lead_coin.rs 20 KB

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  1. /* This file is part of DarkFi (https://dark.fi)
  2. *
  3. * Copyright (C) 2020-2023 Dyne.org foundation
  4. *
  5. * This program is free software: you can redistribute it and/or modify
  6. * it under the terms of the GNU Affero General Public License as
  7. * published by the Free Software Foundation, either version 3 of the
  8. * License, or (at your option) any later version.
  9. *
  10. * This program is distributed in the hope that it will be useful,
  11. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  12. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  13. * GNU Affero General Public License for more details.
  14. *
  15. * You should have received a copy of the GNU Affero General Public License
  16. * along with this program. If not, see <https://www.gnu.org/licenses/>.
  17. */
  18. use darkfi_sdk::{
  19. crypto::{
  20. pedersen::{pedersen_commitment_base, pedersen_commitment_u64},
  21. poseidon_hash,
  22. util::mod_r_p,
  23. MerkleNode, SecretKey,
  24. },
  25. incrementalmerkletree::{bridgetree::BridgeTree, Tree},
  26. pasta::{arithmetic::CurveAffine, group::Curve, pallas},
  27. };
  28. use darkfi_serial::{SerialDecodable, SerialEncodable};
  29. use halo2_proofs::{arithmetic::Field, circuit::Value};
  30. use log::info;
  31. use rand::rngs::OsRng;
  32. use super::constants::EPOCH_LENGTH;
  33. use crate::{
  34. consensus::{constants, utils::fbig2base, Float10, TransferStx, TxRcpt},
  35. zk::{
  36. proof::{Proof, ProvingKey},
  37. vm::ZkCircuit,
  38. vm_stack::Witness,
  39. },
  40. zkas::ZkBinary,
  41. Result,
  42. };
  43. use std::{
  44. fs::File,
  45. io::{prelude::*, BufWriter},
  46. };
  47. pub const MERKLE_DEPTH_LEAD_COIN: usize = 32;
  48. pub const MERKLE_DEPTH: u8 = 32;
  49. pub const ZERO: pallas::Base = pallas::Base::zero();
  50. pub const ONE: pallas::Base = pallas::Base::one();
  51. pub const PREFIX_EVL: u64 = 2;
  52. pub const PREFIX_SEED: u64 = 3;
  53. pub const PREFIX_CM: u64 = 4;
  54. pub const PREFIX_PK: u64 = 5;
  55. pub const PREFIX_SN: u64 = 6;
  56. // TODO: Unify item names with the names in the ZK proof (those are more descriptive)
  57. /// Structure representing the consensus leader coin
  58. #[derive(Debug, Clone, SerialDecodable, SerialEncodable)]
  59. pub struct LeadCoin {
  60. /// Coin's stake value
  61. pub value: u64,
  62. /// Coin creation slot.
  63. pub slot: u64,
  64. /// Coin nonce
  65. pub nonce: pallas::Base,
  66. /// Commitment for coin1
  67. pub coin1_commitment: pallas::Point,
  68. /// Merkle root of coin1 commitment
  69. pub coin1_commitment_root: MerkleNode,
  70. /// Coin commitment position
  71. pub coin1_commitment_pos: u32,
  72. /// Merkle path to the coin1's commitment
  73. pub coin1_commitment_merkle_path: Vec<MerkleNode>,
  74. /// coin1 sk
  75. pub coin1_sk: pallas::Base,
  76. /// Merkle root of the `coin1` secret key
  77. pub coin1_sk_root: MerkleNode,
  78. /// coin1 sk position in merkle tree
  79. pub coin1_sk_pos: u32,
  80. /// Merkle path to the secret key of `coin1`
  81. pub coin1_sk_merkle_path: Vec<MerkleNode>,
  82. /// coin1 commitment blinding factor
  83. pub coin1_blind: pallas::Scalar,
  84. }
  85. impl LeadCoin {
  86. /// Create a new `LeadCoin` object using given parameters.
  87. #[allow(clippy::too_many_arguments)]
  88. pub fn new(
  89. // emulation of global random oracle output from previous epoch randomness.
  90. //eta: pallas::Base,
  91. // Stake value
  92. value: u64,
  93. // Slot absolute index
  94. slot: u64,
  95. // coin1 sk
  96. coin1_sk: pallas::Base,
  97. // Merkle root of the `coin_1` secret key in the Merkle tree of secret keys
  98. coin1_sk_root: MerkleNode,
  99. // sk pos
  100. coin1_sk_pos: usize,
  101. // Merkle path to the secret key of `coin_1` in the Merkle tree of secret keys
  102. coin1_sk_merkle_path: Vec<MerkleNode>,
  103. // coin1 nonce
  104. seed: pallas::Base,
  105. // Merkle tree of coin commitments
  106. coin_commitment_tree: &mut BridgeTree<MerkleNode, MERKLE_DEPTH>,
  107. ) -> Self {
  108. // Generate random blinding values for commitments:
  109. let coin1_blind = pallas::Scalar::random(&mut OsRng);
  110. //let coin2_blind = pallas::Scalar::random(&mut OsRng);
  111. // pk
  112. let pk = Self::util_pk(coin1_sk_root, slot);
  113. let coin1_commitment = Self::commitment(pk, pallas::Base::from(value), seed, coin1_blind);
  114. // Hash its coordinates to get a base field element
  115. let c1_cm_coords = coin1_commitment.to_affine().coordinates().unwrap();
  116. let c1_base_msg = [*c1_cm_coords.x(), *c1_cm_coords.y()];
  117. let coin1_commitment_base = poseidon_hash(c1_base_msg);
  118. // Append the element to the Merkle tree
  119. coin_commitment_tree.append(&MerkleNode::from(coin1_commitment_base));
  120. let coin1_commitment_pos = coin_commitment_tree.witness().unwrap();
  121. let coin1_commitment_root = coin_commitment_tree.root(0).unwrap();
  122. let coin1_commitment_merkle_path = coin_commitment_tree
  123. .authentication_path(coin1_commitment_pos, &coin1_commitment_root)
  124. .unwrap();
  125. Self {
  126. value,
  127. slot,
  128. nonce: seed,
  129. coin1_commitment,
  130. coin1_commitment_root,
  131. coin1_commitment_pos: u32::try_from(usize::from(coin1_commitment_pos)).unwrap(),
  132. coin1_commitment_merkle_path,
  133. coin1_sk,
  134. coin1_sk_root,
  135. coin1_sk_pos: u32::try_from(coin1_sk_pos).unwrap(),
  136. coin1_sk_merkle_path,
  137. coin1_blind,
  138. }
  139. }
  140. pub fn sn(&self) -> pallas::Base {
  141. let sn_msg = [pallas::Base::from(PREFIX_SN), self.coin1_sk_root.inner(), self.nonce, ZERO];
  142. poseidon_hash(sn_msg)
  143. }
  144. pub fn election_seeds_u64(eta: pallas::Base, slotu64: u64) -> (pallas::Base, pallas::Base) {
  145. Self::election_seeds(eta, pallas::Base::from(slotu64))
  146. }
  147. /// Derive election seeds from given parameters
  148. pub fn election_seeds(eta: pallas::Base, slot: pallas::Base) -> (pallas::Base, pallas::Base) {
  149. info!(target: "consensus::leadcoin", "election_seeds: eta: {:?}, slot: {:?}", eta, slot);
  150. let election_seed_nonce = pallas::Base::from(3);
  151. let election_seed_lead = pallas::Base::from(22);
  152. // mu_y
  153. let lead_msg = [election_seed_lead, eta, slot];
  154. let lead_mu = poseidon_hash(lead_msg);
  155. // mu_rho
  156. let nonce_msg = [election_seed_nonce, eta, slot];
  157. let nonce_mu = poseidon_hash(nonce_msg);
  158. (lead_mu, nonce_mu)
  159. }
  160. /// Create a vector of `pallas::Base` elements from the `LeadCoin` to be
  161. /// used as public inputs for the ZK proof.
  162. pub fn public_inputs(
  163. &self,
  164. sigma1: pallas::Base,
  165. sigma2: pallas::Base,
  166. current_eta: pallas::Base,
  167. current_slot: pallas::Base,
  168. derived_blind: pallas::Scalar,
  169. ) -> Vec<pallas::Base> {
  170. // pk
  171. let pk = self.pk();
  172. // coin 1-2 cm/commitment
  173. let c1_cm_coord = self.coin1_commitment.to_affine().coordinates().unwrap();
  174. let c2_cm_coord = self.derived_commitment(derived_blind).to_affine().coordinates().unwrap();
  175. // lottery seed
  176. let seed_msg =
  177. [pallas::Base::from(PREFIX_SEED), self.coin1_sk_root.inner(), self.nonce, ZERO];
  178. let seed = poseidon_hash(seed_msg);
  179. // y
  180. let (y_mu, rho_mu) = Self::election_seeds(current_eta, current_slot);
  181. let y_msg = [seed, y_mu];
  182. let y = poseidon_hash(y_msg);
  183. // rho
  184. let rho_msg = [seed, rho_mu];
  185. let rho = poseidon_hash(rho_msg);
  186. let public_inputs = vec![
  187. pk,
  188. *c1_cm_coord.x(),
  189. *c1_cm_coord.y(),
  190. *c2_cm_coord.x(),
  191. *c2_cm_coord.y(),
  192. self.coin1_commitment_root.inner(),
  193. self.coin1_sk_root.inner(),
  194. self.sn(),
  195. y_mu,
  196. y,
  197. rho_mu,
  198. rho,
  199. sigma1,
  200. sigma2,
  201. ];
  202. public_inputs
  203. }
  204. fn util_pk(sk_root: MerkleNode, slot: u64) -> pallas::Base {
  205. let pk_msg =
  206. [pallas::Base::from(PREFIX_PK), sk_root.inner(), pallas::Base::from(slot), ZERO];
  207. poseidon_hash(pk_msg)
  208. }
  209. /// calculate coin public key: hash of root coin secret key
  210. /// and creation slot.
  211. pub fn pk(&self) -> pallas::Base {
  212. Self::util_pk(self.coin1_sk_root, self.slot)
  213. }
  214. fn util_derived_rho(sk_root: MerkleNode, nonce: pallas::Base) -> pallas::Base {
  215. let rho_msg = [pallas::Base::from(PREFIX_EVL), sk_root.inner(), nonce, ZERO];
  216. poseidon_hash(rho_msg)
  217. }
  218. /// calculate derived coin nonce: hash of root coin secret key
  219. /// and old nonce
  220. pub fn derived_rho(&self) -> pallas::Base {
  221. Self::util_derived_rho(self.coin1_sk_root, self.nonce)
  222. }
  223. pub fn headstart() -> pallas::Base {
  224. let headstart = constants::MIN_F.clone() * Float10::try_from(constants::P).unwrap();
  225. fbig2base(headstart)
  226. }
  227. pub fn is_leader(
  228. &self,
  229. sigma1: pallas::Base,
  230. sigma2: pallas::Base,
  231. current_eta: pallas::Base,
  232. current_slot: pallas::Base,
  233. ) -> bool {
  234. let y_seed =
  235. [pallas::Base::from(PREFIX_SEED), self.coin1_sk_root.inner(), self.nonce, ZERO];
  236. let y_seed_hash = poseidon_hash(y_seed);
  237. let (y_mu, _) = Self::election_seeds(current_eta, current_slot);
  238. let y_msg = [y_seed_hash, y_mu];
  239. let y = poseidon_hash(y_msg);
  240. let value = pallas::Base::from(self.value);
  241. let headstart = Self::headstart();
  242. let target = sigma1 * value + sigma2 * value * value + headstart;
  243. let y_t_str = format!("{:?},{:?}\n", y, target);
  244. let f =
  245. File::options().append(true).create(true).open(constants::LOTTERY_HISTORY_LOG).unwrap();
  246. {
  247. let mut writer = BufWriter::new(f);
  248. let _ = writer.write(&y_t_str.into_bytes()).unwrap();
  249. }
  250. info!(target: "consensus::leadcoin", "is_leader(): y = {:?}", y);
  251. info!(target: "consensus::leadcoin", "is_leader(): T = {:?}", target);
  252. y < target
  253. }
  254. fn commitment(
  255. pk: pallas::Base,
  256. value: pallas::Base,
  257. seed: pallas::Base,
  258. blind: pallas::Scalar,
  259. ) -> pallas::Point {
  260. let commit_msg = [pallas::Base::from(PREFIX_CM), pk, value, seed];
  261. // Create commitment to coin
  262. let commit_v = poseidon_hash(commit_msg);
  263. pedersen_commitment_base(commit_v, blind)
  264. }
  265. /// calculated derived coin commitment
  266. pub fn derived_commitment(&self, blind: pallas::Scalar) -> pallas::Point {
  267. let pk = self.pk();
  268. let rho = self.derived_rho();
  269. Self::commitment(pk, pallas::Base::from(self.value + constants::REWARD), rho, blind)
  270. }
  271. /// the new coin to be minted after the current coin is spent
  272. /// in lottery.
  273. pub fn derive_coin(
  274. &self,
  275. coin_commitment_tree: &mut BridgeTree<MerkleNode, MERKLE_DEPTH>,
  276. derived_blind: pallas::Scalar,
  277. ) -> LeadCoin {
  278. info!(target: "consensus::leadcoin", "derive_coin(): Deriving new coin!");
  279. let derived_c1_rho = self.derived_rho();
  280. let derived_c1_cm = self.derived_commitment(derived_blind);
  281. let derived_c1_cm_coord = derived_c1_cm.to_affine().coordinates().unwrap();
  282. let derived_c1_cm_msg = [*derived_c1_cm_coord.x(), *derived_c1_cm_coord.y()];
  283. let derived_c1_cm_base = poseidon_hash(derived_c1_cm_msg);
  284. coin_commitment_tree.append(&MerkleNode::from(derived_c1_cm_base));
  285. let leaf_pos = coin_commitment_tree.witness().unwrap();
  286. let commitment_root = coin_commitment_tree.root(0).unwrap();
  287. let commitment_merkle_path =
  288. coin_commitment_tree.authentication_path(leaf_pos, &commitment_root).unwrap();
  289. LeadCoin {
  290. value: self.value + constants::REWARD,
  291. slot: self.slot,
  292. nonce: derived_c1_rho,
  293. coin1_commitment: derived_c1_cm,
  294. coin1_commitment_root: commitment_root,
  295. coin1_commitment_pos: u32::try_from(usize::from(leaf_pos)).unwrap(),
  296. coin1_commitment_merkle_path: commitment_merkle_path,
  297. coin1_sk: self.coin1_sk,
  298. coin1_sk_root: self.coin1_sk_root,
  299. coin1_sk_pos: self.coin1_sk_pos,
  300. coin1_sk_merkle_path: self.coin1_sk_merkle_path.clone(),
  301. coin1_blind: derived_blind,
  302. }
  303. }
  304. /// Try to create a ZK proof of consensus leadership
  305. pub fn create_lead_proof(
  306. &self,
  307. sigma1: pallas::Base,
  308. sigma2: pallas::Base,
  309. eta: pallas::Base,
  310. slot: pallas::Base, //current slot index.
  311. pk: &ProvingKey,
  312. derived_blind: pallas::Scalar,
  313. ) -> (Result<Proof>, Vec<pallas::Base>) {
  314. let (y_mu, rho_mu) = Self::election_seeds(eta, slot);
  315. let bincode = include_bytes!("../../proof/lead.zk.bin");
  316. let zkbin = ZkBinary::decode(bincode).unwrap();
  317. let headstart = Self::headstart();
  318. let coin1_commitment_merkle_path: [MerkleNode; MERKLE_DEPTH_LEAD_COIN] =
  319. self.coin1_commitment_merkle_path.clone().try_into().unwrap();
  320. let coin1_sk_merkle_path: [MerkleNode; MERKLE_DEPTH_LEAD_COIN] =
  321. self.coin1_sk_merkle_path.clone().try_into().unwrap();
  322. let witnesses = vec![
  323. Witness::MerklePath(Value::known(coin1_commitment_merkle_path)),
  324. Witness::Uint32(Value::known(self.coin1_commitment_pos)),
  325. Witness::Uint32(Value::known(self.coin1_sk_pos)),
  326. Witness::Base(Value::known(self.coin1_sk)),
  327. Witness::Base(Value::known(self.coin1_sk_root.inner())),
  328. Witness::MerklePath(Value::known(coin1_sk_merkle_path)),
  329. Witness::Base(Value::known(pallas::Base::from(self.slot))),
  330. Witness::Base(Value::known(self.nonce)),
  331. Witness::Scalar(Value::known(self.coin1_blind)),
  332. Witness::Base(Value::known(pallas::Base::from(self.value))),
  333. Witness::Scalar(Value::known(derived_blind)),
  334. Witness::Base(Value::known(rho_mu)),
  335. Witness::Base(Value::known(y_mu)),
  336. Witness::Base(Value::known(sigma1)),
  337. Witness::Base(Value::known(sigma2)),
  338. Witness::Base(Value::known(headstart)),
  339. ];
  340. let circuit = ZkCircuit::new(witnesses, zkbin);
  341. let public_inputs = self.public_inputs(sigma1, sigma2, eta, slot, derived_blind);
  342. (Ok(Proof::create(pk, &[circuit], &public_inputs, &mut OsRng).unwrap()), public_inputs)
  343. }
  344. #[allow(clippy::too_many_arguments)]
  345. pub fn create_xfer_proof(
  346. &self,
  347. pk: &ProvingKey,
  348. change_coin: TxRcpt,
  349. change_pk: pallas::Base, //change coin public key
  350. transfered_coin: TxRcpt,
  351. transfered_pk: pallas::Base, // recipient coin's public key
  352. sigma1: pallas::Base,
  353. sigma2: pallas::Base,
  354. current_eta: pallas::Base,
  355. current_slot: pallas::Base,
  356. derived_blind: pallas::Scalar,
  357. ) -> Result<TransferStx> {
  358. assert!(change_coin.value + transfered_coin.value == self.value && self.value > 0);
  359. let bincode = include_bytes!("../../proof/tx.zk.bin");
  360. let zkbin = ZkBinary::decode(bincode)?;
  361. let retval = pallas::Base::from(change_coin.value);
  362. let xferval = pallas::Base::from(transfered_coin.value);
  363. let pos: u32 = self.coin1_commitment_pos;
  364. let value = pallas::Base::from(self.value);
  365. let coin1_sk_merkle_path: [MerkleNode; MERKLE_DEPTH_LEAD_COIN] =
  366. self.coin1_sk_merkle_path.clone().try_into().unwrap();
  367. let coin1_commitment_merkle_path: [MerkleNode; MERKLE_DEPTH_LEAD_COIN] =
  368. self.coin1_commitment_merkle_path.clone().try_into().unwrap();
  369. let witnesses = vec![
  370. // coin (1) burned coin
  371. Witness::Base(Value::known(self.coin1_commitment_root.inner())),
  372. Witness::Base(Value::known(self.coin1_sk_root.inner())),
  373. Witness::Base(Value::known(self.coin1_sk)),
  374. Witness::MerklePath(Value::known(coin1_sk_merkle_path)),
  375. Witness::Uint32(Value::known(self.coin1_sk_pos)),
  376. Witness::Base(Value::known(self.nonce)),
  377. Witness::Scalar(Value::known(self.coin1_blind)),
  378. Witness::Base(Value::known(value)),
  379. Witness::MerklePath(Value::known(coin1_commitment_merkle_path)),
  380. Witness::Uint32(Value::known(pos)),
  381. Witness::Base(Value::known(self.sn())),
  382. // coin (3)
  383. Witness::Base(Value::known(change_pk)),
  384. Witness::Base(Value::known(change_coin.rho)),
  385. Witness::Scalar(Value::known(change_coin.opening)),
  386. Witness::Base(Value::known(retval)),
  387. // coin (4)
  388. Witness::Base(Value::known(transfered_pk)),
  389. Witness::Base(Value::known(transfered_coin.rho)),
  390. Witness::Scalar(Value::known(transfered_coin.opening)),
  391. Witness::Base(Value::known(xferval)),
  392. ];
  393. let circuit = ZkCircuit::new(witnesses, zkbin);
  394. let proof = Proof::create(
  395. pk,
  396. &[circuit],
  397. &self.public_inputs(sigma1, sigma2, current_eta, current_slot, derived_blind),
  398. &mut OsRng,
  399. )?;
  400. let cm3_msg_in = [
  401. pallas::Base::from(PREFIX_CM),
  402. change_pk,
  403. pallas::Base::from(change_coin.value),
  404. change_coin.rho,
  405. ];
  406. let cm3_msg = poseidon_hash(cm3_msg_in);
  407. let cm3 = pedersen_commitment_base(cm3_msg, change_coin.opening);
  408. let cm4_msg_in = [
  409. pallas::Base::from(PREFIX_CM),
  410. transfered_pk,
  411. pallas::Base::from(transfered_coin.value),
  412. transfered_coin.rho,
  413. ];
  414. let cm4_msg = poseidon_hash(cm4_msg_in);
  415. let cm4 = pedersen_commitment_base(cm4_msg, transfered_coin.opening);
  416. let tx = TransferStx {
  417. coin_commitment: self.coin1_commitment,
  418. coin_pk: self.pk(),
  419. coin_root_sk: self.coin1_sk_root,
  420. change_coin_commitment: cm3,
  421. transfered_coin_commitment: cm4,
  422. nullifier: self.sn(),
  423. slot: pallas::Base::from(self.slot),
  424. root: self.coin1_commitment_root,
  425. proof,
  426. };
  427. Ok(tx)
  428. }
  429. }
  430. /// This struct holds the secrets for creating LeadCoins during one epoch.
  431. pub struct LeadCoinSecrets {
  432. pub secret_keys: Vec<SecretKey>,
  433. pub merkle_roots: Vec<MerkleNode>,
  434. pub merkle_paths: Vec<Vec<MerkleNode>>,
  435. }
  436. impl LeadCoinSecrets {
  437. /// Generate epoch coins secret keys.
  438. /// First clot coin secret key is sampled at random, while the secret keys of the
  439. /// remaining slots derive from the previous slot secret.
  440. /// Clarification:
  441. /// ```plaintext
  442. /// sk[0] -> random,
  443. /// sk[1] -> derive_function(sk[0]),
  444. /// ...
  445. /// sk[n] -> derive_function(sk[n-1]),
  446. /// ```
  447. pub fn generate() -> Self {
  448. let mut tree = BridgeTree::<MerkleNode, MERKLE_DEPTH>::new(EPOCH_LENGTH);
  449. let mut sks = Vec::with_capacity(EPOCH_LENGTH);
  450. let mut root_sks = Vec::with_capacity(EPOCH_LENGTH);
  451. let mut path_sks = Vec::with_capacity(EPOCH_LENGTH);
  452. let mut prev_sk = SecretKey::from(pallas::Base::one());
  453. for i in 0..EPOCH_LENGTH {
  454. let secret = if i == 0 {
  455. pedersen_commitment_u64(1, pallas::Scalar::random(&mut OsRng))
  456. } else {
  457. pedersen_commitment_u64(1, mod_r_p(prev_sk.inner()))
  458. };
  459. let secret_coords = secret.to_affine().coordinates().unwrap();
  460. let secret_msg = [*secret_coords.x(), *secret_coords.y()];
  461. let secret_key = SecretKey::from(poseidon_hash(secret_msg));
  462. sks.push(secret_key);
  463. prev_sk = secret_key;
  464. let node = MerkleNode::from(secret_key.inner());
  465. tree.append(&node);
  466. let leaf_pos = tree.witness().unwrap();
  467. let root = tree.root(0).unwrap();
  468. let path = tree.authentication_path(leaf_pos, &root).unwrap();
  469. root_sks.push(root);
  470. path_sks.push(path);
  471. }
  472. Self { secret_keys: sks, merkle_roots: root_sks, merkle_paths: path_sks }
  473. }
  474. }