| *m == *merkle_root)
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+ }
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+ fn nullifier_exists(&self, nullifier: &Nullifier) -> bool {
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+ self.nullifiers.iter().any(|n| n.repr == nullifier.repr)
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+ }
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+
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+ fn mint_pvk(&self) -> &groth16::PreparedVerifyingKey<Bls12> {
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+ &self.mint_pvk
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+ }
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+ fn spend_pvk(&self) -> &groth16::PreparedVerifyingKey<Bls12> {
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+ &self.spend_pvk
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+ }
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+}
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+
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+impl MemoryState {
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+ fn apply(&mut self, mut update: StateUpdate) {
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+ // Extend our list of nullifiers with the ones from the update
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+ self.nullifiers.append(&mut update.nullifiers);
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+
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+ // Update merkle tree and witnesses
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+ for (coin, enc_note) in update.coins.into_iter().zip(update.enc_notes.into_iter()) {
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+ // Add the new coins to the merkle tree
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+ let node = MerkleNode::from_coin(&coin);
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+ self.tree.append(node).expect("Append to merkle tree");
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+
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+ // Keep track of all merkle roots that have existed
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+ self.merkle_roots.push(self.tree.root());
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+
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+ // Also update all the coin witnesses
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+ for (_, _, _, witness) in self.own_coins.iter_mut() {
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+ witness.append(node).expect("append to witness");
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+ }
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+
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+ if let Some((note, secret)) = self.try_decrypt_note(enc_note) {
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+ // We need to keep track of the witness for this coin.
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+ // This allows us to prove inclusion of the coin in the merkle tree with ZK.
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+ // Just as we update the merkle tree with every new coin, so we do the same with
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+ // the witness.
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+
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+ // Derive the current witness from the current tree.
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+ // This is done right after we add our coin to the tree (but before any other
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+ // coins are added)
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+
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+ // Make a new witness for this coin
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+ let witness = IncrementalWitness::from_tree(&self.tree);
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+ self.own_coins.push((coin, note, secret, witness));
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+ }
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+ }
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+ }
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+
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+ fn try_decrypt_note(&self, ciphertext: EncryptedNote) -> Option<(Note, jubjub::Fr)> {
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+ // Loop through all our secret keys...
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+ for secret in &self.secrets {
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+ // ... attempt to decrypt the note ...
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+ match ciphertext.decrypt(secret) {
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+ Ok(note) => {
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+ // ... and return the decrypted note for this coin.
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+ return Some((note, secret.clone()));
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+ }
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+ Err(_) => {}
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+ }
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+ }
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+ // We weren't able to decrypt the note with any of our keys.
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+ None
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+ }
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+}
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+
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+#[async_std::main]
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+async fn main() {
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+ // Auto create trusted ceremony parameters if they don't exist
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+ if !Path::new("mint.params").exists() {
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+ let params = setup_mint_prover();
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+ save_params("mint.params", ¶ms).unwrap();
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+ }
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+ if !Path::new("spend.params").exists() {
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+ let params = setup_spend_prover();
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+ save_params("spend.params", ¶ms).unwrap();
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+ }
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+
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+ // Load trusted setup parameters
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+ let (mint_params, mint_pvk) = load_params("mint.params").expect("params should load");
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+ let (spend_params, spend_pvk) = load_params("spend.params").expect("params should load");
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+
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+ // Cashier creates a secret key
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+ let cashier_secret = jubjub::Fr::random(&mut OsRng);
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+ // This is their public key
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+ let cashier_public = zcash_primitives::constants::SPENDING_KEY_GENERATOR * cashier_secret;
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+
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+ // Wallet 1 creates a secret key
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+ let secret = jubjub::Fr::random(&mut OsRng);
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+ // This is their public key
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+ let public = zcash_primitives::constants::SPENDING_KEY_GENERATOR * secret;
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+
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+ let mut state = MemoryState {
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+ tree: CommitmentTree::empty(),
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+ merkle_roots: vec![],
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+ nullifiers: vec![],
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+ own_coins: vec![],
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+ mint_pvk,
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+ spend_pvk,
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+ cashier_public,
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+ secrets: vec![secret.clone()],
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+ };
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+
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+ // Step 1: Cashier deposits to wallet1's address
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+
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+ // Create the deposit for 110 BTC
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+ // Clear inputs are visible to everyone on the network
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+
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+ let asset_id = jubjub::Fr::random(&mut OsRng);
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+ let builder = tx::TransactionBuilder {
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+ clear_inputs: vec![tx::TransactionBuilderClearInputInfo {
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+ value: 110,
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+ asset_id: asset_id,
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+ signature_secret: cashier_secret,
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+ }],
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+ inputs: vec![],
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+ outputs: vec![tx::TransactionBuilderOutputInfo {
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+ value: 110,
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+ asset_id: asset_id,
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+ public,
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+ }],
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+ };
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+
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+ // We will 'compile' the tx, and then serialize it to this Vec<u8>
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+ let mut tx_data = vec![];
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+ {
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+ // Build the tx
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+ let tx = builder.build(&mint_params, &spend_params);
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+ // Now serialize it
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+ tx.encode(&mut tx_data).expect("encode tx");
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+ }
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+
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+ // Step 1 is completed.
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+ // Tx data is posted to the blockchain
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+
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+ // Step 2: wallet1 receive's payment from the cashier
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+
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+ // Wallet1 is receiving tx, and for every new coin it finds, it adds to its
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+ // merkle tree
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+ {
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+ // Here we simulate 5 fake random coins, adding them to our tree.
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+ let tree = &mut state.tree;
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+ for _i in 0..5 {
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+ // Don't worry about any of the code in this block
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+ // We're just filling the tree with fake coins
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+ let cmu = MerkleNode::new(bls12_381::Scalar::random(&mut OsRng).to_repr());
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+ tree.append(cmu).unwrap();
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+
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+ let root = tree.root();
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+ state.merkle_roots.push(root.into());
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+ }
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+ }
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+
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+ let state = Mutex::new(state);
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+ let mut state = state.lock().await;
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+ // Now we receive the tx data
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+ {
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+ let tx = tx::Transaction::decode(&tx_data[..]).unwrap();
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+
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+ let update = state_transition(&state, tx).expect("step 2 state transition failed");
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+ // Our state impl is memory online for this demo
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+ // but in the real version, this function will be async
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+ // and using the databases.
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+ state.apply(update);
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+ }
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+
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+ //// Wallet1 has received payment from the cashier.
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+ //// Step 2 is complete.
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+ assert_eq!(state.own_coins.len(), 1);
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+ ////let (coin, note, secret, witness) = &mut state.own_coins[0];
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+
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+ //let merkle_path = {
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+ // let tree = &mut state.tree;
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+ // let (coin, _, _, witness) = &mut state.own_coins[0];
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+ // // Check this is the 6th coin we added
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+ // assert_eq!(witness.position(), 5);
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+ // assert_eq!(tree.root(), witness.root());
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+
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+ // // Add some more random coins in
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+ // for _i in 0..10 {
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+ // // Don't worry about any of the code in this block
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+ // // We're just filling the tree with fake coins
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+ // let cmu = MerkleNode::new(bls12_381::Scalar::random(&mut OsRng).to_repr());
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+ // tree.append(cmu).unwrap();
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+ // witness.append(cmu).unwrap();
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+ // assert_eq!(tree.root(), witness.root());
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+
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+ // let root = tree.root();
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+ // state.merkle_roots.push(root.into());
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+ // }
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+
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+ // assert_eq!(state.merkle_roots.len(), 16);
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+
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+ // // This is the value we need to spend the coin
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+ // // We use the witness and the merkle root (both in sync with each other)
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+ // // to prove our coin exists inside the tree.
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+ // // The coin is not revealed publicly but is proved to exist inside
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+ // // a merkle tree. Only the root will be revealed, and then the
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+ // // verifier checks that merkle root actually existed before.
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+ // let merkle_path = witness.path().unwrap();
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+
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+ // // Just test the path is good because we just added a bunch of fake coins
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+ // let node = MerkleNode::from_coin(&coin);
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+ // let root = tree.root();
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+ // drop(tree);
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+ // drop(witness);
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+ // assert_eq!(merkle_path.root(node), root);
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+ // let root = root.into();
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+ // assert!(state.is_valid_merkle(&root));
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+
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+ // merkle_path
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+ //};
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+
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+ // Step 3: wallet1 sends payment to wallet2
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+
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+ // Wallet1 now wishes to send the coin to wallet2
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+
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+ // The receiving wallet has a secret key
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+ let secret2 = jubjub::Fr::random(&mut OsRng);
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+ // This is their public key to receive payment
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+ let public2 = zcash_primitives::constants::SPENDING_KEY_GENERATOR * secret2;
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+
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+ // Make a spend tx
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+
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+ //let inputs: Vec<tx::TransactionBuilderInputInfo> = vec![];
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+ // Construct a new tx spending the coin
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+ // We need the decrypted note and our private key
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+ let builder = tx::TransactionBuilder {
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+ clear_inputs: vec![],
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+ inputs: vec![],
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+ //inputs: vec![tx::TransactionBuilderInputInfo {
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+ // merkle_path,
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+ // secret: secret.clone(),
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+ // note: state.own_coins[0].1.clone(),
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+ //}],
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+ // We can add more outputs to this list.
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+ // The only constraint is that sum(value in) == sum(value out)
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+ outputs: vec![tx::TransactionBuilderOutputInfo {
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+ value: 110,
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+ asset_id: asset_id,
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+ public: public2,
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+ }],
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+ };
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+ // Build the tx
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+ let mut tx_data = vec![];
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+ {
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+ let tx = builder.build(&mint_params, &spend_params);
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+ tx.encode(&mut tx_data).expect("encode tx");
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+ }
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+ // Verify it's valid
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+ {
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+ let tx = tx::Transaction::decode(&tx_data[..]).unwrap();
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+ //let state = state.lock().await;
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+ //let update = state_transition(&state, tx).expect("step 3 state transition failed");
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+ //state.apply(update);
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+ }
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+}
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