pocketpy.h 28 KB

123456789101112131415161718192021222324252627282930313233343536373839404142434445464748495051525354555657585960616263646566676869707172737475767778798081828384858687888990919293949596979899100101102103104105106107108109110111112113114115116117118119120121122123124125126127128129130131132133134135136137138139140141142143144145146147148149150151152153154155156157158159160161162163164165166167168169170171172173174175176177178179180181182183184185186187188189190191192193194195196197198199200201202203204205206207208209210211212213214215216217218219220221222223224225226227228229230231232233234235236237238239240241242243244245246247248249250251252253254255256257258259260261262263264265266267268269270271272273274275276277278279280281282283284285286287288289290291292293294295296297298299300301302303304305306307308309310311312313314315316317318319320321322323324325326327328329330331332333334335336337338339340341342343344345346347348349350351352353354355356357358359360361362363364365366367368369370371372373374375376377378379380381382383384385386387388389390391392393394395396397398399400401402403404405406407408409410411412413414415416417418419420421422423424425426427428429430431432433434435436437438439440441442443444445446447448449450451452453454455456457458459460461462463464465466467468469470471472473474475476477478479480481482483484485486487488489490491492493494495496497498499500501502503504505506507508509510511512513514515516517518519520521522523524525526527528529530531532533534535536537538539540541542543544545546547548549550551552553554555556557558559560561562563564565566567568569570571572573574575576577578579580581582583584585586587588589590591592593594595596597598599600601602603604605606607608609610611612613614615616617618619620621622623624625626627628629630631632633634635636637638639640641642643644645646647648649650651652653654655656657658659660661662663664665666667668669670671672673674675676677678679680681682683684685686687688689690691692693694695696697698699700701702703704705706707708709710711712713714715716717718719720721722723724725726727728729730731732733734735736737738739740741742743744745746747748749750751752
  1. #pragma once
  2. #include "vm.h"
  3. #include "compiler.h"
  4. #include "repl.h"
  5. #define BIND_NUM_ARITH_OPT(name, op) \
  6. _vm->bindMethodMulti({"int","float"}, #name, [](VM* vm, const pkpy::ArgList& args){ \
  7. if(!vm->isIntOrFloat(args[0], args[1])) \
  8. vm->typeError("unsupported operand type(s) for " #op ); \
  9. if(args[0]->isType(vm->_tp_int) && args[1]->isType(vm->_tp_int)){ \
  10. return vm->PyInt(vm->PyInt_AS_C(args[0]) op vm->PyInt_AS_C(args[1])); \
  11. }else{ \
  12. return vm->PyFloat(vm->numToFloat(args[0]) op vm->numToFloat(args[1])); \
  13. } \
  14. });
  15. #define BIND_NUM_LOGICAL_OPT(name, op, fallback) \
  16. _vm->bindMethodMulti({"int","float"}, #name, [](VM* vm, const pkpy::ArgList& args){ \
  17. if(!vm->isIntOrFloat(args[0], args[1])){ \
  18. if constexpr(fallback) return vm->PyBool(args[0] op args[1]); \
  19. vm->typeError("unsupported operand type(s) for " #op ); \
  20. } \
  21. return vm->PyBool(vm->numToFloat(args[0]) op vm->numToFloat(args[1])); \
  22. });
  23. void __initializeBuiltinFunctions(VM* _vm) {
  24. BIND_NUM_ARITH_OPT(__add__, +)
  25. BIND_NUM_ARITH_OPT(__sub__, -)
  26. BIND_NUM_ARITH_OPT(__mul__, *)
  27. BIND_NUM_LOGICAL_OPT(__lt__, <, false)
  28. BIND_NUM_LOGICAL_OPT(__le__, <=, false)
  29. BIND_NUM_LOGICAL_OPT(__gt__, >, false)
  30. BIND_NUM_LOGICAL_OPT(__ge__, >=, false)
  31. BIND_NUM_LOGICAL_OPT(__eq__, ==, true)
  32. #undef BIND_NUM_ARITH_OPT
  33. #undef BIND_NUM_LOGICAL_OPT
  34. _vm->bindBuiltinFunc("print", [](VM* vm, const pkpy::ArgList& args) {
  35. _StrStream ss;
  36. for(int i=0; i<args.size(); i++){
  37. ss << vm->PyStr_AS_C(vm->asStr(args[i])) << " ";
  38. }
  39. (*vm->_stdout) << ss.str() << '\n';
  40. return vm->None;
  41. });
  42. _vm->bindBuiltinFunc("input", [](VM* vm, const pkpy::ArgList& args) {
  43. vm->__checkArgSize(args, 0);
  44. ThreadedVM* tvm = dynamic_cast<ThreadedVM*>(vm);
  45. if(tvm == nullptr) vm->typeError("input() can only be called in threaded mode");
  46. tvm->suspend();
  47. return vm->PyStr(tvm->readStdin());
  48. });
  49. _vm->bindBuiltinFunc("eval", [](VM* vm, const pkpy::ArgList& args) {
  50. vm->__checkArgSize(args, 1);
  51. const _Str& expr = vm->PyStr_AS_C(args[0]);
  52. _Code code = compile(vm, expr.c_str(), "<eval>", EVAL_MODE);
  53. if(code == nullptr) return vm->None;
  54. return vm->_exec(code, vm->topFrame()->_module, vm->topFrame()->f_locals);
  55. });
  56. _vm->bindBuiltinFunc("isinstance", [](VM* vm, const pkpy::ArgList& args) {
  57. vm->__checkArgSize(args, 2);
  58. return vm->PyBool(vm->isInstance(args[0], args[1]));
  59. });
  60. _vm->bindBuiltinFunc("repr", [](VM* vm, const pkpy::ArgList& args) {
  61. vm->__checkArgSize(args, 1);
  62. return vm->asRepr(args[0]);
  63. });
  64. _vm->bindBuiltinFunc("hash", [](VM* vm, const pkpy::ArgList& args) {
  65. vm->__checkArgSize(args, 1);
  66. return vm->PyInt(vm->hash(args[0]));
  67. });
  68. _vm->bindBuiltinFunc("chr", [](VM* vm, const pkpy::ArgList& args) {
  69. vm->__checkArgSize(args, 1);
  70. _Int i = vm->PyInt_AS_C(args[0]);
  71. if (i < 0 || i > 128) vm->valueError("chr() arg not in range(128)");
  72. return vm->PyStr(_Str(1, (char)i));
  73. });
  74. _vm->bindBuiltinFunc("ord", [](VM* vm, const pkpy::ArgList& args) {
  75. vm->__checkArgSize(args, 1);
  76. _Str s = vm->PyStr_AS_C(args[0]);
  77. if (s.size() != 1) vm->typeError("ord() expected an ASCII character");
  78. return vm->PyInt((_Int)s[0]);
  79. });
  80. _vm->bindBuiltinFunc("globals", [](VM* vm, const pkpy::ArgList& args) {
  81. vm->__checkArgSize(args, 0);
  82. const auto& d = vm->topFrame()->f_globals();
  83. PyVar obj = vm->call(vm->builtins->attribs["dict"], {});
  84. for (const auto& [k, v] : d) {
  85. vm->call(obj, __setitem__, {vm->PyStr(k), v});
  86. }
  87. return obj;
  88. });
  89. _vm->bindBuiltinFunc("locals", [](VM* vm, const pkpy::ArgList& args) {
  90. vm->__checkArgSize(args, 0);
  91. const auto& d = vm->topFrame()->f_locals;
  92. PyVar obj = vm->call(vm->builtins->attribs["dict"], {});
  93. for (const auto& [k, v] : d) {
  94. vm->call(obj, __setitem__, {vm->PyStr(k), v});
  95. }
  96. return obj;
  97. });
  98. _vm->bindBuiltinFunc("dir", [](VM* vm, const pkpy::ArgList& args) {
  99. vm->__checkArgSize(args, 1);
  100. PyVarList ret;
  101. for (auto& [k, _] : args[0]->attribs) ret.push_back(vm->PyStr(k));
  102. return vm->PyList(ret);
  103. });
  104. _vm->bindMethod("object", "__repr__", [](VM* vm, const pkpy::ArgList& args) {
  105. PyVar _self = args[0];
  106. _Str s = "<" + _self->getTypeName() + " object at " + std::to_string((uintptr_t)_self.get()) + ">";
  107. return vm->PyStr(s);
  108. });
  109. _vm->bindMethod("type", "__new__", [](VM* vm, const pkpy::ArgList& args) {
  110. vm->__checkArgSize(args, 1);
  111. return args[0]->_type;
  112. });
  113. _vm->bindMethod("range", "__new__", [](VM* vm, const pkpy::ArgList& args) {
  114. _Range r;
  115. switch (args.size()) {
  116. case 1: r.stop = vm->PyInt_AS_C(args[0]); break;
  117. case 2: r.start = vm->PyInt_AS_C(args[0]); r.stop = vm->PyInt_AS_C(args[1]); break;
  118. case 3: r.start = vm->PyInt_AS_C(args[0]); r.stop = vm->PyInt_AS_C(args[1]); r.step = vm->PyInt_AS_C(args[2]); break;
  119. default: vm->typeError("expected 1-3 arguments, but got " + std::to_string(args.size()));
  120. }
  121. return vm->PyRange(r);
  122. });
  123. _vm->bindMethod("range", "__iter__", [](VM* vm, const pkpy::ArgList& args) {
  124. vm->__checkType(args[0], vm->_tp_range);
  125. auto iter = std::make_shared<RangeIterator>(vm, args[0]);
  126. return vm->PyIter(iter);
  127. });
  128. _vm->bindMethod("NoneType", "__repr__", [](VM* vm, const pkpy::ArgList& args) {
  129. return vm->PyStr("None");
  130. });
  131. _vm->bindMethod("NoneType", "__json__", [](VM* vm, const pkpy::ArgList& args) {
  132. return vm->PyStr("null");
  133. });
  134. _vm->bindMethodMulti({"int", "float"}, "__truediv__", [](VM* vm, const pkpy::ArgList& args) {
  135. if(!vm->isIntOrFloat(args[0], args[1]))
  136. vm->typeError("unsupported operand type(s) for " "/" );
  137. _Float rhs = vm->numToFloat(args[1]);
  138. if (rhs == 0) vm->zeroDivisionError();
  139. return vm->PyFloat(vm->numToFloat(args[0]) / rhs);
  140. });
  141. _vm->bindMethodMulti({"int", "float"}, "__pow__", [](VM* vm, const pkpy::ArgList& args) {
  142. if(!vm->isIntOrFloat(args[0], args[1]))
  143. vm->typeError("unsupported operand type(s) for " "**" );
  144. if(args[0]->isType(vm->_tp_int) && args[1]->isType(vm->_tp_int)){
  145. return vm->PyInt((_Int)round(pow(vm->PyInt_AS_C(args[0]), vm->PyInt_AS_C(args[1]))));
  146. }else{
  147. return vm->PyFloat((_Float)pow(vm->numToFloat(args[0]), vm->numToFloat(args[1])));
  148. }
  149. });
  150. /************ PyInt ************/
  151. _vm->bindMethod("int", "__new__", [](VM* vm, const pkpy::ArgList& args) {
  152. if(args.size() == 0) return vm->PyInt(0);
  153. vm->__checkArgSize(args, 1);
  154. if (args[0]->isType(vm->_tp_int)) return args[0];
  155. if (args[0]->isType(vm->_tp_float)) return vm->PyInt((_Int)vm->PyFloat_AS_C(args[0]));
  156. if (args[0]->isType(vm->_tp_bool)) return vm->PyInt(vm->PyBool_AS_C(args[0]) ? 1 : 0);
  157. if (args[0]->isType(vm->_tp_str)) {
  158. const _Str& s = vm->PyStr_AS_C(args[0]);
  159. try{
  160. _Int val = std::stoll(s.str());
  161. return vm->PyInt(val);
  162. }catch(std::invalid_argument&){
  163. vm->valueError("invalid literal for int(): '" + s + "'");
  164. }
  165. }
  166. vm->typeError("int() argument must be a int, float, bool or str");
  167. return vm->None;
  168. });
  169. _vm->bindMethod("int", "__floordiv__", [](VM* vm, const pkpy::ArgList& args) {
  170. if(!args[0]->isType(vm->_tp_int) || !args[1]->isType(vm->_tp_int))
  171. vm->typeError("unsupported operand type(s) for " "//" );
  172. _Int rhs = vm->PyInt_AS_C(args[1]);
  173. if(rhs == 0) vm->zeroDivisionError();
  174. return vm->PyInt(vm->PyInt_AS_C(args[0]) / rhs);
  175. });
  176. _vm->bindMethod("int", "__mod__", [](VM* vm, const pkpy::ArgList& args) {
  177. if(!args[0]->isType(vm->_tp_int) || !args[1]->isType(vm->_tp_int))
  178. vm->typeError("unsupported operand type(s) for " "%" );
  179. _Int rhs = vm->PyInt_AS_C(args[1]);
  180. if(rhs == 0) vm->zeroDivisionError();
  181. return vm->PyInt(vm->PyInt_AS_C(args[0]) % rhs);
  182. });
  183. _vm->bindMethod("int", "__repr__", [](VM* vm, const pkpy::ArgList& args) {
  184. return vm->PyStr(std::to_string(vm->PyInt_AS_C(args[0])));
  185. });
  186. _vm->bindMethod("int", "__json__", [](VM* vm, const pkpy::ArgList& args) {
  187. return vm->PyStr(std::to_string((int)vm->PyInt_AS_C(args[0])));
  188. });
  189. #define __INT_BITWISE_OP(name,op) \
  190. _vm->bindMethod("int", #name, [](VM* vm, const pkpy::ArgList& args) { \
  191. if(!args[0]->isType(vm->_tp_int) || !args[1]->isType(vm->_tp_int)) \
  192. vm->typeError("unsupported operand type(s) for " #op ); \
  193. return vm->PyInt(vm->PyInt_AS_C(args[0]) op vm->PyInt_AS_C(args[1])); \
  194. });
  195. __INT_BITWISE_OP(__lshift__, <<)
  196. __INT_BITWISE_OP(__rshift__, >>)
  197. __INT_BITWISE_OP(__and__, &)
  198. __INT_BITWISE_OP(__or__, |)
  199. __INT_BITWISE_OP(__xor__, ^)
  200. #undef __INT_BITWISE_OP
  201. _vm->bindMethod("int", "__xor__", [](VM* vm, const pkpy::ArgList& args) {
  202. if(!args[0]->isType(vm->_tp_int) || !args[1]->isType(vm->_tp_int))
  203. vm->typeError("unsupported operand type(s) for " "^" );
  204. return vm->PyInt(vm->PyInt_AS_C(args[0]) ^ vm->PyInt_AS_C(args[1]));
  205. });
  206. /************ PyFloat ************/
  207. _vm->bindMethod("float", "__new__", [](VM* vm, const pkpy::ArgList& args) {
  208. if(args.size() == 0) return vm->PyFloat(0.0);
  209. vm->__checkArgSize(args, 1);
  210. if (args[0]->isType(vm->_tp_int)) return vm->PyFloat((_Float)vm->PyInt_AS_C(args[0]));
  211. if (args[0]->isType(vm->_tp_float)) return args[0];
  212. if (args[0]->isType(vm->_tp_bool)) return vm->PyFloat(vm->PyBool_AS_C(args[0]) ? 1.0 : 0.0);
  213. if (args[0]->isType(vm->_tp_str)) {
  214. const _Str& s = vm->PyStr_AS_C(args[0]);
  215. if(s == "inf") return vm->PyFloat(_FLOAT_INF_POS);
  216. if(s == "-inf") return vm->PyFloat(_FLOAT_INF_NEG);
  217. try{
  218. _Float val = std::stod(s.str());
  219. return vm->PyFloat(val);
  220. }catch(std::invalid_argument&){
  221. vm->valueError("invalid literal for float(): '" + s + "'");
  222. }
  223. }
  224. vm->typeError("float() argument must be a int, float, bool or str");
  225. return vm->None;
  226. });
  227. _vm->bindMethod("float", "__repr__", [](VM* vm, const pkpy::ArgList& args) {
  228. _Float val = vm->PyFloat_AS_C(args[0]);
  229. if(std::isinf(val) || std::isnan(val)) return vm->PyStr(std::to_string(val));
  230. _StrStream ss;
  231. ss << std::setprecision(std::numeric_limits<_Float>::max_digits10-1) << val;
  232. std::string s = ss.str();
  233. if(std::all_of(s.begin()+1, s.end(), isdigit)) s += ".0";
  234. return vm->PyStr(s);
  235. });
  236. _vm->bindMethod("float", "__json__", [](VM* vm, const pkpy::ArgList& args) {
  237. return vm->PyStr(std::to_string((float)vm->PyFloat_AS_C(args[0])));
  238. });
  239. /************ PyString ************/
  240. _vm->bindMethod("str", "__new__", [](VM* vm, const pkpy::ArgList& args) {
  241. vm->__checkArgSize(args, 1);
  242. return vm->asStr(args[0]);
  243. });
  244. _vm->bindMethod("str", "__add__", [](VM* vm, const pkpy::ArgList& args) {
  245. if(!args[0]->isType(vm->_tp_str) || !args[1]->isType(vm->_tp_str))
  246. vm->typeError("unsupported operand type(s) for " "+" );
  247. const _Str& lhs = vm->PyStr_AS_C(args[0]);
  248. const _Str& rhs = vm->PyStr_AS_C(args[1]);
  249. return vm->PyStr(lhs + rhs);
  250. });
  251. _vm->bindMethod("str", "__len__", [](VM* vm, const pkpy::ArgList& args) {
  252. const _Str& _self = vm->PyStr_AS_C(args[0]);
  253. return vm->PyInt(_self.u8_length());
  254. });
  255. _vm->bindMethod("str", "__contains__", [](VM* vm, const pkpy::ArgList& args) {
  256. const _Str& _self = vm->PyStr_AS_C(args[0]);
  257. const _Str& _other = vm->PyStr_AS_C(args[1]);
  258. return vm->PyBool(_self.str().find(_other.str()) != _Str::npos);
  259. });
  260. _vm->bindMethod("str", "__str__", [](VM* vm, const pkpy::ArgList& args) {
  261. return args[0]; // str is immutable
  262. });
  263. _vm->bindMethod("str", "__iter__", [](VM* vm, const pkpy::ArgList& args) {
  264. auto it = std::make_shared<StringIterator>(vm, args[0]);
  265. return vm->PyIter(it);
  266. });
  267. _vm->bindMethod("str", "__repr__", [](VM* vm, const pkpy::ArgList& args) {
  268. const _Str& _self = vm->PyStr_AS_C(args[0]);
  269. return vm->PyStr(_self.__escape(true));
  270. });
  271. _vm->bindMethod("str", "__json__", [](VM* vm, const pkpy::ArgList& args) {
  272. const _Str& _self = vm->PyStr_AS_C(args[0]);
  273. return vm->PyStr(_self.__escape(false));
  274. });
  275. _vm->bindMethod("str", "__eq__", [](VM* vm, const pkpy::ArgList& args) {
  276. if(args[0]->isType(vm->_tp_str) && args[1]->isType(vm->_tp_str))
  277. return vm->PyBool(vm->PyStr_AS_C(args[0]) == vm->PyStr_AS_C(args[1]));
  278. return vm->PyBool(args[0] == args[1]); // fallback
  279. });
  280. _vm->bindMethod("str", "__getitem__", [](VM* vm, const pkpy::ArgList& args) {
  281. const _Str& _self (vm->PyStr_AS_C(args[0]));
  282. if(args[1]->isType(vm->_tp_slice)){
  283. _Slice s = vm->PySlice_AS_C(args[1]);
  284. s.normalize(_self.u8_length());
  285. return vm->PyStr(_self.u8_substr(s.start, s.stop));
  286. }
  287. int _index = vm->PyInt_AS_C(args[1]);
  288. _index = vm->normalizedIndex(_index, _self.u8_length());
  289. return vm->PyStr(_self.u8_getitem(_index));
  290. });
  291. _vm->bindMethod("str", "__gt__", [](VM* vm, const pkpy::ArgList& args) {
  292. const _Str& _self (vm->PyStr_AS_C(args[0]));
  293. const _Str& _obj (vm->PyStr_AS_C(args[1]));
  294. return vm->PyBool(_self > _obj);
  295. });
  296. _vm->bindMethod("str", "__lt__", [](VM* vm, const pkpy::ArgList& args) {
  297. const _Str& _self (vm->PyStr_AS_C(args[0]));
  298. const _Str& _obj (vm->PyStr_AS_C(args[1]));
  299. return vm->PyBool(_self < _obj);
  300. });
  301. _vm->bindMethod("str", "upper", [](VM* vm, const pkpy::ArgList& args) {
  302. vm->__checkArgSize(args, 1, true);
  303. const _Str& _self (vm->PyStr_AS_C(args[0]));
  304. _StrStream ss;
  305. for(auto c : _self.str()) ss << (char)toupper(c);
  306. return vm->PyStr(ss.str());
  307. });
  308. _vm->bindMethod("str", "lower", [](VM* vm, const pkpy::ArgList& args) {
  309. vm->__checkArgSize(args, 1, true);
  310. const _Str& _self (vm->PyStr_AS_C(args[0]));
  311. _StrStream ss;
  312. for(auto c : _self.str()) ss << (char)tolower(c);
  313. return vm->PyStr(ss.str());
  314. });
  315. _vm->bindMethod("str", "replace", [](VM* vm, const pkpy::ArgList& args) {
  316. vm->__checkArgSize(args, 3, true);
  317. const _Str& _self = vm->PyStr_AS_C(args[0]);
  318. const _Str& _old = vm->PyStr_AS_C(args[1]);
  319. const _Str& _new = vm->PyStr_AS_C(args[2]);
  320. std::string _copy = _self.str();
  321. // replace all occurences of _old with _new in _copy
  322. size_t pos = 0;
  323. while ((pos = _copy.find(_old.str(), pos)) != std::string::npos) {
  324. _copy.replace(pos, _old.str().length(), _new.str());
  325. pos += _new.str().length();
  326. }
  327. return vm->PyStr(_copy);
  328. });
  329. _vm->bindMethod("str", "startswith", [](VM* vm, const pkpy::ArgList& args) {
  330. vm->__checkArgSize(args, 2, true);
  331. const _Str& _self = vm->PyStr_AS_C(args[0]);
  332. const _Str& _prefix = vm->PyStr_AS_C(args[1]);
  333. return vm->PyBool(_self.str().find(_prefix.str()) == 0);
  334. });
  335. _vm->bindMethod("str", "endswith", [](VM* vm, const pkpy::ArgList& args) {
  336. vm->__checkArgSize(args, 2, true);
  337. const _Str& _self = vm->PyStr_AS_C(args[0]);
  338. const _Str& _suffix = vm->PyStr_AS_C(args[1]);
  339. return vm->PyBool(_self.str().rfind(_suffix.str()) == _self.str().length() - _suffix.str().length());
  340. });
  341. _vm->bindMethod("str", "join", [](VM* vm, const pkpy::ArgList& args) {
  342. vm->__checkArgSize(args, 2, true);
  343. const _Str& _self = vm->PyStr_AS_C(args[0]);
  344. const PyVarList& _list = vm->PyList_AS_C(args[1]);
  345. _StrStream ss;
  346. for(int i = 0; i < _list.size(); i++){
  347. if(i > 0) ss << _self;
  348. ss << vm->PyStr_AS_C(vm->asStr(_list[i]));
  349. }
  350. return vm->PyStr(ss.str());
  351. });
  352. /************ PyList ************/
  353. _vm->bindMethod("list", "__iter__", [](VM* vm, const pkpy::ArgList& args) {
  354. vm->__checkType(args[0], vm->_tp_list);
  355. auto iter = std::make_shared<VectorIterator>(vm, args[0]);
  356. return vm->PyIter(iter);
  357. });
  358. _vm->bindMethod("list", "append", [](VM* vm, const pkpy::ArgList& args) {
  359. vm->__checkArgSize(args, 2, true);
  360. PyVarList& _self = vm->PyList_AS_C(args[0]);
  361. _self.push_back(args[1]);
  362. return vm->None;
  363. });
  364. _vm->bindMethod("list", "insert", [](VM* vm, const pkpy::ArgList& args) {
  365. vm->__checkArgSize(args, 3, true);
  366. PyVarList& _self = vm->PyList_AS_C(args[0]);
  367. int _index = vm->PyInt_AS_C(args[1]);
  368. if(_index < 0) _index += _self.size();
  369. if(_index < 0) _index = 0;
  370. if(_index > _self.size()) _index = _self.size();
  371. _self.insert(_self.begin() + _index, args[2]);
  372. return vm->None;
  373. });
  374. _vm->bindMethod("list", "clear", [](VM* vm, const pkpy::ArgList& args) {
  375. vm->__checkArgSize(args, 1, true);
  376. vm->PyList_AS_C(args[0]).clear();
  377. return vm->None;
  378. });
  379. _vm->bindMethod("list", "copy", [](VM* vm, const pkpy::ArgList& args) {
  380. vm->__checkArgSize(args, 1, true);
  381. return vm->PyList(vm->PyList_AS_C(args[0]));
  382. });
  383. _vm->bindMethod("list", "pop", [](VM* vm, const pkpy::ArgList& args) {
  384. vm->__checkArgSize(args, 1, true);
  385. PyVarList& _self = vm->PyList_AS_C(args[0]);
  386. if(_self.empty()) vm->indexError("pop from empty list");
  387. PyVar ret = _self.back();
  388. _self.pop_back();
  389. return ret;
  390. });
  391. _vm->bindMethod("list", "__add__", [](VM* vm, const pkpy::ArgList& args) {
  392. const PyVarList& _self = vm->PyList_AS_C(args[0]);
  393. const PyVarList& _obj = vm->PyList_AS_C(args[1]);
  394. PyVarList _new_list = _self;
  395. _new_list.insert(_new_list.end(), _obj.begin(), _obj.end());
  396. return vm->PyList(_new_list);
  397. });
  398. _vm->bindMethod("list", "__len__", [](VM* vm, const pkpy::ArgList& args) {
  399. const PyVarList& _self = vm->PyList_AS_C(args[0]);
  400. return vm->PyInt(_self.size());
  401. });
  402. _vm->bindMethod("list", "__getitem__", [](VM* vm, const pkpy::ArgList& args) {
  403. const PyVarList& _self = vm->PyList_AS_C(args[0]);
  404. if(args[1]->isType(vm->_tp_slice)){
  405. _Slice s = vm->PySlice_AS_C(args[1]);
  406. s.normalize(_self.size());
  407. PyVarList _new_list;
  408. for(int i = s.start; i < s.stop; i++)
  409. _new_list.push_back(_self[i]);
  410. return vm->PyList(_new_list);
  411. }
  412. int _index = vm->PyInt_AS_C(args[1]);
  413. _index = vm->normalizedIndex(_index, _self.size());
  414. return _self[_index];
  415. });
  416. _vm->bindMethod("list", "__setitem__", [](VM* vm, const pkpy::ArgList& args) {
  417. PyVarList& _self = vm->PyList_AS_C(args[0]);
  418. int _index = vm->PyInt_AS_C(args[1]);
  419. _index = vm->normalizedIndex(_index, _self.size());
  420. _self[_index] = args[2];
  421. return vm->None;
  422. });
  423. _vm->bindMethod("list", "__delitem__", [](VM* vm, const pkpy::ArgList& args) {
  424. PyVarList& _self = vm->PyList_AS_C(args[0]);
  425. int _index = vm->PyInt_AS_C(args[1]);
  426. _index = vm->normalizedIndex(_index, _self.size());
  427. _self.erase(_self.begin() + _index);
  428. return vm->None;
  429. });
  430. /************ PyTuple ************/
  431. _vm->bindMethod("tuple", "__new__", [](VM* vm, const pkpy::ArgList& args) {
  432. vm->__checkArgSize(args, 1);
  433. PyVarList _list = vm->PyList_AS_C(vm->call(vm->builtins->attribs["list"], args));
  434. return vm->PyTuple(_list);
  435. });
  436. _vm->bindMethod("tuple", "__iter__", [](VM* vm, const pkpy::ArgList& args) {
  437. vm->__checkType(args[0], vm->_tp_tuple);
  438. auto iter = std::make_shared<VectorIterator>(vm, args[0]);
  439. return vm->PyIter(iter);
  440. });
  441. _vm->bindMethod("tuple", "__len__", [](VM* vm, const pkpy::ArgList& args) {
  442. const PyVarList& _self = vm->PyTuple_AS_C(args[0]);
  443. return vm->PyInt(_self.size());
  444. });
  445. _vm->bindMethod("tuple", "__getitem__", [](VM* vm, const pkpy::ArgList& args) {
  446. const PyVarList& _self = vm->PyTuple_AS_C(args[0]);
  447. int _index = vm->PyInt_AS_C(args[1]);
  448. _index = vm->normalizedIndex(_index, _self.size());
  449. return _self[_index];
  450. });
  451. /************ PyBool ************/
  452. _vm->bindMethod("bool", "__repr__", [](VM* vm, const pkpy::ArgList& args) {
  453. bool val = vm->PyBool_AS_C(args[0]);
  454. return vm->PyStr(val ? "True" : "False");
  455. });
  456. _vm->bindMethod("bool", "__json__", [](VM* vm, const pkpy::ArgList& args) {
  457. bool val = vm->PyBool_AS_C(args[0]);
  458. return vm->PyStr(val ? "true" : "false");
  459. });
  460. _vm->bindMethod("bool", "__eq__", [](VM* vm, const pkpy::ArgList& args) {
  461. return vm->PyBool(args[0] == args[1]);
  462. });
  463. _vm->bindMethod("bool", "__xor__", [](VM* vm, const pkpy::ArgList& args) {
  464. bool _self = vm->PyBool_AS_C(args[0]);
  465. bool _obj = vm->PyBool_AS_C(args[1]);
  466. return vm->PyBool(_self ^ _obj);
  467. });
  468. }
  469. #include "builtins.h"
  470. #ifdef _WIN32
  471. #define __EXPORT __declspec(dllexport)
  472. #elif __APPLE__
  473. #define __EXPORT __attribute__((visibility("default"))) __attribute__((used))
  474. #else
  475. #define __EXPORT
  476. #endif
  477. void __addModuleTime(VM* vm){
  478. PyVar mod = vm->newModule("time");
  479. vm->bindFunc(mod, "time", [](VM* vm, const pkpy::ArgList& args) {
  480. auto now = std::chrono::high_resolution_clock::now();
  481. return vm->PyFloat(std::chrono::duration_cast<std::chrono::microseconds>(now.time_since_epoch()).count() / 1000000.0);
  482. });
  483. }
  484. void __addModuleSys(VM* vm){
  485. PyVar mod = vm->newModule("sys");
  486. vm->bindFunc(mod, "getrefcount", [](VM* vm, const pkpy::ArgList& args) {
  487. vm->__checkArgSize(args, 1);
  488. return vm->PyInt(args[0].use_count());
  489. });
  490. vm->bindFunc(mod, "getrecursionlimit", [](VM* vm, const pkpy::ArgList& args) {
  491. vm->__checkArgSize(args, 0);
  492. return vm->PyInt(vm->maxRecursionDepth);
  493. });
  494. vm->bindFunc(mod, "setrecursionlimit", [](VM* vm, const pkpy::ArgList& args) {
  495. vm->__checkArgSize(args, 1);
  496. vm->maxRecursionDepth = vm->PyInt_AS_C(args[0]);
  497. return vm->None;
  498. });
  499. vm->setAttr(mod, "version", vm->PyStr(PK_VERSION));
  500. }
  501. extern "C" {
  502. struct PyObjectDump: public PkExportedResource{
  503. const char* type; // "int", "str", "float" ...
  504. const char* json; // json representation
  505. PyObjectDump(_Str _type, _Str _json){
  506. type = strdup(_type.c_str());
  507. json = strdup(_json.c_str());
  508. }
  509. ~PyObjectDump(){
  510. delete[] type;
  511. delete[] json;
  512. }
  513. };
  514. struct PyOutputDump: public PkExportedResource{
  515. const char* _stdout;
  516. const char* _stderr;
  517. PyOutputDump(_Str _stdout, _Str _stderr){
  518. this->_stdout = strdup(_stdout.c_str());
  519. this->_stderr = strdup(_stderr.c_str());
  520. }
  521. ~PyOutputDump(){
  522. delete[] _stdout;
  523. delete[] _stderr;
  524. }
  525. };
  526. __EXPORT
  527. void pkpy_delete(PkExportedResource* p){
  528. delete p;
  529. }
  530. __EXPORT
  531. bool pkpy_exec(VM* vm, const char* source){
  532. _Code code = compile(vm, source, "main.py");
  533. if(code == nullptr) return false;
  534. return vm->exec(code) != nullptr;
  535. }
  536. __EXPORT
  537. PyObjectDump* pkpy_get_global(VM* vm, const char* name){
  538. auto it = vm->_main->attribs.find(name);
  539. if(it == vm->_main->attribs.end()) return nullptr;
  540. return new PyObjectDump(
  541. it->second->getTypeName().c_str(),
  542. vm->PyStr_AS_C(vm->asJson(it->second)).c_str()
  543. );
  544. }
  545. __EXPORT
  546. void pkpy_set_global_int(VM* vm, const char* name, _Int value){
  547. vm->setAttr(vm->_main, name, vm->PyInt(value));
  548. }
  549. __EXPORT
  550. void pkpy_set_global_float(VM* vm, const char* name, _Float value){
  551. vm->setAttr(vm->_main, name, vm->PyFloat(value));
  552. }
  553. __EXPORT
  554. void pkpy_set_global_str(VM* vm, const char* name, const char* value){
  555. vm->setAttr(vm->_main, name, vm->PyStr(value));
  556. }
  557. __EXPORT
  558. void pkpy_set_global_bool(VM* vm, const char* name, bool value){
  559. vm->setAttr(vm->_main, name, vm->PyBool(value));
  560. }
  561. __EXPORT
  562. PyObjectDump* pkpy_eval(VM* vm, const char* source){
  563. _Code code = compile(vm, source, "<eval>", EVAL_MODE);
  564. if(code == nullptr) return nullptr;
  565. PyVar ret = vm->exec(code);
  566. if(ret == nullptr) return nullptr;
  567. return new PyObjectDump(
  568. ret->getTypeName(),
  569. vm->PyStr_AS_C(vm->asJson(ret))
  570. );
  571. }
  572. __EXPORT
  573. REPL* pkpy_new_repl(VM* vm, bool use_prompt){
  574. return new REPL(vm, use_prompt);
  575. }
  576. __EXPORT
  577. bool pkpy_repl_input(REPL* r, const char* line){
  578. return r->input(line);
  579. }
  580. __EXPORT
  581. bool pkpy_add_module(VM* vm, const char* name, const char* source){
  582. _Code code = compile(vm, source, name + _Str(".py"));
  583. if(code == nullptr) return false;
  584. PyVar _m = vm->newModule(name);
  585. return vm->exec(code, _m) != nullptr;
  586. }
  587. void __vm_init(VM* vm){
  588. __initializeBuiltinFunctions(vm);
  589. _Code code = compile(vm, __BUILTINS_CODE, "<builtins>");
  590. if(code == nullptr) exit(1);
  591. vm->_exec(code, vm->builtins);
  592. __addModuleSys(vm);
  593. __addModuleTime(vm);
  594. pkpy_add_module(vm, "random", __RANDOM_CODE);
  595. }
  596. __EXPORT
  597. VM* pkpy_new_vm(bool use_stdio){
  598. VM* vm = new VM(use_stdio);
  599. __vm_init(vm);
  600. return vm;
  601. }
  602. __EXPORT
  603. ThreadedVM* pkpy_new_tvm(bool use_stdio){
  604. ThreadedVM* vm = new ThreadedVM(use_stdio);
  605. __vm_init(vm);
  606. return vm;
  607. }
  608. __EXPORT
  609. PyOutputDump* pkpy_vm_read_output(VM* vm){
  610. if(vm->use_stdio) return nullptr;
  611. _StrStream* s_out = dynamic_cast<_StrStream*>(vm->_stdout);
  612. _StrStream* s_err = dynamic_cast<_StrStream*>(vm->_stderr);
  613. if(s_out == nullptr || s_err == nullptr) return nullptr;
  614. PyOutputDump* dump = new PyOutputDump(s_out->str(), s_err->str());
  615. s_out->str("");
  616. s_err->str("");
  617. return dump;
  618. }
  619. __EXPORT
  620. int pkpy_tvm_get_state(ThreadedVM* vm){
  621. return vm->getState();
  622. }
  623. __EXPORT
  624. bool pkpy_tvm_start_exec(ThreadedVM* vm, const char* source){
  625. _Code code = compile(vm, source, "main.py");
  626. if(code == nullptr) return false;
  627. vm->startExec(code);
  628. return true;
  629. }
  630. __EXPORT
  631. void pkpy_tvm_write_stdin(ThreadedVM* vm, const char* line){
  632. vm->_stdin = _Str(line);
  633. }
  634. __EXPORT
  635. void pkpy_tvm_resume(ThreadedVM* vm){
  636. vm->resume();
  637. }
  638. }