types.rs 12 KB

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  1. use bellman::{gadgets::Assignment, groth16, Circuit, ConstraintSystem, SynthesisError};
  2. use sapvi::bls_extensions::BlsStringConversion;
  3. use std::cell::RefCell;
  4. use std::ops::{Add, AddAssign, MulAssign, SubAssign};
  5. use std::rc::Rc;
  6. //use std::collections::HashMap;
  7. use fnv::FnvHashMap;
  8. use itertools::Itertools;
  9. use crate::env::{env_bind, Env};
  10. use crate::types::MalErr::{ErrMalVal, ErrString};
  11. use crate::types::MalVal::{Atom, Bool, Func, Hash, Int, List, MalFunc, Nil, Str, Sym, Vector};
  12. use bellman::Variable;
  13. use bls12_381::Bls12;
  14. use bls12_381::Scalar;
  15. #[derive(Debug, Clone)]
  16. pub struct Allocation {
  17. pub symbol: String,
  18. pub value: Scalar,
  19. }
  20. #[derive(Debug, Clone)]
  21. pub struct EnforceAllocation {
  22. pub idx: usize,
  23. pub left: Vec<(String, String)>,
  24. pub right: Vec<(String, String)>,
  25. pub output: Vec<(String, String)>,
  26. }
  27. pub struct VerifyKeyParams {
  28. pub random_params: groth16::Parameters<Bls12>,
  29. pub verifying_key: groth16::PreparedVerifyingKey<Bls12>,
  30. }
  31. #[derive(Debug, Clone)]
  32. pub struct LispCircuit {
  33. pub params: FnvHashMap<String, MalVal>,
  34. pub allocs: FnvHashMap<String, MalVal>,
  35. pub alloc_inputs: FnvHashMap<String, MalVal>,
  36. // todo change this for a ordered data structure so enforce
  37. pub constraints: Vec<EnforceAllocation>,
  38. }
  39. #[derive(Debug, Clone)]
  40. pub enum MalVal {
  41. Nil,
  42. Bool(bool),
  43. Int(i64),
  44. Str(String),
  45. Sym(String),
  46. List(Rc<Vec<MalVal>>, Rc<MalVal>),
  47. Vector(Rc<Vec<MalVal>>, Rc<MalVal>),
  48. Hash(Rc<FnvHashMap<String, MalVal>>, Rc<MalVal>),
  49. Func(fn(MalArgs) -> MalRet, Rc<MalVal>),
  50. MalFunc {
  51. eval: fn(ast: MalVal, env: Env) -> MalRet,
  52. ast: Rc<MalVal>,
  53. env: Env,
  54. params: Rc<MalVal>,
  55. is_macro: bool,
  56. meta: Rc<MalVal>,
  57. },
  58. Atom(Rc<RefCell<MalVal>>),
  59. Zk(Rc<LispCircuit>), // TODO remote it
  60. Enforce(Rc<Vec<EnforceAllocation>>),
  61. ZKScalar(bls12_381::Scalar),
  62. }
  63. impl Circuit<bls12_381::Scalar> for LispCircuit {
  64. fn synthesize<CS: ConstraintSystem<bls12_381::Scalar>>(
  65. self,
  66. cs: &mut CS,
  67. ) -> Result<(), SynthesisError> {
  68. let mut variables: FnvHashMap<String, Variable> = FnvHashMap::default();
  69. let mut params_const = self.params;
  70. println!("Allocations\n");
  71. for (k, v) in &self.allocs {
  72. match v {
  73. MalVal::ZKScalar(val) => {
  74. let var = cs.alloc(|| k, || Ok(*val))?;
  75. variables.insert(k.to_string(), var);
  76. println!("k {:?} v {:?} var {:?}", k, v, var);
  77. }
  78. MalVal::Str(val) => {
  79. let val_scalar = bls12_381::Scalar::from_string(&*val);
  80. let var = cs.alloc(|| k, || Ok(val_scalar))?;
  81. variables.insert(k.to_string(), var);
  82. println!("k {:?} v {:?} var {:?}", k, v, var);
  83. }
  84. _ => {
  85. println!("not allocated k {:?} v {:?}", k, v);
  86. }
  87. }
  88. }
  89. println!("Allocations Input\n");
  90. for (k, v) in &self.alloc_inputs {
  91. // println!("k {:?} v {:?}", k, v);
  92. match v {
  93. MalVal::ZKScalar(val) => {
  94. let var = cs.alloc_input(|| k, || Ok(*val))?;
  95. variables.insert(k.to_string(), var);
  96. println!("k {:?} v {:?} var {:?}", k, v, var);
  97. }
  98. MalVal::Str(val) => {
  99. let val_scalar = bls12_381::Scalar::from_string(&*val);
  100. let var = cs.alloc_input(|| k, || Ok(val_scalar))?;
  101. variables.insert(k.to_string(), var);
  102. println!("k {:?} v {:?} var {:?}", k, v, var);
  103. }
  104. _ => {
  105. println!("not allocated k {:?} v {:?}", k, v);
  106. }
  107. }
  108. }
  109. println!("Enforce Allocations\n");
  110. let mut enforce_sorted = self.constraints.clone();
  111. enforce_sorted.sort_by(|a, b| a.idx.cmp(&b.idx));
  112. for alloc_value in enforce_sorted.iter() {
  113. println!("Enforce -> {:?}", alloc_value);
  114. let coeff = bls12_381::Scalar::one();
  115. let mut left = bellman::LinearCombination::<Scalar>::zero();
  116. let mut right = bellman::LinearCombination::<Scalar>::zero();
  117. let mut output = bellman::LinearCombination::<Scalar>::zero();
  118. for values in alloc_value.left.iter() {
  119. let (a, b) = values;
  120. let mut val_b = CS::one();
  121. if b != "cs::one" {
  122. val_b = *variables.get(b).unwrap();
  123. }
  124. if a == "scalar::one" {
  125. left = left + (coeff, val_b);
  126. } else if a == "scalar::one::neg" {
  127. left = left + (coeff.neg(), val_b);
  128. } else {
  129. if let Some(value) = params_const.get(a) {
  130. if let MalVal::ZKScalar(val) = value {
  131. left = left + (*val, val_b);
  132. }
  133. }
  134. }
  135. println!("left: a {:?} b {:?} val_b: {:?}", a, b, val_b);
  136. }
  137. for values in alloc_value.right.iter() {
  138. let (a, b) = values;
  139. let mut val_b = CS::one();
  140. if b != "cs::one" {
  141. val_b = *variables.get(b).unwrap();
  142. }
  143. if a == "scalar::one" {
  144. right = right + (coeff, val_b);
  145. } else if a == "scalar::one::neg" {
  146. right = right + (coeff.neg(), val_b);
  147. }
  148. println!("right: a {:?} b {:?} val_b: {:?}", a, b, val_b);
  149. }
  150. for values in alloc_value.output.iter() {
  151. let (a, b) = values;
  152. let mut val_b = CS::one();
  153. if b != "cs::one" {
  154. val_b = *variables.get(b).unwrap();
  155. }
  156. if a == "scalar::one" {
  157. output = output + (coeff, val_b);
  158. } else if a == "scalar::one::neg" {
  159. output = output + (coeff.neg(), val_b);
  160. }
  161. println!("output: a {:?} b {:?} val_b: {:?}", a, b, val_b);
  162. }
  163. // println!("Enforcing ...");
  164. cs.enforce(
  165. || "constraint",
  166. |_| left.clone(),
  167. |_| right.clone(),
  168. |_| output.clone(),
  169. );
  170. }
  171. Ok(())
  172. }
  173. }
  174. #[derive(Debug)]
  175. pub enum MalErr {
  176. ErrString(String),
  177. ErrMalVal(MalVal),
  178. }
  179. impl From<SynthesisError> for MalErr {
  180. fn from(err: SynthesisError) -> MalErr {
  181. ErrString(err.to_string())
  182. }
  183. }
  184. pub type MalArgs = Vec<MalVal>;
  185. pub type MalRet = Result<MalVal, MalErr>;
  186. // type utility macros
  187. macro_rules! list {
  188. ($seq:expr) => {{
  189. List(Rc::new($seq),Rc::new(Nil))
  190. }};
  191. [$($args:expr),*] => {{
  192. let v: Vec<MalVal> = vec![$($args),*];
  193. List(Rc::new(v),Rc::new(Nil))
  194. }}
  195. }
  196. macro_rules! vector {
  197. ($seq:expr) => {{
  198. Vector(Rc::new($seq),Rc::new(Nil))
  199. }};
  200. [$($args:expr),*] => {{
  201. let v: Vec<MalVal> = vec![$($args),*];
  202. Vector(Rc::new(v),Rc::new(Nil))
  203. }}
  204. }
  205. // type utility functions
  206. pub fn error(s: &str) -> MalRet {
  207. Err(ErrString(s.to_string()))
  208. }
  209. pub fn format_error(e: MalErr) -> String {
  210. match e {
  211. ErrString(s) => s.clone(),
  212. ErrMalVal(mv) => mv.pr_str(true),
  213. }
  214. }
  215. pub fn atom(mv: &MalVal) -> MalVal {
  216. Atom(Rc::new(RefCell::new(mv.clone())))
  217. }
  218. impl MalVal {
  219. pub fn keyword(&self) -> MalRet {
  220. match self {
  221. Str(s) if s.starts_with("\u{29e}") => Ok(Str(s.to_string())),
  222. Str(s) => Ok(Str(format!("\u{29e}{}", s))),
  223. _ => error("invalid type for keyword"),
  224. }
  225. }
  226. pub fn empty_q(&self) -> MalRet {
  227. match self {
  228. List(l, _) | Vector(l, _) => Ok(Bool(l.len() == 0)),
  229. Nil => Ok(Bool(true)),
  230. _ => error("invalid type for empty?"),
  231. }
  232. }
  233. pub fn count(&self) -> MalRet {
  234. match self {
  235. List(l, _) | Vector(l, _) => Ok(Int(l.len() as i64)),
  236. Nil => Ok(Int(0)),
  237. _ => error("invalid type for count"),
  238. }
  239. }
  240. pub fn apply(&self, args: MalArgs) -> MalRet {
  241. match *self {
  242. Func(f, _) => f(args),
  243. MalFunc {
  244. eval,
  245. ref ast,
  246. ref env,
  247. ref params,
  248. ..
  249. } => {
  250. let a = &**ast;
  251. let p = &**params;
  252. let fn_env = env_bind(Some(env.clone()), p.clone(), args)?;
  253. Ok(eval(a.clone(), fn_env)?)
  254. }
  255. _ => error("attempt to call non-function"),
  256. }
  257. }
  258. pub fn keyword_q(&self) -> bool {
  259. match self {
  260. Str(s) if s.starts_with("\u{29e}") => true,
  261. _ => false,
  262. }
  263. }
  264. pub fn deref(&self) -> MalRet {
  265. match self {
  266. Atom(a) => Ok(a.borrow().clone()),
  267. _ => error("attempt to deref a non-Atom"),
  268. }
  269. }
  270. pub fn reset_bang(&self, new: &MalVal) -> MalRet {
  271. match self {
  272. Atom(a) => {
  273. *a.borrow_mut() = new.clone();
  274. Ok(new.clone())
  275. }
  276. _ => error("attempt to reset! a non-Atom"),
  277. }
  278. }
  279. pub fn swap_bang(&self, args: &MalArgs) -> MalRet {
  280. match self {
  281. Atom(a) => {
  282. let f = &args[0];
  283. let mut fargs = args[1..].to_vec();
  284. fargs.insert(0, a.borrow().clone());
  285. *a.borrow_mut() = f.apply(fargs)?;
  286. Ok(a.borrow().clone())
  287. }
  288. _ => error("attempt to swap! a non-Atom"),
  289. }
  290. }
  291. pub fn get_meta(&self) -> MalRet {
  292. match self {
  293. List(_, meta) | Vector(_, meta) | Hash(_, meta) => Ok((&**meta).clone()),
  294. Func(_, meta) => Ok((&**meta).clone()),
  295. MalFunc { meta, .. } => Ok((&**meta).clone()),
  296. _ => error("meta not supported by type"),
  297. }
  298. }
  299. pub fn with_meta(&mut self, new_meta: &MalVal) -> MalRet {
  300. match self {
  301. List(_, ref mut meta)
  302. | Vector(_, ref mut meta)
  303. | Hash(_, ref mut meta)
  304. | Func(_, ref mut meta)
  305. | MalFunc { ref mut meta, .. } => {
  306. *meta = Rc::new((&*new_meta).clone());
  307. }
  308. _ => return error("with-meta not supported by type"),
  309. };
  310. Ok(self.clone())
  311. }
  312. }
  313. impl PartialEq for MalVal {
  314. fn eq(&self, other: &MalVal) -> bool {
  315. match (self, other) {
  316. (Nil, Nil) => true,
  317. (Bool(ref a), Bool(ref b)) => a == b,
  318. (Int(ref a), Int(ref b)) => a == b,
  319. (Str(ref a), Str(ref b)) => a == b,
  320. (Sym(ref a), Sym(ref b)) => a == b,
  321. (List(ref a, _), List(ref b, _))
  322. | (Vector(ref a, _), Vector(ref b, _))
  323. | (List(ref a, _), Vector(ref b, _))
  324. | (Vector(ref a, _), List(ref b, _)) => a == b,
  325. (Hash(ref a, _), Hash(ref b, _)) => a == b,
  326. (MalFunc { .. }, MalFunc { .. }) => false,
  327. _ => false,
  328. }
  329. }
  330. }
  331. pub fn func(f: fn(MalArgs) -> MalRet) -> MalVal {
  332. Func(f, Rc::new(Nil))
  333. }
  334. pub fn _assoc(mut hm: FnvHashMap<String, MalVal>, kvs: MalArgs) -> MalRet {
  335. if kvs.len() % 2 != 0 {
  336. return error("odd number of elements");
  337. }
  338. for (k, v) in kvs.iter().tuples() {
  339. match k {
  340. Str(s) => {
  341. hm.insert(s.to_string(), v.clone());
  342. }
  343. _ => return error("key is not string"),
  344. }
  345. }
  346. Ok(Hash(Rc::new(hm), Rc::new(Nil)))
  347. }
  348. pub fn _dissoc(mut hm: FnvHashMap<String, MalVal>, ks: MalArgs) -> MalRet {
  349. for k in ks.iter() {
  350. match k {
  351. Str(ref s) => {
  352. hm.remove(s);
  353. }
  354. _ => return error("key is not string"),
  355. }
  356. }
  357. Ok(Hash(Rc::new(hm), Rc::new(Nil)))
  358. }
  359. pub fn hash_map(kvs: MalArgs) -> MalRet {
  360. let hm: FnvHashMap<String, MalVal> = FnvHashMap::default();
  361. _assoc(hm, kvs)
  362. }