mirror of
https://github.com/pocketpy/pocketpy
synced 2025-10-20 19:40:18 +00:00
1112 lines
37 KiB
C++
1112 lines
37 KiB
C++
#include "pocketpy/vm.h"
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namespace pkpy{
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VM::VM(bool enable_os) : heap(this), enable_os(enable_os) {
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this->vm = this;
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this->_c.error = nullptr;
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_stdout = [](VM* vm, const char* buf, int size) {
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PK_UNUSED(vm);
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std::cout.write(buf, size);
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};
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_stderr = [](VM* vm, const char* buf, int size) {
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PK_UNUSED(vm);
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std::cerr.write(buf, size);
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};
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callstack.reserve(8);
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_main = nullptr;
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_last_exception = nullptr;
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_import_handler = [](const Str& name) {
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PK_UNUSED(name);
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return Bytes();
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};
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init_builtin_types();
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}
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PyObject* VM::py_str(PyObject* obj){
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const PyTypeInfo* ti = _inst_type_info(obj);
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if(ti->m__str__) return ti->m__str__(this, obj);
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PyObject* self;
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PyObject* f = get_unbound_method(obj, __str__, &self, false);
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if(self != PY_NULL) return call_method(self, f);
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return py_repr(obj);
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}
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PyObject* VM::py_repr(PyObject* obj){
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const PyTypeInfo* ti = _inst_type_info(obj);
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if(ti->m__repr__) return ti->m__repr__(this, obj);
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return call_method(obj, __repr__);
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}
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PyObject* VM::py_json(PyObject* obj){
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const PyTypeInfo* ti = _inst_type_info(obj);
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if(ti->m__json__) return ti->m__json__(this, obj);
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return call_method(obj, __json__);
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}
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PyObject* VM::py_iter(PyObject* obj){
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const PyTypeInfo* ti = _inst_type_info(obj);
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if(ti->m__iter__) return ti->m__iter__(this, obj);
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PyObject* self;
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PyObject* iter_f = get_unbound_method(obj, __iter__, &self, false);
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if(self != PY_NULL) return call_method(self, iter_f);
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TypeError(OBJ_NAME(_t(obj)).escape() + " object is not iterable");
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return nullptr;
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}
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FrameId VM::top_frame(){
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#if PK_DEBUG_EXTRA_CHECK
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if(callstack.empty()) FATAL_ERROR();
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#endif
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return FrameId(&callstack.data(), callstack.size()-1);
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}
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void VM::_pop_frame(){
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Frame* frame = &callstack.top();
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s_data.reset(frame->_sp_base);
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callstack.pop();
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}
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PyObject* VM::find_name_in_mro(PyObject* cls, StrName name){
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PyObject* val;
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do{
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val = cls->attr().try_get(name);
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if(val != nullptr) return val;
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Type base = _all_types[PK_OBJ_GET(Type, cls)].base;
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if(base.index == -1) break;
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cls = _all_types[base].obj;
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}while(true);
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return nullptr;
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}
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bool VM::isinstance(PyObject* obj, Type cls_t){
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Type obj_t = PK_OBJ_GET(Type, _t(obj));
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do{
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if(obj_t == cls_t) return true;
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Type base = _all_types[obj_t].base;
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if(base.index == -1) break;
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obj_t = base;
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}while(true);
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return false;
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}
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PyObject* VM::exec(Str source, Str filename, CompileMode mode, PyObject* _module){
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if(_module == nullptr) _module = _main;
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try {
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CodeObject_ code = compile(source, filename, mode);
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#if PK_DEBUG_DIS_EXEC
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if(_module == _main) std::cout << disassemble(code) << '\n';
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#endif
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return _exec(code, _module);
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}catch (const Exception& e){
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Str sum = e.summary() + "\n";
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_stderr(this, sum.data, sum.size);
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}
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#if !PK_DEBUG_FULL_EXCEPTION
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catch (const std::exception& e) {
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Str msg = "An std::exception occurred! It could be a bug.\n";
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msg = msg + e.what() + "\n";
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_stderr(this, msg.data, msg.size);
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}
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#endif
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callstack.clear();
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s_data.clear();
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return nullptr;
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}
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void VM::exec(Str source){
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exec(source, "main.py", EXEC_MODE);
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}
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PyObject* VM::eval(Str source){
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return exec(source, "<eval>", EVAL_MODE);
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}
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PyObject* VM::new_type_object(PyObject* mod, StrName name, Type base, bool subclass_enabled){
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PyObject* obj = heap._new<Type>(tp_type, _all_types.size());
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const PyTypeInfo& base_info = _all_types[base];
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if(!base_info.subclass_enabled){
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TypeError(fmt("type ", base_info.name.escape(), " is not `subclass_enabled`"));
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}
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PyTypeInfo info{
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obj,
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base,
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(mod!=nullptr && mod!=builtins) ? Str(OBJ_NAME(mod)+"."+name.sv()): name.sv(),
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subclass_enabled,
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};
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if(mod != nullptr) mod->attr().set(name, obj);
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_all_types.push_back(info);
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return obj;
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}
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Type VM::_new_type_object(StrName name, Type base) {
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PyObject* obj = new_type_object(nullptr, name, base, false);
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return PK_OBJ_GET(Type, obj);
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}
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PyObject* VM::_find_type_object(const Str& type){
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PyObject* obj = builtins->attr().try_get(type);
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if(obj == nullptr){
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for(auto& t: _all_types) if(t.name == type) return t.obj;
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throw std::runtime_error(fmt("type not found: ", type));
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}
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check_non_tagged_type(obj, tp_type);
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return obj;
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}
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Type VM::_type(const Str& type){
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PyObject* obj = _find_type_object(type);
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return PK_OBJ_GET(Type, obj);
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}
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PyTypeInfo* VM::_type_info(const Str& type){
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PyObject* obj = builtins->attr().try_get(type);
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if(obj == nullptr){
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for(auto& t: _all_types) if(t.name == type) return &t;
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FATAL_ERROR();
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}
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return &_all_types[PK_OBJ_GET(Type, obj)];
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}
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PyTypeInfo* VM::_type_info(Type type){
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return &_all_types[type];
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}
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const PyTypeInfo* VM::_inst_type_info(PyObject* obj){
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if(is_int(obj)) return &_all_types[tp_int];
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if(is_float(obj)) return &_all_types[tp_float];
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return &_all_types[obj->type];
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}
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bool VM::py_equals(PyObject* lhs, PyObject* rhs){
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if(lhs == rhs) return true;
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const PyTypeInfo* ti = _inst_type_info(lhs);
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PyObject* res;
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if(ti->m__eq__){
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res = ti->m__eq__(this, lhs, rhs);
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if(res != vm->NotImplemented) return res == vm->True;
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}
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res = call_method(lhs, __eq__, rhs);
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if(res != vm->NotImplemented) return res == vm->True;
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ti = _inst_type_info(rhs);
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if(ti->m__eq__){
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res = ti->m__eq__(this, rhs, lhs);
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if(res != vm->NotImplemented) return res == vm->True;
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}
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res = call_method(rhs, __eq__, lhs);
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if(res != vm->NotImplemented) return res == vm->True;
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return false;
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}
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int VM::normalized_index(int index, int size){
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if(index < 0) index += size;
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if(index < 0 || index >= size){
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IndexError(std::to_string(index) + " not in [0, " + std::to_string(size) + ")");
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}
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return index;
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}
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PyObject* VM::py_next(PyObject* obj){
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const PyTypeInfo* ti = _inst_type_info(obj);
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if(ti->m__next__) return ti->m__next__(this, obj);
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return call_method(obj, __next__);
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}
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PyObject* VM::py_import(StrName name, bool relative){
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Str filename;
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int type;
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if(relative){
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ImportContext* ctx = &_import_context;
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type = 2;
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for(auto it=ctx->pending.rbegin(); it!=ctx->pending.rend(); ++it){
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if(it->second == 2) continue;
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if(it->second == 1){
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filename = fmt(it->first, kPlatformSep, name, ".py");
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name = fmt(it->first, '.', name).c_str();
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break;
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}
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}
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if(filename.length() == 0) _error("ImportError", "relative import outside of package");
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}else{
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type = 0;
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filename = fmt(name, ".py");
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}
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for(auto& [k, v]: _import_context.pending){
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if(k == name){
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vm->_error("ImportError", fmt("circular import ", name.escape()));
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}
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}
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PyObject* ext_mod = _modules.try_get(name);
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if(ext_mod == nullptr){
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Str source;
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auto it = _lazy_modules.find(name);
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if(it == _lazy_modules.end()){
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Bytes b = _import_handler(filename);
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if(!relative && !b){
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filename = fmt(name, kPlatformSep, "__init__.py");
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b = _import_handler(filename);
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if(b) type = 1;
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}
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if(!b) _error("ImportError", fmt("module ", name.escape(), " not found"));
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source = Str(b.str());
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}else{
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source = it->second;
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_lazy_modules.erase(it);
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}
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auto _ = _import_context.temp(this, name, type);
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CodeObject_ code = compile(source, filename, EXEC_MODE);
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PyObject* new_mod = new_module(name);
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_exec(code, new_mod);
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new_mod->attr()._try_perfect_rehash();
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return new_mod;
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}else{
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return ext_mod;
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}
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}
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VM::~VM() {
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callstack.clear();
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s_data.clear();
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_all_types.clear();
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_modules.clear();
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_lazy_modules.clear();
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}
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PyObject* VM::py_negate(PyObject* obj){
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const PyTypeInfo* ti = _inst_type_info(obj);
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if(ti->m__neg__) return ti->m__neg__(this, obj);
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return call_method(obj, __neg__);
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}
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void VM::check_int_or_float(PyObject *obj){
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if(!is_tagged(obj)){
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TypeError("expected 'int' or 'float', got " + OBJ_NAME(_t(obj)).escape());
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}
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}
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bool VM::py_bool(PyObject* obj){
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if(is_non_tagged_type(obj, tp_bool)) return obj == True;
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if(obj == None) return false;
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if(is_int(obj)) return _CAST(i64, obj) != 0;
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if(is_float(obj)) return _CAST(f64, obj) != 0.0;
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PyObject* self;
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PyObject* len_f = get_unbound_method(obj, __len__, &self, false);
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if(self != PY_NULL){
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PyObject* ret = call_method(self, len_f);
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return CAST(i64, ret) > 0;
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}
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return true;
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}
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PyObject* VM::py_list(PyObject* it){
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auto _lock = heap.gc_scope_lock();
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it = py_iter(it);
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List list;
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PyObject* obj = py_next(it);
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while(obj != StopIteration){
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list.push_back(obj);
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obj = py_next(it);
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}
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return VAR(std::move(list));
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}
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void VM::parse_int_slice(const Slice& s, int length, int& start, int& stop, int& step){
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auto clip = [](int value, int min, int max){
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if(value < min) return min;
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if(value > max) return max;
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return value;
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};
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if(s.step == None) step = 1;
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else step = CAST(int, s.step);
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if(step == 0) ValueError("slice step cannot be zero");
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if(step > 0){
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if(s.start == None){
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start = 0;
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}else{
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start = CAST(int, s.start);
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if(start < 0) start += length;
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start = clip(start, 0, length);
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}
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if(s.stop == None){
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stop = length;
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}else{
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stop = CAST(int, s.stop);
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if(stop < 0) stop += length;
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stop = clip(stop, 0, length);
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}
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}else{
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if(s.start == None){
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start = length - 1;
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}else{
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start = CAST(int, s.start);
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if(start < 0) start += length;
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start = clip(start, -1, length - 1);
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}
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if(s.stop == None){
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stop = -1;
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}else{
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stop = CAST(int, s.stop);
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if(stop < 0) stop += length;
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stop = clip(stop, -1, length - 1);
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}
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}
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}
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i64 VM::py_hash(PyObject* obj){
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// https://docs.python.org/3.10/reference/datamodel.html#object.__hash__
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const PyTypeInfo* ti = _inst_type_info(obj);
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if(ti->m__hash__) return ti->m__hash__(this, obj);
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PyObject* self;
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PyObject* f = get_unbound_method(obj, __hash__, &self, false);
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if(f != nullptr){
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PyObject* ret = call_method(self, f);
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return CAST(i64, ret);
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}
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// if it is trivial `object`, return PK_BITS
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if(ti == &_all_types[tp_object]) return PK_BITS(obj);
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// otherwise, we check if it has a custom __eq__ other than object.__eq__
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bool has_custom_eq = false;
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if(ti->m__eq__) has_custom_eq = true;
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else{
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f = get_unbound_method(obj, __eq__, &self, false);
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has_custom_eq = f != _t(tp_object)->attr(__eq__);
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}
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if(has_custom_eq){
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TypeError(fmt("unhashable type: ", ti->name.escape()));
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return 0;
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}else{
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return PK_BITS(obj);
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}
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}
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PyObject* VM::format(Str spec, PyObject* obj){
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if(spec.empty()) return py_str(obj);
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char type;
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switch(spec.end()[-1]){
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case 'f': case 'd': case 's':
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type = spec.end()[-1];
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spec = spec.substr(0, spec.length() - 1);
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break;
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default: type = ' '; break;
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}
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char pad_c = ' ';
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for(char c: std::string_view("0-=*#@!~")){
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if(spec[0] == c){
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pad_c = c;
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spec = spec.substr(1);
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break;
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}
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}
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char align;
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if(spec[0] == '>'){
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align = '>';
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spec = spec.substr(1);
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}else if(spec[0] == '<'){
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align = '<';
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spec = spec.substr(1);
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}else{
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if(is_int(obj) || is_float(obj)) align = '>';
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else align = '<';
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}
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int dot = spec.index(".");
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int width, precision;
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try{
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if(dot >= 0){
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if(dot == 0){
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width = -1;
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}else{
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width = Number::stoi(spec.substr(0, dot).str());
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}
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precision = Number::stoi(spec.substr(dot+1).str());
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}else{
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width = Number::stoi(spec.str());
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precision = -1;
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}
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}catch(...){
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ValueError("invalid format specifer");
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UNREACHABLE();
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}
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if(type != 'f' && dot >= 0) ValueError("precision not allowed in the format specifier");
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Str ret;
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if(type == 'f'){
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f64 val = CAST(f64, obj);
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if(precision < 0) precision = 6;
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std::stringstream ss;
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ss << std::fixed << std::setprecision(precision) << val;
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ret = ss.str();
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}else if(type == 'd'){
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ret = std::to_string(CAST(i64, obj));
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}else if(type == 's'){
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ret = CAST(Str&, obj);
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}else{
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ret = CAST(Str&, py_str(obj));
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}
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if(width != -1 && width > ret.length()){
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int pad = width - ret.length();
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std::string padding(pad, pad_c);
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if(align == '>') ret = padding.c_str() + ret;
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else ret = ret + padding.c_str();
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}
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return VAR(ret);
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}
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PyObject* VM::new_module(StrName name) {
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PyObject* obj = heap._new<DummyModule>(tp_module);
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obj->attr().set("__name__", VAR(name.sv()));
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// we do not allow override in order to avoid memory leak
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// it is because Module objects are not garbage collected
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if(_modules.contains(name)) throw std::runtime_error("module already exists");
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_modules.set(name, obj);
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return obj;
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}
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static std::string _opcode_argstr(VM* vm, Bytecode byte, const CodeObject* co){
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std::string argStr = byte.arg == -1 ? "" : std::to_string(byte.arg);
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switch(byte.op){
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case OP_LOAD_CONST: case OP_FORMAT_STRING:
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if(vm != nullptr){
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argStr += fmt(" (", CAST(Str, vm->py_repr(co->consts[byte.arg])), ")");
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}
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break;
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case OP_LOAD_NAME: case OP_LOAD_GLOBAL: case OP_LOAD_NONLOCAL: case OP_STORE_GLOBAL:
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case OP_LOAD_ATTR: case OP_LOAD_METHOD: case OP_STORE_ATTR: case OP_DELETE_ATTR:
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case OP_IMPORT_NAME: case OP_BEGIN_CLASS: case OP_RAISE:
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case OP_DELETE_GLOBAL: case OP_INC_GLOBAL: case OP_DEC_GLOBAL: case OP_STORE_CLASS_ATTR:
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argStr += fmt(" (", StrName(byte.arg).sv(), ")");
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break;
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case OP_LOAD_FAST: case OP_STORE_FAST: case OP_DELETE_FAST: case OP_INC_FAST: case OP_DEC_FAST:
|
|
argStr += fmt(" (", co->varnames[byte.arg].sv(), ")");
|
|
break;
|
|
case OP_LOAD_FUNCTION:
|
|
argStr += fmt(" (", co->func_decls[byte.arg]->code->name, ")");
|
|
break;
|
|
}
|
|
return argStr;
|
|
}
|
|
|
|
Str VM::disassemble(CodeObject_ co){
|
|
auto pad = [](const Str& s, const int n){
|
|
if(s.length() >= n) return s.substr(0, n);
|
|
return s + std::string(n - s.length(), ' ');
|
|
};
|
|
|
|
std::vector<int> jumpTargets;
|
|
for(auto byte : co->codes){
|
|
if(byte.op == OP_JUMP_ABSOLUTE || byte.op == OP_POP_JUMP_IF_FALSE || byte.op == OP_SHORTCUT_IF_FALSE_OR_POP){
|
|
jumpTargets.push_back(byte.arg);
|
|
}
|
|
}
|
|
std::stringstream ss;
|
|
int prev_line = -1;
|
|
for(int i=0; i<co->codes.size(); i++){
|
|
const Bytecode& byte = co->codes[i];
|
|
Str line = std::to_string(co->lines[i]);
|
|
if(co->lines[i] == prev_line) line = "";
|
|
else{
|
|
if(prev_line != -1) ss << "\n";
|
|
prev_line = co->lines[i];
|
|
}
|
|
|
|
std::string pointer;
|
|
if(std::find(jumpTargets.begin(), jumpTargets.end(), i) != jumpTargets.end()){
|
|
pointer = "-> ";
|
|
}else{
|
|
pointer = " ";
|
|
}
|
|
ss << pad(line, 8) << pointer << pad(std::to_string(i), 3);
|
|
ss << " " << pad(OP_NAMES[byte.op], 25) << " ";
|
|
// ss << pad(byte.arg == -1 ? "" : std::to_string(byte.arg), 5);
|
|
std::string argStr = _opcode_argstr(this, byte, co.get());
|
|
ss << argStr;
|
|
// ss << pad(argStr, 40); // may overflow
|
|
// ss << co->blocks[byte.block].type;
|
|
if(i != co->codes.size() - 1) ss << '\n';
|
|
}
|
|
|
|
for(auto& decl: co->func_decls){
|
|
ss << "\n\n" << "Disassembly of " << decl->code->name << ":\n";
|
|
ss << disassemble(decl->code);
|
|
}
|
|
ss << "\n";
|
|
return Str(ss.str());
|
|
}
|
|
|
|
#if PK_DEBUG_CEVAL_STEP
|
|
void VM::_log_s_data(const char* title) {
|
|
if(_main == nullptr) return;
|
|
if(callstack.empty()) return;
|
|
std::stringstream ss;
|
|
if(title) ss << title << " | ";
|
|
std::map<PyObject**, int> sp_bases;
|
|
for(Frame& f: callstack.data()){
|
|
if(f._sp_base == nullptr) FATAL_ERROR();
|
|
sp_bases[f._sp_base] += 1;
|
|
}
|
|
FrameId frame = top_frame();
|
|
int line = frame->co->lines[frame->_ip];
|
|
ss << frame->co->name << ":" << line << " [";
|
|
for(PyObject** p=s_data.begin(); p!=s_data.end(); p++){
|
|
ss << std::string(sp_bases[p], '|');
|
|
if(sp_bases[p] > 0) ss << " ";
|
|
PyObject* obj = *p;
|
|
if(obj == nullptr) ss << "(nil)";
|
|
else if(obj == PY_NULL) ss << "NULL";
|
|
else if(is_int(obj)) ss << CAST(i64, obj);
|
|
else if(is_float(obj)) ss << CAST(f64, obj);
|
|
else if(is_type(obj, tp_str)) ss << CAST(Str, obj).escape();
|
|
else if(obj == None) ss << "None";
|
|
else if(obj == True) ss << "True";
|
|
else if(obj == False) ss << "False";
|
|
else if(is_type(obj, tp_function)){
|
|
auto& f = CAST(Function&, obj);
|
|
ss << f.decl->code->name << "(...)";
|
|
} else if(is_type(obj, tp_type)){
|
|
Type t = PK_OBJ_GET(Type, obj);
|
|
ss << "<class " + _all_types[t].name.escape() + ">";
|
|
} else if(is_type(obj, tp_list)){
|
|
auto& t = CAST(List&, obj);
|
|
ss << "list(size=" << t.size() << ")";
|
|
} else if(is_type(obj, tp_tuple)){
|
|
auto& t = CAST(Tuple&, obj);
|
|
ss << "tuple(size=" << t.size() << ")";
|
|
} else ss << "(" << obj_type_name(this, obj->type) << ")";
|
|
ss << ", ";
|
|
}
|
|
std::string output = ss.str();
|
|
if(!s_data.empty()) {
|
|
output.pop_back(); output.pop_back();
|
|
}
|
|
output.push_back(']');
|
|
Bytecode byte = frame->co->codes[frame->_ip];
|
|
std::cout << output << " " << OP_NAMES[byte.op] << " " << _opcode_argstr(nullptr, byte, frame->co) << std::endl;
|
|
}
|
|
#endif
|
|
|
|
void VM::init_builtin_types(){
|
|
_all_types.push_back({heap._new<Type>(Type(1), Type(0)), -1, "object", true});
|
|
_all_types.push_back({heap._new<Type>(Type(1), Type(1)), 0, "type", false});
|
|
tp_object = 0; tp_type = 1;
|
|
|
|
tp_int = _new_type_object("int");
|
|
tp_float = _new_type_object("float");
|
|
if(tp_int.index != kTpIntIndex || tp_float.index != kTpFloatIndex) FATAL_ERROR();
|
|
|
|
tp_bool = _new_type_object("bool");
|
|
tp_str = _new_type_object("str");
|
|
tp_list = _new_type_object("list");
|
|
tp_tuple = _new_type_object("tuple");
|
|
tp_slice = _new_type_object("slice");
|
|
tp_range = _new_type_object("range");
|
|
tp_module = _new_type_object("module");
|
|
tp_function = _new_type_object("function");
|
|
tp_native_func = _new_type_object("native_func");
|
|
tp_bound_method = _new_type_object("bound_method");
|
|
tp_super = _new_type_object("super");
|
|
tp_exception = _new_type_object("Exception");
|
|
tp_bytes = _new_type_object("bytes");
|
|
tp_mappingproxy = _new_type_object("mappingproxy");
|
|
tp_dict = _new_type_object("dict");
|
|
tp_property = _new_type_object("property");
|
|
tp_star_wrapper = _new_type_object("_star_wrapper");
|
|
|
|
this->None = heap._new<Dummy>(_new_type_object("NoneType"));
|
|
this->NotImplemented = heap._new<Dummy>(_new_type_object("NotImplementedType"));
|
|
this->Ellipsis = heap._new<Dummy>(_new_type_object("ellipsis"));
|
|
this->True = heap._new<Dummy>(tp_bool);
|
|
this->False = heap._new<Dummy>(tp_bool);
|
|
this->StopIteration = heap._new<Dummy>(_new_type_object("StopIterationType"));
|
|
|
|
this->builtins = new_module("builtins");
|
|
|
|
// setup public types
|
|
builtins->attr().set("type", _t(tp_type));
|
|
builtins->attr().set("object", _t(tp_object));
|
|
builtins->attr().set("bool", _t(tp_bool));
|
|
builtins->attr().set("int", _t(tp_int));
|
|
builtins->attr().set("float", _t(tp_float));
|
|
builtins->attr().set("str", _t(tp_str));
|
|
builtins->attr().set("list", _t(tp_list));
|
|
builtins->attr().set("tuple", _t(tp_tuple));
|
|
builtins->attr().set("range", _t(tp_range));
|
|
builtins->attr().set("bytes", _t(tp_bytes));
|
|
builtins->attr().set("dict", _t(tp_dict));
|
|
builtins->attr().set("property", _t(tp_property));
|
|
builtins->attr().set("StopIteration", StopIteration);
|
|
builtins->attr().set("NotImplemented", NotImplemented);
|
|
builtins->attr().set("slice", _t(tp_slice));
|
|
|
|
post_init();
|
|
for(int i=0; i<_all_types.size(); i++){
|
|
_all_types[i].obj->attr()._try_perfect_rehash();
|
|
}
|
|
for(auto [k, v]: _modules.items()) v->attr()._try_perfect_rehash();
|
|
this->_main = new_module("__main__");
|
|
}
|
|
|
|
// `heap.gc_scope_lock();` needed before calling this function
|
|
void VM::_unpack_as_list(ArgsView args, List& list){
|
|
for(PyObject* obj: args){
|
|
if(is_non_tagged_type(obj, tp_star_wrapper)){
|
|
const StarWrapper& w = _CAST(StarWrapper&, obj);
|
|
// maybe this check should be done in the compile time
|
|
if(w.level != 1) TypeError("expected level 1 star wrapper");
|
|
PyObject* _0 = py_iter(w.obj);
|
|
PyObject* _1 = py_next(_0);
|
|
while(_1 != StopIteration){
|
|
list.push_back(_1);
|
|
_1 = py_next(_0);
|
|
}
|
|
}else{
|
|
list.push_back(obj);
|
|
}
|
|
}
|
|
}
|
|
|
|
// `heap.gc_scope_lock();` needed before calling this function
|
|
void VM::_unpack_as_dict(ArgsView args, Dict& dict){
|
|
for(PyObject* obj: args){
|
|
if(is_non_tagged_type(obj, tp_star_wrapper)){
|
|
const StarWrapper& w = _CAST(StarWrapper&, obj);
|
|
// maybe this check should be done in the compile time
|
|
if(w.level != 2) TypeError("expected level 2 star wrapper");
|
|
const Dict& other = CAST(Dict&, w.obj);
|
|
dict.update(other);
|
|
}else{
|
|
const Tuple& t = CAST(Tuple&, obj);
|
|
if(t.size() != 2) TypeError("expected tuple of length 2");
|
|
dict.set(t[0], t[1]);
|
|
}
|
|
}
|
|
}
|
|
|
|
|
|
void VM::_prepare_py_call(PyObject** buffer, ArgsView args, ArgsView kwargs, const FuncDecl_& decl){
|
|
const CodeObject* co = decl->code.get();
|
|
int co_nlocals = co->varnames.size();
|
|
int decl_argc = decl->args.size();
|
|
|
|
if(args.size() < decl_argc){
|
|
vm->TypeError(fmt(
|
|
"expected ", decl_argc, " positional arguments, got ", args.size(),
|
|
" (", co->name, ')'
|
|
));
|
|
}
|
|
|
|
int i = 0;
|
|
// prepare args
|
|
for(int index: decl->args) buffer[index] = args[i++];
|
|
// set extra varnames to nullptr
|
|
for(int j=i; j<co_nlocals; j++) buffer[j] = PY_NULL;
|
|
// prepare kwdefaults
|
|
for(auto& kv: decl->kwargs) buffer[kv.key] = kv.value;
|
|
|
|
// handle *args
|
|
if(decl->starred_arg != -1){
|
|
ArgsView vargs(args.begin() + i, args.end());
|
|
buffer[decl->starred_arg] = VAR(vargs.to_tuple());
|
|
i += vargs.size();
|
|
}else{
|
|
// kwdefaults override
|
|
for(auto& kv: decl->kwargs){
|
|
if(i >= args.size()) break;
|
|
buffer[kv.key] = args[i++];
|
|
}
|
|
if(i < args.size()) TypeError(fmt("too many arguments", " (", decl->code->name, ')'));
|
|
}
|
|
|
|
PyObject* vkwargs;
|
|
if(decl->starred_kwarg != -1){
|
|
vkwargs = VAR(Dict(this));
|
|
buffer[decl->starred_kwarg] = vkwargs;
|
|
}else{
|
|
vkwargs = nullptr;
|
|
}
|
|
|
|
for(int j=0; j<kwargs.size(); j+=2){
|
|
StrName key(CAST(int, kwargs[j]));
|
|
int index = co->varnames_inv.try_get(key);
|
|
if(index < 0){
|
|
if(vkwargs == nullptr){
|
|
TypeError(fmt(key.escape(), " is an invalid keyword argument for ", co->name, "()"));
|
|
}else{
|
|
Dict& dict = _CAST(Dict&, vkwargs);
|
|
dict.set(VAR(key.sv()), kwargs[j+1]);
|
|
}
|
|
}else{
|
|
buffer[index] = kwargs[j+1];
|
|
}
|
|
}
|
|
}
|
|
|
|
PyObject* VM::vectorcall(int ARGC, int KWARGC, bool op_call){
|
|
PyObject** p1 = s_data._sp - KWARGC*2;
|
|
PyObject** p0 = p1 - ARGC - 2;
|
|
// [callable, <self>, args..., kwargs...]
|
|
// ^p0 ^p1 ^_sp
|
|
PyObject* callable = p1[-(ARGC + 2)];
|
|
bool method_call = p1[-(ARGC + 1)] != PY_NULL;
|
|
|
|
// handle boundmethod, do a patch
|
|
if(is_non_tagged_type(callable, tp_bound_method)){
|
|
if(method_call) FATAL_ERROR();
|
|
auto& bm = CAST(BoundMethod&, callable);
|
|
callable = bm.func; // get unbound method
|
|
p1[-(ARGC + 2)] = bm.func;
|
|
p1[-(ARGC + 1)] = bm.self;
|
|
method_call = true;
|
|
// [unbound, self, args..., kwargs...]
|
|
}
|
|
|
|
ArgsView args(p1 - ARGC - int(method_call), p1);
|
|
ArgsView kwargs(p1, s_data._sp);
|
|
|
|
PyObject* buffer[PK_MAX_CO_VARNAMES];
|
|
|
|
if(is_non_tagged_type(callable, tp_native_func)){
|
|
const auto& f = PK_OBJ_GET(NativeFunc, callable);
|
|
PyObject* ret;
|
|
if(f.decl != nullptr){
|
|
int co_nlocals = f.decl->code->varnames.size();
|
|
_prepare_py_call(buffer, args, kwargs, f.decl);
|
|
// copy buffer back to stack
|
|
s_data.reset(args.begin());
|
|
for(int j=0; j<co_nlocals; j++) PUSH(buffer[j]);
|
|
ret = f.call(vm, ArgsView(s_data._sp - co_nlocals, s_data._sp));
|
|
}else{
|
|
if(KWARGC != 0) TypeError("old-style native_func does not accept keyword arguments");
|
|
f.check_size(this, args);
|
|
ret = f.call(this, args);
|
|
}
|
|
s_data.reset(p0);
|
|
return ret;
|
|
}
|
|
|
|
if(is_non_tagged_type(callable, tp_function)){
|
|
/*****************_py_call*****************/
|
|
// callable must be a `function` object
|
|
if(s_data.is_overflow()) StackOverflowError();
|
|
|
|
const Function& fn = PK_OBJ_GET(Function, callable);
|
|
const FuncDecl_& decl = fn.decl;
|
|
const CodeObject* co = decl->code.get();
|
|
int co_nlocals = co->varnames.size();
|
|
|
|
_prepare_py_call(buffer, args, kwargs, decl);
|
|
|
|
if(co->is_generator){
|
|
s_data.reset(p0);
|
|
return _py_generator(
|
|
Frame(&s_data, nullptr, co, fn._module, callable),
|
|
ArgsView(buffer, buffer + co_nlocals)
|
|
);
|
|
}
|
|
|
|
// copy buffer back to stack
|
|
s_data.reset(args.begin());
|
|
for(int j=0; j<co_nlocals; j++) PUSH(buffer[j]);
|
|
callstack.emplace(&s_data, p0, co, fn._module, callable, FastLocals(co, args.begin()));
|
|
if(op_call) return PY_OP_CALL;
|
|
return _run_top_frame();
|
|
/*****************_py_call*****************/
|
|
}
|
|
|
|
if(is_non_tagged_type(callable, tp_type)){
|
|
if(method_call) FATAL_ERROR();
|
|
// [type, NULL, args..., kwargs...]
|
|
PyObject* new_f = find_name_in_mro(callable, __new__);
|
|
PyObject* obj;
|
|
#if PK_DEBUG_EXTRA_CHECK
|
|
PK_ASSERT(new_f != nullptr);
|
|
#endif
|
|
if(new_f == cached_object__new__) {
|
|
// fast path for object.__new__
|
|
Type t = PK_OBJ_GET(Type, callable);
|
|
obj= vm->heap.gcnew<DummyInstance>(t);
|
|
}else{
|
|
PUSH(new_f);
|
|
PUSH(PY_NULL);
|
|
PUSH(callable); // cls
|
|
for(PyObject* o: args) PUSH(o);
|
|
for(PyObject* o: kwargs) PUSH(o);
|
|
// if obj is not an instance of callable, the behavior is undefined
|
|
obj = vectorcall(ARGC+1, KWARGC);
|
|
}
|
|
|
|
// __init__
|
|
PyObject* self;
|
|
callable = get_unbound_method(obj, __init__, &self, false);
|
|
if (self != PY_NULL) {
|
|
// replace `NULL` with `self`
|
|
p1[-(ARGC + 2)] = callable;
|
|
p1[-(ARGC + 1)] = self;
|
|
// [init_f, self, args..., kwargs...]
|
|
vectorcall(ARGC, KWARGC);
|
|
// We just discard the return value of `__init__`
|
|
// in cpython it raises a TypeError if the return value is not None
|
|
}else{
|
|
// manually reset the stack
|
|
s_data.reset(p0);
|
|
}
|
|
return obj;
|
|
}
|
|
|
|
// handle `__call__` overload
|
|
PyObject* self;
|
|
PyObject* call_f = get_unbound_method(callable, __call__, &self, false);
|
|
if(self != PY_NULL){
|
|
p1[-(ARGC + 2)] = call_f;
|
|
p1[-(ARGC + 1)] = self;
|
|
// [call_f, self, args..., kwargs...]
|
|
return vectorcall(ARGC, KWARGC, false);
|
|
}
|
|
TypeError(OBJ_NAME(_t(callable)).escape() + " object is not callable");
|
|
return nullptr;
|
|
}
|
|
|
|
|
|
|
|
|
|
|
|
// https://docs.python.org/3/howto/descriptor.html#invocation-from-an-instance
|
|
PyObject* VM::getattr(PyObject* obj, StrName name, bool throw_err){
|
|
PyObject* objtype;
|
|
// handle super() proxy
|
|
if(is_non_tagged_type(obj, tp_super)){
|
|
const Super& super = PK_OBJ_GET(Super, obj);
|
|
obj = super.first;
|
|
objtype = _t(super.second);
|
|
}else{
|
|
objtype = _t(obj);
|
|
}
|
|
PyObject* cls_var = find_name_in_mro(objtype, name);
|
|
if(cls_var != nullptr){
|
|
// handle descriptor
|
|
if(is_non_tagged_type(cls_var, tp_property)){
|
|
const Property& prop = _CAST(Property&, cls_var);
|
|
return call(prop.getter, obj);
|
|
}
|
|
}
|
|
// handle instance __dict__
|
|
if(!is_tagged(obj) && obj->is_attr_valid()){
|
|
PyObject* val = obj->attr().try_get(name);
|
|
if(val != nullptr) return val;
|
|
}
|
|
if(cls_var != nullptr){
|
|
// bound method is non-data descriptor
|
|
if(is_non_tagged_type(cls_var, tp_function) || is_non_tagged_type(cls_var, tp_native_func)){
|
|
return VAR(BoundMethod(obj, cls_var));
|
|
}
|
|
return cls_var;
|
|
}
|
|
if(throw_err) AttributeError(obj, name);
|
|
return nullptr;
|
|
}
|
|
|
|
// used by OP_LOAD_METHOD
|
|
// try to load a unbound method (fallback to `getattr` if not found)
|
|
PyObject* VM::get_unbound_method(PyObject* obj, StrName name, PyObject** self, bool throw_err, bool fallback){
|
|
*self = PY_NULL;
|
|
PyObject* objtype;
|
|
// handle super() proxy
|
|
if(is_non_tagged_type(obj, tp_super)){
|
|
const Super& super = PK_OBJ_GET(Super, obj);
|
|
obj = super.first;
|
|
objtype = _t(super.second);
|
|
}else{
|
|
objtype = _t(obj);
|
|
}
|
|
PyObject* cls_var = find_name_in_mro(objtype, name);
|
|
|
|
if(fallback){
|
|
if(cls_var != nullptr){
|
|
// handle descriptor
|
|
if(is_non_tagged_type(cls_var, tp_property)){
|
|
const Property& prop = _CAST(Property&, cls_var);
|
|
return call(prop.getter, obj);
|
|
}
|
|
}
|
|
// handle instance __dict__
|
|
if(!is_tagged(obj) && obj->is_attr_valid()){
|
|
PyObject* val = obj->attr().try_get(name);
|
|
if(val != nullptr) return val;
|
|
}
|
|
}
|
|
|
|
if(cls_var != nullptr){
|
|
if(is_non_tagged_type(cls_var, tp_function) || is_non_tagged_type(cls_var, tp_native_func)){
|
|
*self = obj;
|
|
}
|
|
return cls_var;
|
|
}
|
|
if(throw_err) AttributeError(obj, name);
|
|
return nullptr;
|
|
}
|
|
|
|
void VM::setattr(PyObject* obj, StrName name, PyObject* value){
|
|
PyObject* objtype;
|
|
// handle super() proxy
|
|
if(is_non_tagged_type(obj, tp_super)){
|
|
Super& super = PK_OBJ_GET(Super, obj);
|
|
obj = super.first;
|
|
objtype = _t(super.second);
|
|
}else{
|
|
objtype = _t(obj);
|
|
}
|
|
PyObject* cls_var = find_name_in_mro(objtype, name);
|
|
if(cls_var != nullptr){
|
|
// handle descriptor
|
|
if(is_non_tagged_type(cls_var, tp_property)){
|
|
const Property& prop = _CAST(Property&, cls_var);
|
|
if(prop.setter != vm->None){
|
|
call(prop.setter, obj, value);
|
|
}else{
|
|
TypeError(fmt("readonly attribute: ", name.escape()));
|
|
}
|
|
return;
|
|
}
|
|
}
|
|
// handle instance __dict__
|
|
if(is_tagged(obj) || !obj->is_attr_valid()) TypeError("cannot set attribute");
|
|
obj->attr().set(name, value);
|
|
}
|
|
|
|
PyObject* VM::bind(PyObject* obj, const char* sig, NativeFuncC fn, UserData userdata){
|
|
return bind(obj, sig, nullptr, fn, userdata);
|
|
}
|
|
|
|
PyObject* VM::bind(PyObject* obj, const char* sig, const char* docstring, NativeFuncC fn, UserData userdata){
|
|
CodeObject_ co;
|
|
try{
|
|
// fn(a, b, *c, d=1) -> None
|
|
co = compile("def " + Str(sig) + " : pass", "<bind>", EXEC_MODE);
|
|
}catch(Exception&){
|
|
throw std::runtime_error("invalid signature: " + std::string(sig));
|
|
}
|
|
if(co->func_decls.size() != 1){
|
|
throw std::runtime_error("expected 1 function declaration");
|
|
}
|
|
FuncDecl_ decl = co->func_decls[0];
|
|
decl->signature = Str(sig);
|
|
if(docstring != nullptr){
|
|
decl->docstring = Str(docstring).strip();
|
|
}
|
|
PyObject* f_obj = VAR(NativeFunc(fn, decl));
|
|
PK_OBJ_GET(NativeFunc, f_obj).set_userdata(userdata);
|
|
if(obj != nullptr) obj->attr().set(decl->code->name, f_obj);
|
|
return f_obj;
|
|
}
|
|
|
|
PyObject* VM::bind_property(PyObject* obj, Str name, NativeFuncC fget, NativeFuncC fset){
|
|
PyObject* _0 = heap.gcnew<NativeFunc>(tp_native_func, fget, 1, false);
|
|
PyObject* _1 = vm->None;
|
|
if(fset != nullptr) _1 = heap.gcnew<NativeFunc>(tp_native_func, fset, 2, false);
|
|
Str signature = name;
|
|
int pos = name.index(":");
|
|
if(pos > 0) name = name.substr(0, pos).strip();
|
|
PyObject* prop = VAR(Property(_0, _1, signature));
|
|
obj->attr().set(name, prop);
|
|
return prop;
|
|
}
|
|
|
|
void VM::_error(Exception e){
|
|
if(callstack.empty()){
|
|
e.is_re = false;
|
|
throw e;
|
|
}
|
|
PUSH(VAR(e));
|
|
_raise();
|
|
}
|
|
|
|
void ManagedHeap::mark() {
|
|
for(PyObject* obj: _no_gc) PK_OBJ_MARK(obj);
|
|
for(auto& frame : vm->callstack.data()) frame._gc_mark();
|
|
for(PyObject* obj: vm->s_data) PK_OBJ_MARK(obj);
|
|
if(_gc_marker_ex) _gc_marker_ex(vm);
|
|
if(vm->_last_exception) PK_OBJ_MARK(vm->_last_exception);
|
|
if(vm->_c.error != nullptr) PK_OBJ_MARK(vm->_c.error);
|
|
}
|
|
|
|
Str obj_type_name(VM *vm, Type type){
|
|
return vm->_all_types[type].name;
|
|
}
|
|
|
|
|
|
void VM::bind__hash__(Type type, i64 (*f)(VM*, PyObject*)){
|
|
PyObject* obj = _t(type);
|
|
_all_types[type].m__hash__ = f;
|
|
PyObject* nf = bind_method<0>(obj, "__hash__", [](VM* vm, ArgsView args){
|
|
i64 ret = lambda_get_userdata<i64(*)(VM*, PyObject*)>(args.begin())(vm, args[0]);
|
|
return VAR(ret);
|
|
});
|
|
PK_OBJ_GET(NativeFunc, nf).set_userdata(f);
|
|
}
|
|
|
|
void VM::bind__len__(Type type, i64 (*f)(VM*, PyObject*)){
|
|
PyObject* obj = _t(type);
|
|
_all_types[type].m__len__ = f;
|
|
PyObject* nf = bind_method<0>(obj, "__len__", [](VM* vm, ArgsView args){
|
|
i64 ret = lambda_get_userdata<i64(*)(VM*, PyObject*)>(args.begin())(vm, args[0]);
|
|
return VAR(ret);
|
|
});
|
|
PK_OBJ_GET(NativeFunc, nf).set_userdata(f);
|
|
}
|
|
|
|
void Dict::_probe_0(PyObject *key, bool &ok, int &i) const{
|
|
ok = false;
|
|
i64 hash = vm->py_hash(key);
|
|
i = hash & _mask;
|
|
// std::cout << CAST(Str, vm->py_repr(key)) << " " << hash << " " << i << std::endl;
|
|
for(int j=0; j<_capacity; j++) {
|
|
if(_items[i].first != nullptr){
|
|
if(vm->py_equals(_items[i].first, key)) { ok = true; break; }
|
|
}else{
|
|
if(_items[i].second == nullptr) break;
|
|
}
|
|
// https://github.com/python/cpython/blob/3.8/Objects/dictobject.c#L166
|
|
i = ((5*i) + 1) & _mask;
|
|
// std::cout << CAST(Str, vm->py_repr(key)) << " next: " << i << std::endl;
|
|
}
|
|
}
|
|
|
|
void Dict::_probe_1(PyObject *key, bool &ok, int &i) const{
|
|
ok = false;
|
|
i = vm->py_hash(key) & _mask;
|
|
while(_items[i].first != nullptr) {
|
|
if(vm->py_equals(_items[i].first, key)) { ok = true; break; }
|
|
// https://github.com/python/cpython/blob/3.8/Objects/dictobject.c#L166
|
|
i = ((5*i) + 1) & _mask;
|
|
}
|
|
}
|
|
|
|
void CodeObjectSerializer::write_object(VM *vm, PyObject *obj){
|
|
if(is_int(obj)) write_int(_CAST(i64, obj));
|
|
else if(is_float(obj)) write_float(_CAST(f64, obj));
|
|
else if(is_type(obj, vm->tp_str)) write_str(_CAST(Str&, obj));
|
|
else if(is_type(obj, vm->tp_bool)) write_bool(_CAST(bool, obj));
|
|
else if(obj == vm->None) write_none();
|
|
else if(obj == vm->Ellipsis) write_ellipsis();
|
|
else{
|
|
throw std::runtime_error(fmt(OBJ_NAME(vm->_t(obj)).escape(), " is not serializable"));
|
|
}
|
|
}
|
|
|
|
void NativeFunc::check_size(VM* vm, ArgsView args) const{
|
|
if(args.size() != argc && argc != -1) {
|
|
vm->TypeError(fmt("expected ", argc, " arguments, got ", args.size()));
|
|
}
|
|
}
|
|
|
|
PyObject* NativeFunc::call(VM *vm, ArgsView args) const {
|
|
return f(vm, args);
|
|
}
|
|
|
|
} // namespace pkpy
|