darkfid.rs 20 KB

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  1. use async_std::sync::Arc;
  2. //use drk::rpc::
  3. use drk::rpc::adapter::{RpcAdapter};
  4. use drk::rpc::jsonserver;
  5. //use drk::rpc::options::ProgramOptions;
  6. use rand::rngs::OsRng;
  7. use std::net::SocketAddr;
  8. use drk::blockchain::{rocks::columns, Rocks, RocksColumn};
  9. use drk::crypto::{
  10. load_params,
  11. merkle::{CommitmentTree, IncrementalWitness},
  12. merkle_node::MerkleNode,
  13. note::{EncryptedNote, Note},
  14. nullifier::Nullifier,
  15. save_params, setup_mint_prover, setup_spend_prover,
  16. };
  17. use drk::serial::Decodable;
  18. use drk::service::{ClientProgramOptions, GatewayClient, GatewaySlabsSubscriber};
  19. use drk::state::{state_transition, ProgramState, StateUpdate};
  20. use drk::wallet::{WalletDB, WalletPtr};
  21. use drk::{tx, Result};
  22. use rusqlite::Connection;
  23. use async_executor::Executor;
  24. use bellman::groth16;
  25. use bls12_381::Bls12;
  26. use easy_parallel::Parallel;
  27. use ff::Field;
  28. use std::path::Path;
  29. #[allow(dead_code)]
  30. pub struct State {
  31. // The entire merkle tree state
  32. tree: CommitmentTree<MerkleNode>,
  33. // List of all previous and the current merkle roots
  34. // This is the hashed value of all the children.
  35. merkle_roots: RocksColumn<columns::MerkleRoots>,
  36. // Nullifiers prevent double spending
  37. nullifiers: RocksColumn<columns::Nullifiers>,
  38. // All received coins
  39. // Mint verifying key used by ZK
  40. mint_pvk: groth16::PreparedVerifyingKey<Bls12>,
  41. // Spend verifying key used by ZK
  42. spend_pvk: groth16::PreparedVerifyingKey<Bls12>,
  43. // Public key of the cashier
  44. // List of all our secret keys
  45. wallet: WalletPtr,
  46. }
  47. impl ProgramState for State {
  48. fn is_valid_cashier_public_key(&self, _public: &jubjub::SubgroupPoint) -> bool {
  49. let conn = Connection::open(&self.wallet.path).expect("Failed to connect to database");
  50. let mut stmt = conn
  51. .prepare("SELECT key_public FROM cashier WHERE key_public IN (SELECT key_public)")
  52. .expect("Cannot generate statement.");
  53. stmt.exists([1i32]).expect("Failed to read database")
  54. // do actual validity check
  55. }
  56. fn is_valid_merkle(&self, merkle_root: &MerkleNode) -> bool {
  57. self.merkle_roots
  58. .key_exist(*merkle_root)
  59. .expect("couldn't check if the merkle_root valid")
  60. }
  61. fn nullifier_exists(&self, nullifier: &Nullifier) -> bool {
  62. self.nullifiers
  63. .key_exist(nullifier.repr)
  64. .expect("couldn't check if nullifier exists")
  65. }
  66. // load from disk
  67. fn mint_pvk(&self) -> &groth16::PreparedVerifyingKey<Bls12> {
  68. &self.mint_pvk
  69. }
  70. fn spend_pvk(&self) -> &groth16::PreparedVerifyingKey<Bls12> {
  71. &self.spend_pvk
  72. }
  73. }
  74. impl State {
  75. async fn apply(&mut self, update: StateUpdate) -> Result<()> {
  76. // Extend our list of nullifiers with the ones from the update
  77. for nullifier in update.nullifiers {
  78. self.nullifiers.put(nullifier, vec![] as Vec<u8>)?;
  79. }
  80. // Update merkle tree and witnesses
  81. for (coin, enc_note) in update.coins.into_iter().zip(update.enc_notes.into_iter()) {
  82. // Add the new coins to the merkle tree
  83. let node = MerkleNode::from_coin(&coin);
  84. self.tree.append(node).expect("Append to merkle tree");
  85. // Keep track of all merkle roots that have existed
  86. self.merkle_roots.put(self.tree.root(), vec![] as Vec<u8>)?;
  87. // Also update all the coin witnesses
  88. for witness in self.wallet.witnesses.lock().await.iter_mut() {
  89. witness.append(node).expect("append to witness");
  90. }
  91. if let Some((note, _secret)) = self.try_decrypt_note(enc_note).await {
  92. // We need to keep track of the witness for this coin.
  93. // This allows us to prove inclusion of the coin in the merkle tree with ZK.
  94. // Just as we update the merkle tree with every new coin, so we do the same with
  95. // the witness.
  96. // Derive the current witness from the current tree.
  97. // This is done right after we add our coin to the tree (but before any other
  98. // coins are added)
  99. // Make a new witness for this coin
  100. let witness = IncrementalWitness::from_tree(&self.tree);
  101. self.wallet.put_own_coins(coin, note, witness).await?;
  102. }
  103. }
  104. Ok(())
  105. }
  106. async fn try_decrypt_note(&self, ciphertext: EncryptedNote) -> Option<(Note, jubjub::Fr)> {
  107. let vec = self.wallet.get_private().ok()?;
  108. let secret = self
  109. .wallet
  110. .get_value_deserialized::<jubjub::Fr>(vec)
  111. .await
  112. .expect("Deserialize failed");
  113. match ciphertext.decrypt(&secret) {
  114. Ok(note) => {
  115. // ... and return the decrypted note for this coin.
  116. return Some((note, secret.clone()));
  117. }
  118. Err(_) => {}
  119. }
  120. // We weren't able to decrypt the note with our key.
  121. None
  122. }
  123. }
  124. fn setup_addr(address: Option<SocketAddr>, default: SocketAddr) -> SocketAddr {
  125. match address {
  126. Some(addr) => addr,
  127. None => default,
  128. }
  129. }
  130. pub async fn subscribe(gateway_slabs_sub: GatewaySlabsSubscriber, mut state: State) -> Result<()> {
  131. loop {
  132. let slab = gateway_slabs_sub.recv().await?;
  133. let tx = tx::Transaction::decode(&slab.get_payload()[..])?;
  134. let update = state_transition(&state, tx)?;
  135. state.apply(update).await?;
  136. }
  137. }
  138. async fn start(executor: Arc<Executor<'_>>, options: Arc<ClientProgramOptions>) -> Result<()> {
  139. let connect_addr: SocketAddr = setup_addr(options.connect_addr, "127.0.0.1:3333".parse()?);
  140. let sub_addr: SocketAddr = setup_addr(options.sub_addr, "127.0.0.1:4444".parse()?);
  141. let database_path = options.database_path.as_path();
  142. let rocks = Rocks::new(database_path)?;
  143. let slabstore = RocksColumn::<columns::Slabs>::new(rocks.clone());
  144. //let adapter = RpcAdapter::new("wallet.db")?;
  145. //
  146. // Auto create trusted ceremony parameters if they don't exist
  147. if !Path::new("mint.params").exists() {
  148. let params = setup_mint_prover();
  149. save_params("mint.params", &params)?;
  150. }
  151. if !Path::new("spend.params").exists() {
  152. let params = setup_spend_prover();
  153. save_params("spend.params", &params)?;
  154. }
  155. // Load trusted setup parameters
  156. let (_mint_params, mint_pvk) = load_params("mint.params")?;
  157. let (_spend_params, spend_pvk) = load_params("spend.params")?;
  158. //let cashier_secret = jubjub::Fr::random(&mut OsRng);
  159. //let cashier_public = zcash_primitives::constants::SPENDING_KEY_GENERATOR * cashier_secret;
  160. // wallet secret key
  161. let secret = jubjub::Fr::random(&mut OsRng);
  162. // wallet public key
  163. let _public = zcash_primitives::constants::SPENDING_KEY_GENERATOR * secret;
  164. let merkle_roots = RocksColumn::<columns::MerkleRoots>::new(rocks.clone());
  165. let nullifiers = RocksColumn::<columns::Nullifiers>::new(rocks);
  166. //let wallet = adapter.wallet;
  167. let wallet = Arc::new(WalletDB::new("wallet.db")?);
  168. //let wallet2 = wallet.clone();
  169. let ex = executor.clone();
  170. let state = State {
  171. tree: CommitmentTree::empty(),
  172. merkle_roots,
  173. nullifiers,
  174. mint_pvk,
  175. spend_pvk,
  176. wallet: wallet.clone(),
  177. };
  178. let adapter = RpcAdapter::new(wallet.clone())?;
  179. // start the rpc server
  180. jsonserver::start(ex.clone(), options.clone(), adapter).await?;
  181. // create gateway client
  182. let mut client = GatewayClient::new(connect_addr, slabstore)?;
  183. // start subscribing
  184. let gateway_slabs_sub: GatewaySlabsSubscriber =
  185. client.start_subscriber(sub_addr, executor.clone()).await?;
  186. let subscribe_task = executor.spawn(subscribe(gateway_slabs_sub, state));
  187. // start gateway client
  188. client.start().await?;
  189. subscribe_task.cancel().await;
  190. Ok(())
  191. }
  192. fn main() -> Result<()> {
  193. use simplelog::*;
  194. let ex = Arc::new(Executor::new());
  195. let (signal, shutdown) = async_channel::unbounded::<()>();
  196. let options = Arc::new(ClientProgramOptions::load()?);
  197. let logger_config = ConfigBuilder::new().set_time_format_str("%T%.6f").build();
  198. let debug_level = if options.verbose {
  199. LevelFilter::Debug
  200. } else {
  201. LevelFilter::Off
  202. };
  203. CombinedLogger::init(vec![
  204. TermLogger::new(debug_level, logger_config, TerminalMode::Mixed).unwrap(),
  205. WriteLogger::new(
  206. LevelFilter::Debug,
  207. Config::default(),
  208. std::fs::File::create(options.log_path.as_path()).unwrap(),
  209. ),
  210. ])
  211. .unwrap();
  212. let ex2 = ex.clone();
  213. let (_, result) = Parallel::new()
  214. // Run four executor threads.
  215. .each(0..3, |_| smol::future::block_on(ex.run(shutdown.recv())))
  216. // Run the main future on the current thread.
  217. .finish(|| {
  218. smol::future::block_on(async move {
  219. start(ex2, options).await?;
  220. drop(signal);
  221. Ok::<(), drk::Error>(())
  222. })
  223. });
  224. result
  225. }
  226. //// $ cargo test test_ten_clients_simultaneously --bin darkfid
  227. //this will run 10 clients simultaneously
  228. //// $ cargo test test_subscriber --bin darkfid
  229. // Run Client A and send 10 slabs
  230. // Client B should receive 10 slabs from subscriber
  231. //// $ cargo test test_deposit --bin darkfid
  232. // Run Client A and send 10 slabs
  233. // Client B should receive 10 slabs from subscriber
  234. #[cfg(test)]
  235. mod test {
  236. use std::net::SocketAddr;
  237. use std::path::Path;
  238. use std::sync::Arc;
  239. use drk::blockchain::{rocks::columns, Rocks, RocksColumn, Slab};
  240. use drk::service::{GatewayClient, GatewaySlabsSubscriber};
  241. use async_executor::Executor;
  242. use easy_parallel::Parallel;
  243. use log::*;
  244. use rand::Rng;
  245. use simplelog::*;
  246. pub async fn subscribe(gateway_slabs_sub: GatewaySlabsSubscriber, id: String) {
  247. loop {
  248. gateway_slabs_sub.recv().await.unwrap();
  249. info!("Client {}: update state", id);
  250. }
  251. }
  252. fn setup_log() {
  253. let logger_config = ConfigBuilder::new().set_time_format_str("%T%.6f").build();
  254. CombinedLogger::init(vec![
  255. TermLogger::new(LevelFilter::Debug, logger_config, TerminalMode::Mixed).unwrap(),
  256. WriteLogger::new(
  257. LevelFilter::Debug,
  258. Config::default(),
  259. std::fs::File::create(Path::new("/tmp/dar.log")).unwrap(),
  260. ),
  261. ])
  262. .unwrap();
  263. }
  264. #[test]
  265. fn test_ten_clients_simultaneously() {
  266. setup_log();
  267. let mut thread_pools: Vec<std::thread::JoinHandle<()>> = vec![];
  268. for _ in 0..10 {
  269. let thread = std::thread::spawn(|| {
  270. let ex = Arc::new(Executor::new());
  271. let (signal, shutdown) = async_channel::unbounded::<()>();
  272. let ex2 = ex.clone();
  273. let (_, _) = Parallel::new()
  274. // Run four executor threads.
  275. .each(0..3, |_| smol::future::block_on(ex2.run(shutdown.recv())))
  276. // Run the main future on the current thread.
  277. .finish(|| {
  278. smol::future::block_on(async move {
  279. let connect_addr: SocketAddr = "127.0.0.1:3333".parse().unwrap();
  280. let sub_addr: SocketAddr = "127.0.0.1:4444".parse().unwrap();
  281. let mut rng = rand::thread_rng();
  282. let rnd: u32 = rng.gen();
  283. let path_str = format!("database_{}.db", rnd);
  284. let database_path = Path::new(path_str.as_str());
  285. let rocks = Rocks::new(database_path.clone()).unwrap();
  286. let slabstore = RocksColumn::<columns::Slabs>::new(rocks.clone());
  287. // create gateway client
  288. let mut client = GatewayClient::new(connect_addr, slabstore).unwrap();
  289. // start subscribing
  290. let gateway_slabs_sub: GatewaySlabsSubscriber =
  291. client.start_subscriber(sub_addr, ex.clone()).await.unwrap();
  292. ex.clone()
  293. .spawn(subscribe(gateway_slabs_sub, rnd.clone().to_string()))
  294. .detach();
  295. // start gateway client
  296. client.start().await.unwrap();
  297. let slab = Slab::new(rnd.to_le_bytes().to_vec());
  298. client.put_slab(slab).await.unwrap();
  299. });
  300. drop(signal);
  301. Ok::<(), drk::Error>(())
  302. });
  303. });
  304. thread_pools.push(thread);
  305. }
  306. for t in thread_pools {
  307. t.join().unwrap();
  308. }
  309. }
  310. #[test]
  311. fn test_subscriber() {
  312. setup_log();
  313. let mut thread_pools: Vec<std::thread::JoinHandle<()>> = vec![];
  314. // Client A
  315. let thread = std::thread::spawn(|| {
  316. smol::future::block_on(async move {
  317. let connect_addr: SocketAddr = "127.0.0.1:3333".parse().unwrap();
  318. let mut rng = rand::thread_rng();
  319. let rnd: u32 = rng.gen();
  320. let path_str = format!("database_{}.db", rnd);
  321. let database_path = Path::new(path_str.as_str());
  322. let rocks = Rocks::new(database_path.clone()).unwrap();
  323. let slabstore = RocksColumn::<columns::Slabs>::new(rocks.clone());
  324. // create gateway client
  325. let mut client = GatewayClient::new(connect_addr, slabstore).unwrap();
  326. // start gateway client
  327. client.start().await.unwrap();
  328. let slab = Slab::new( rnd.to_le_bytes().to_vec());
  329. client.put_slab(slab.clone()).await.unwrap();
  330. client.put_slab(slab.clone()).await.unwrap();
  331. client.put_slab(slab.clone()).await.unwrap();
  332. client.put_slab(slab.clone()).await.unwrap();
  333. client.put_slab(slab.clone()).await.unwrap();
  334. client.put_slab(slab.clone()).await.unwrap();
  335. client.put_slab(slab.clone()).await.unwrap();
  336. client.put_slab(slab.clone()).await.unwrap();
  337. client.put_slab(slab.clone()).await.unwrap();
  338. client.put_slab(slab.clone()).await.unwrap();
  339. });
  340. });
  341. // Client B
  342. let thread2 = std::thread::spawn(|| {
  343. let ex = Arc::new(Executor::new());
  344. let (signal, shutdown) = async_channel::unbounded::<()>();
  345. let ex2 = ex.clone();
  346. let (_, _) = Parallel::new()
  347. // Run four executor threads.
  348. .each(0..3, |_| smol::future::block_on(ex2.run(shutdown.recv())))
  349. // Run the main future on the current thread.
  350. .finish(|| {
  351. smol::future::block_on(async move {
  352. let connect_addr: SocketAddr = "127.0.0.1:3333".parse().unwrap();
  353. let sub_addr: SocketAddr = "127.0.0.1:4444".parse().unwrap();
  354. let mut rng = rand::thread_rng();
  355. let rnd: u32 = rng.gen();
  356. let path_str = format!("database_{}.db", rnd);
  357. let database_path = Path::new(path_str.as_str());
  358. let rocks = Rocks::new(database_path.clone()).unwrap();
  359. let slabstore = RocksColumn::<columns::Slabs>::new(rocks.clone());
  360. // create gateway client
  361. let mut client = GatewayClient::new(connect_addr, slabstore).unwrap();
  362. // start subscribing
  363. let gateway_slabs_sub: GatewaySlabsSubscriber =
  364. client.start_subscriber(sub_addr, ex.clone()).await.unwrap();
  365. ex.clone()
  366. .spawn(subscribe(gateway_slabs_sub, "B".to_string()))
  367. .detach();
  368. // start gateway client
  369. client.start().await.unwrap();
  370. // sleep for 2 seconds
  371. std::thread::sleep(std::time::Duration::from_secs(2));
  372. });
  373. drop(signal);
  374. Ok::<(), drk::Error>(())
  375. });
  376. });
  377. thread_pools.push(thread);
  378. thread_pools.push(thread2);
  379. for t in thread_pools {
  380. t.join().unwrap();
  381. }
  382. }
  383. #[test]
  384. fn test_deposit() {
  385. setup_log();
  386. let mut thread_pools: Vec<std::thread::JoinHandle<()>> = vec![];
  387. // Client A: User
  388. let thread = std::thread::spawn(|| {
  389. smol::future::block_on(async move {
  390. let connect_addr: SocketAddr = "127.0.0.1:3333".parse().unwrap();
  391. let mut rng = rand::thread_rng();
  392. let rnd: u32 = rng.gen();
  393. let path_str = format!("database_{}.db", rnd);
  394. let database_path = Path::new(path_str.as_str());
  395. let rocks = Rocks::new(database_path.clone()).unwrap();
  396. let slabstore = RocksColumn::<columns::Slabs>::new(rocks.clone());
  397. // create gateway client
  398. let mut client = GatewayClient::new(connect_addr, slabstore).unwrap();
  399. // start gateway client
  400. client.start().await.unwrap();
  401. let slab = Slab::new(rnd.to_le_bytes().to_vec());
  402. client.put_slab(slab.clone()).await.unwrap();
  403. client.put_slab(slab.clone()).await.unwrap();
  404. client.put_slab(slab.clone()).await.unwrap();
  405. client.put_slab(slab.clone()).await.unwrap();
  406. client.put_slab(slab.clone()).await.unwrap();
  407. client.put_slab(slab.clone()).await.unwrap();
  408. client.put_slab(slab.clone()).await.unwrap();
  409. client.put_slab(slab.clone()).await.unwrap();
  410. client.put_slab(slab.clone()).await.unwrap();
  411. client.put_slab(slab.clone()).await.unwrap();
  412. });
  413. });
  414. // Client B: Cashier
  415. let thread2 = std::thread::spawn(|| {
  416. let ex = Arc::new(Executor::new());
  417. let (signal, shutdown) = async_channel::unbounded::<()>();
  418. let ex2 = ex.clone();
  419. let (_, _) = Parallel::new()
  420. // Run four executor threads.
  421. .each(0..3, |_| smol::future::block_on(ex2.run(shutdown.recv())))
  422. // Run the main future on the current thread.
  423. .finish(|| {
  424. smol::future::block_on(async move {
  425. let connect_addr: SocketAddr = "127.0.0.1:3333".parse().unwrap();
  426. let sub_addr: SocketAddr = "127.0.0.1:4444".parse().unwrap();
  427. let mut rng = rand::thread_rng();
  428. let rnd: u32 = rng.gen();
  429. let path_str = format!("database_{}.db", rnd);
  430. let database_path = Path::new(path_str.as_str());
  431. let rocks = Rocks::new(database_path.clone()).unwrap();
  432. let slabstore = RocksColumn::<columns::Slabs>::new(rocks.clone());
  433. // create gateway client
  434. let mut client = GatewayClient::new(connect_addr, slabstore).unwrap();
  435. // start subscribing
  436. let gateway_slabs_sub: GatewaySlabsSubscriber =
  437. client.start_subscriber(sub_addr, ex.clone()).await.unwrap();
  438. ex.clone()
  439. .spawn(subscribe(gateway_slabs_sub, "B".to_string()))
  440. .detach();
  441. // start gateway client
  442. client.start().await.unwrap();
  443. // sleep for 2 seconds
  444. std::thread::sleep(std::time::Duration::from_secs(2));
  445. });
  446. drop(signal);
  447. Ok::<(), drk::Error>(())
  448. });
  449. });
  450. thread_pools.push(thread);
  451. thread_pools.push(thread2);
  452. for t in thread_pools {
  453. t.join().unwrap();
  454. }
  455. }
  456. }