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objtype.c
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/*
* This file is part of the MicroPython project, http://micropython.org/
*
* The MIT License (MIT)
*
* Copyright (c) 2013-2018 Damien P. George
* Copyright (c) 2014-2018 Paul Sokolovsky
*
* Permission is hereby granted, free of charge, to any person obtaining a copy
* of this software and associated documentation files (the "Software"), to deal
* in the Software without restriction, including without limitation the rights
* to use, copy, modify, merge, publish, distribute, sublicense, and/or sell
* copies of the Software, and to permit persons to whom the Software is
* furnished to do so, subject to the following conditions:
*
* The above copyright notice and this permission notice shall be included in
* all copies or substantial portions of the Software.
*
* THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
* IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
* FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL THE
* AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
* LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM,
* OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN
* THE SOFTWARE.
*/
#include <stdio.h>
#include <stddef.h>
#include <string.h>
#include <assert.h>
#include "py/objtype.h"
#include "py/runtime.h"
#if MICROPY_DEBUG_VERBOSE // print debugging info
#define DEBUG_PRINT (1)
#define DEBUG_printf DEBUG_printf
#else // don't print debugging info
#define DEBUG_PRINT (0)
#define DEBUG_printf(...) (void)0
#endif
#define ENABLE_SPECIAL_ACCESSORS \
(MICROPY_PY_DESCRIPTORS || MICROPY_PY_DELATTR_SETATTR || MICROPY_PY_BUILTINS_PROPERTY)
STATIC mp_obj_t static_class_method_make_new(const mp_obj_type_t *self_in, size_t n_args, size_t n_kw, const mp_obj_t *args);
/******************************************************************************/
// instance object
STATIC int instance_count_native_bases(const mp_obj_type_t *type, const mp_obj_type_t **last_native_base) {
int count = 0;
for (;;) {
if (type == &mp_type_object) {
// Not a "real" type, end search here.
return count;
} else if (mp_obj_is_native_type(type)) {
// Native types don't have parents (at least not from our perspective) so end.
*last_native_base = type;
return count + 1;
} else if (!MP_OBJ_TYPE_HAS_SLOT(type, parent)) {
// No parents so end search here.
return count;
#if MICROPY_MULTIPLE_INHERITANCE
} else if (((mp_obj_base_t *)MP_OBJ_TYPE_GET_SLOT(type, parent))->type == &mp_type_tuple) {
// Multiple parents, search through them all recursively.
const mp_obj_tuple_t *parent_tuple = MP_OBJ_TYPE_GET_SLOT(type, parent);
const mp_obj_t *item = parent_tuple->items;
const mp_obj_t *top = item + parent_tuple->len;
for (; item < top; ++item) {
assert(mp_obj_is_type(*item, &mp_type_type));
const mp_obj_type_t *bt = (const mp_obj_type_t *)MP_OBJ_TO_PTR(*item);
count += instance_count_native_bases(bt, last_native_base);
}
return count;
#endif
} else {
// A single parent, use iteration to continue the search.
type = MP_OBJ_TYPE_GET_SLOT(type, parent);
}
}
}
// CIRCUITPY-CHANGE: differences
// This wrapper function is allows a subclass of a native type to call the
// __init__() method (corresponding to type->make_new) of the native type.
STATIC mp_obj_t native_base_init_wrapper(size_t n_args, const mp_obj_t *pos_args, mp_map_t *kw_args) {
mp_obj_instance_t *self = MP_OBJ_TO_PTR(pos_args[0]);
const mp_obj_type_t *native_base = NULL;
instance_count_native_bases(self->base.type, &native_base);
size_t n_kw = kw_args ? kw_args->used : 0;
// consume the type object
pos_args++;
n_args--;
mp_obj_t *args2 = m_new(mp_obj_t, n_args + 2 * n_kw);
// copy in args
memcpy(args2, pos_args, n_args * sizeof(mp_obj_t));
// copy in kwargs
if (n_kw) {
memcpy(args2 + n_args, kw_args->table, 2 * n_kw * sizeof(mp_obj_t));
}
self->subobj[0] = MP_OBJ_TYPE_GET_SLOT(native_base, make_new)(native_base, n_args, n_kw, args2);
m_del(mp_obj_t, args2, n_args + 2 * n_kw);
return mp_const_none;
}
STATIC MP_DEFINE_CONST_FUN_OBJ_KW(native_base_init_wrapper_obj, 1, native_base_init_wrapper);
#if !MICROPY_CPYTHON_COMPAT
STATIC
#endif
mp_obj_instance_t *mp_obj_new_instance(const mp_obj_type_t *class, const mp_obj_type_t **native_base) {
size_t num_native_bases = instance_count_native_bases(class, native_base);
assert(num_native_bases < 2);
mp_obj_instance_t *o = mp_obj_malloc_var(mp_obj_instance_t, mp_obj_t, num_native_bases, class);
mp_map_init(&o->members, 0);
// Initialise the native base-class slot (should be 1 at most) with a valid
// object. It doesn't matter which object, so long as it can be uniquely
// distinguished from a native class that is initialised.
if (num_native_bases != 0) {
o->subobj[0] = MP_OBJ_FROM_PTR(&native_base_init_wrapper_obj);
}
return o;
}
// CIRCUITPY-CHANGE
// When instances are first created they have the base_init wrapper as their native parent's
// instance because make_new combines __new__ and __init__. This object is invalid for the native
// code so it must call this method to ensure that the given object has been __init__'d and is
// valid.
void mp_obj_assert_native_inited(mp_obj_t native_object) {
if (native_object == MP_OBJ_FROM_PTR(&native_base_init_wrapper_obj)) {
mp_raise_NotImplementedError(MP_ERROR_TEXT("Call super().__init__() before accessing native object."));
}
}
// TODO
// This implements depth-first left-to-right MRO, which is not compliant with Python3 MRO
// http://python-history.blogspot.com/2010/06/method-resolution-order.html
// https://www.python.org/download/releases/2.3/mro/
//
// will keep lookup->dest[0]'s value (should be MP_OBJ_NULL on invocation) if attribute
// is not found
// will set lookup->dest[0] to MP_OBJ_SENTINEL if special method was found in a native
// type base via slot id (as specified by lookup->slot_offset). As there can be only one
// native base, it's known that it applies to instance->subobj[0]. In most cases, we also
// don't need to know which type it was - because instance->subobj[0] is of that type.
// The only exception is when object is not yet constructed, then we need to know base
// native type to construct its instance->subobj[0] from. But this case is handled via
// instance_count_native_bases(), which returns a native base which it saw.
struct class_lookup_data {
mp_obj_instance_t *obj;
qstr attr;
size_t slot_offset;
mp_obj_t *dest;
bool is_type;
};
STATIC void mp_obj_class_lookup(struct class_lookup_data *lookup, const mp_obj_type_t *type) {
assert(lookup->dest[0] == MP_OBJ_NULL);
assert(lookup->dest[1] == MP_OBJ_NULL);
for (;;) {
DEBUG_printf("mp_obj_class_lookup: Looking up %s in %s\n", qstr_str(lookup->attr), qstr_str(type->name));
// Optimize special method lookup for native types
// This avoids extra method_name => slot lookup. On the other hand,
// this should not be applied to class types, as will result in extra
// lookup either.
if (lookup->slot_offset != 0 && mp_obj_is_native_type(type)) {
// Check if there is a non-zero value in the specified slot index,
// with a special case for getiter where the slot won't be set
// for MP_TYPE_FLAG_ITER_IS_STREAM.
if (MP_OBJ_TYPE_HAS_SLOT_BY_OFFSET(type, lookup->slot_offset) || (lookup->slot_offset == MP_OBJ_TYPE_OFFSETOF_SLOT(iter) && type->flags & MP_TYPE_FLAG_ITER_IS_STREAM)) {
DEBUG_printf("mp_obj_class_lookup: Matched special meth slot (off=%d) for %s\n",
lookup->slot_offset, qstr_str(lookup->attr));
lookup->dest[0] = MP_OBJ_SENTINEL;
return;
}
}
if (MP_OBJ_TYPE_HAS_SLOT(type, locals_dict)) {
// search locals_dict (the set of methods/attributes)
assert(mp_obj_is_dict_or_ordereddict(MP_OBJ_FROM_PTR(MP_OBJ_TYPE_GET_SLOT(type, locals_dict)))); // MicroPython restriction, for now
mp_map_t *locals_map = &MP_OBJ_TYPE_GET_SLOT(type, locals_dict)->map;
mp_map_elem_t *elem = mp_map_lookup(locals_map, MP_OBJ_NEW_QSTR(lookup->attr), MP_MAP_LOOKUP);
if (elem != NULL) {
if (lookup->is_type) {
// If we look up a class method, we need to return original type for which we
// do a lookup, not a (base) type in which we found the class method.
const mp_obj_type_t *org_type = (const mp_obj_type_t *)lookup->obj;
mp_convert_member_lookup(MP_OBJ_NULL, org_type, elem->value, lookup->dest);
} else if (mp_obj_is_type(elem->value, &mp_type_property)) {
// CIRCUITPY-CHANGE: CircuitPython uses properties on native classes, so we always return them.
lookup->dest[0] = elem->value;
return;
} else {
mp_obj_instance_t *obj = lookup->obj;
// CIRCUITPY-CHANGE: Pass object directly. MP passes the native object.
// This allows native code to lookup and call functions on Python subclasses.
mp_convert_member_lookup(obj, type, elem->value, lookup->dest);
}
#if DEBUG_PRINT
DEBUG_printf("mp_obj_class_lookup: Returning: ");
mp_obj_print_helper(MICROPY_DEBUG_PRINTER, lookup->dest[0], PRINT_REPR);
if (lookup->dest[1] != MP_OBJ_NULL) {
// Don't try to repr() lookup->dest[1], as we can be called recursively
DEBUG_printf(" <%s @%p>", mp_obj_get_type_str(lookup->dest[1]), MP_OBJ_TO_PTR(lookup->dest[1]));
}
DEBUG_printf("\n");
#endif
return;
}
}
// Previous code block takes care about attributes defined in .locals_dict,
// but some attributes of native types may be handled using .load_attr method,
// so make sure we try to lookup those too.
if (lookup->obj != NULL && !lookup->is_type && mp_obj_is_native_type(type) && type != &mp_type_object /* object is not a real type */) {
mp_load_method_maybe(lookup->obj->subobj[0], lookup->attr, lookup->dest);
if (lookup->dest[0] != MP_OBJ_NULL) {
return;
}
}
// attribute not found, keep searching base classes
if (!MP_OBJ_TYPE_HAS_SLOT(type, parent)) {
DEBUG_printf("mp_obj_class_lookup: No more parents\n");
return;
#if MICROPY_MULTIPLE_INHERITANCE
} else if (((mp_obj_base_t *)MP_OBJ_TYPE_GET_SLOT(type, parent))->type == &mp_type_tuple) {
const mp_obj_tuple_t *parent_tuple = MP_OBJ_TYPE_GET_SLOT(type, parent);
const mp_obj_t *item = parent_tuple->items;
const mp_obj_t *top = item + parent_tuple->len - 1;
for (; item < top; ++item) {
assert(mp_obj_is_type(*item, &mp_type_type));
mp_obj_type_t *bt = (mp_obj_type_t *)MP_OBJ_TO_PTR(*item);
if (bt == &mp_type_object) {
// Not a "real" type
continue;
}
mp_obj_class_lookup(lookup, bt);
if (lookup->dest[0] != MP_OBJ_NULL) {
return;
}
}
// search last base (simple tail recursion elimination)
assert(mp_obj_is_type(*item, &mp_type_type));
type = (mp_obj_type_t *)MP_OBJ_TO_PTR(*item);
#endif
} else {
type = MP_OBJ_TYPE_GET_SLOT(type, parent);
}
if (type == &mp_type_object) {
// Not a "real" type
return;
}
}
}
STATIC void instance_print(const mp_print_t *print, mp_obj_t self_in, mp_print_kind_t kind) {
mp_obj_instance_t *self = MP_OBJ_TO_PTR(self_in);
qstr meth = (kind == PRINT_STR) ? MP_QSTR___str__ : MP_QSTR___repr__;
mp_obj_t member[2] = {MP_OBJ_NULL};
struct class_lookup_data lookup = {
.obj = self,
.attr = meth,
.slot_offset = MP_OBJ_TYPE_OFFSETOF_SLOT(print),
.dest = member,
.is_type = false,
};
mp_obj_class_lookup(&lookup, self->base.type);
if (member[0] == MP_OBJ_NULL && kind == PRINT_STR) {
// If there's no __str__, fall back to __repr__
lookup.attr = MP_QSTR___repr__;
lookup.slot_offset = 0;
mp_obj_class_lookup(&lookup, self->base.type);
}
if (member[0] == MP_OBJ_SENTINEL) {
// Handle Exception subclasses specially
if (mp_obj_is_native_exception_instance(self->subobj[0])) {
if (kind != PRINT_STR) {
mp_print_str(print, qstr_str(self->base.type->name));
}
mp_obj_print_helper(print, self->subobj[0], kind | PRINT_EXC_SUBCLASS);
} else {
mp_obj_print_helper(print, self->subobj[0], kind);
}
return;
}
if (member[0] != MP_OBJ_NULL) {
mp_obj_t r = mp_call_function_1(member[0], self_in);
mp_obj_print_helper(print, r, PRINT_STR);
return;
}
// TODO: CPython prints fully-qualified type name
// CIRCUITPY-CHANGE: use qstr
mp_printf(print, "<%q object at %p>", mp_obj_get_type_qstr(self_in), self);
}
STATIC mp_obj_t mp_obj_instance_make_new(const mp_obj_type_t *self, size_t n_args, size_t n_kw, const mp_obj_t *args) {
assert(mp_obj_is_instance_type(self));
// look for __new__ function
mp_obj_t init_fn[2] = {MP_OBJ_NULL};
struct class_lookup_data lookup = {
.obj = NULL,
.attr = MP_QSTR___new__,
.slot_offset = MP_OBJ_TYPE_OFFSETOF_SLOT(make_new),
.dest = init_fn,
.is_type = false,
};
mp_obj_class_lookup(&lookup, self);
const mp_obj_type_t *native_base = NULL;
mp_obj_instance_t *o;
if (init_fn[0] == MP_OBJ_NULL || init_fn[0] == MP_OBJ_SENTINEL) {
// Either there is no __new__() method defined or there is a native
// constructor. In both cases create a blank instance.
o = mp_obj_new_instance(self, &native_base);
// Since type->make_new() implements both __new__() and __init__() in
// one go, of which the latter may be overridden by the Python subclass,
// we defer (see the end of this function) the call of the native
// constructor to give a chance for the Python __init__() method to call
// said native constructor.
} else {
// Call Python class __new__ function with all args to create an instance
mp_obj_t new_ret;
if (n_args == 0 && n_kw == 0) {
mp_obj_t args2[1] = {MP_OBJ_FROM_PTR(self)};
new_ret = mp_call_function_n_kw(init_fn[0], 1, 0, args2);
} else {
mp_obj_t *args2 = m_new(mp_obj_t, 1 + n_args + 2 * n_kw);
args2[0] = MP_OBJ_FROM_PTR(self);
memcpy(args2 + 1, args, (n_args + 2 * n_kw) * sizeof(mp_obj_t));
new_ret = mp_call_function_n_kw(init_fn[0], n_args + 1, n_kw, args2);
m_del(mp_obj_t, args2, 1 + n_args + 2 * n_kw);
}
// https://docs.python.org/3.4/reference/datamodel.html#object.__new__
// "If __new__() does not return an instance of cls, then the new
// instance's __init__() method will not be invoked."
if (mp_obj_get_type(new_ret) != self) {
return new_ret;
}
// The instance returned by __new__() becomes the new object
o = MP_OBJ_TO_PTR(new_ret);
}
// now call Python class __init__ function with all args
// This method has a chance to call super().__init__() to construct a
// possible native base class.
init_fn[0] = init_fn[1] = MP_OBJ_NULL;
lookup.obj = o;
lookup.attr = MP_QSTR___init__;
lookup.slot_offset = 0;
mp_obj_class_lookup(&lookup, self);
if (init_fn[0] != MP_OBJ_NULL) {
mp_obj_t init_ret;
if (n_args == 0 && n_kw == 0) {
init_ret = mp_call_method_n_kw(0, 0, init_fn);
} else {
mp_obj_t *args2 = m_new(mp_obj_t, 2 + n_args + 2 * n_kw);
args2[0] = init_fn[0];
args2[1] = init_fn[1];
memcpy(args2 + 2, args, (n_args + 2 * n_kw) * sizeof(mp_obj_t));
init_ret = mp_call_method_n_kw(n_args, n_kw, args2);
m_del(mp_obj_t, args2, 2 + n_args + 2 * n_kw);
}
if (init_ret != mp_const_none) {
#if MICROPY_ERROR_REPORTING <= MICROPY_ERROR_REPORTING_TERSE
mp_raise_TypeError(MP_ERROR_TEXT("__init__() should return None"));
#else
mp_raise_msg_varg(&mp_type_TypeError,
MP_ERROR_TEXT("__init__() should return None, not '%s'"), mp_obj_get_type_str(init_ret));
#endif
}
}
// If the type had a native base that was not explicitly initialised
// (constructed) by the Python __init__() method then construct it now.
if (native_base != NULL && o->subobj[0] == MP_OBJ_FROM_PTR(&native_base_init_wrapper_obj)) {
o->subobj[0] = MP_OBJ_TYPE_GET_SLOT(native_base, make_new)(native_base, n_args, n_kw, args);
}
return MP_OBJ_FROM_PTR(o);
}
// Qstrs for special methods are guaranteed to have a small value, so we use byte
// type to represent them.
const byte mp_unary_op_method_name[MP_UNARY_OP_NUM_RUNTIME] = {
[MP_UNARY_OP_BOOL] = MP_QSTR___bool__,
[MP_UNARY_OP_LEN] = MP_QSTR___len__,
[MP_UNARY_OP_HASH] = MP_QSTR___hash__,
[MP_UNARY_OP_INT_MAYBE] = MP_QSTR___int__,
#if MICROPY_PY_ALL_SPECIAL_METHODS
[MP_UNARY_OP_POSITIVE] = MP_QSTR___pos__,
[MP_UNARY_OP_NEGATIVE] = MP_QSTR___neg__,
[MP_UNARY_OP_INVERT] = MP_QSTR___invert__,
[MP_UNARY_OP_ABS] = MP_QSTR___abs__,
#endif
#if MICROPY_PY_BUILTINS_FLOAT
[MP_UNARY_OP_FLOAT_MAYBE] = MP_QSTR___float__,
#if MICROPY_PY_BUILTINS_COMPLEX
[MP_UNARY_OP_COMPLEX_MAYBE] = MP_QSTR___complex__,
#endif
#endif
#if MICROPY_PY_SYS_GETSIZEOF
[MP_UNARY_OP_SIZEOF] = MP_QSTR___sizeof__,
#endif
};
STATIC mp_obj_t instance_unary_op(mp_unary_op_t op, mp_obj_t self_in) {
mp_obj_instance_t *self = MP_OBJ_TO_PTR(self_in);
#if MICROPY_PY_SYS_GETSIZEOF
if (MP_UNLIKELY(op == MP_UNARY_OP_SIZEOF)) {
// TODO: This doesn't count inherited objects (self->subobj)
const mp_obj_type_t *native_base;
size_t num_native_bases = instance_count_native_bases(mp_obj_get_type(self_in), &native_base);
size_t sz = sizeof(*self) + sizeof(*self->subobj) * num_native_bases
+ sizeof(*self->members.table) * self->members.alloc;
return MP_OBJ_NEW_SMALL_INT(sz);
}
#endif
qstr op_name = mp_unary_op_method_name[op];
/* Still try to lookup native slot
if (op_name == 0) {
return MP_OBJ_NULL;
}
*/
mp_obj_t member[2] = {MP_OBJ_NULL};
struct class_lookup_data lookup = {
.obj = self,
.attr = op_name,
.slot_offset = MP_OBJ_TYPE_OFFSETOF_SLOT(unary_op),
.dest = member,
.is_type = false,
};
mp_obj_class_lookup(&lookup, self->base.type);
if (member[0] == MP_OBJ_SENTINEL) {
return mp_unary_op(op, self->subobj[0]);
} else if (member[0] != MP_OBJ_NULL) {
mp_obj_t val = mp_call_function_1(member[0], self_in);
switch (op) {
case MP_UNARY_OP_HASH:
// __hash__ must return a small int
val = MP_OBJ_NEW_SMALL_INT(mp_obj_get_int_truncated(val));
break;
case MP_UNARY_OP_INT_MAYBE:
// Must return int
if (!mp_obj_is_int(val)) {
mp_raise_TypeError(NULL);
}
break;
default:
// No need to do anything
;
}
return val;
} else {
if (op == MP_UNARY_OP_HASH) {
lookup.attr = MP_QSTR___eq__;
mp_obj_class_lookup(&lookup, self->base.type);
if (member[0] == MP_OBJ_NULL) {
// https://docs.python.org/3/reference/datamodel.html#object.__hash__
// "User-defined classes have __eq__() and __hash__() methods by default;
// with them, all objects compare unequal (except with themselves) and
// x.__hash__() returns an appropriate value such that x == y implies
// both that x is y and hash(x) == hash(y)."
return MP_OBJ_NEW_SMALL_INT((mp_uint_t)self_in);
}
// "A class that overrides __eq__() and does not define __hash__() will have its __hash__() implicitly set to None.
// When the __hash__() method of a class is None, instances of the class will raise an appropriate TypeError"
}
return MP_OBJ_NULL; // op not supported
}
}
// Binary-op enum values not listed here will have the default value of 0 in the
// table, corresponding to MP_QSTRnull, and are therefore unsupported (a lookup will
// fail). They can be added at the expense of code size for the qstr.
// Qstrs for special methods are guaranteed to have a small value, so we use byte
// type to represent them.
const byte mp_binary_op_method_name[MP_BINARY_OP_NUM_RUNTIME] = {
[MP_BINARY_OP_LESS] = MP_QSTR___lt__,
[MP_BINARY_OP_MORE] = MP_QSTR___gt__,
[MP_BINARY_OP_EQUAL] = MP_QSTR___eq__,
[MP_BINARY_OP_LESS_EQUAL] = MP_QSTR___le__,
[MP_BINARY_OP_MORE_EQUAL] = MP_QSTR___ge__,
[MP_BINARY_OP_NOT_EQUAL] = MP_QSTR___ne__,
[MP_BINARY_OP_CONTAINS] = MP_QSTR___contains__,
// If an inplace method is not found a normal method will be used as a fallback
[MP_BINARY_OP_INPLACE_ADD] = MP_QSTR___iadd__,
[MP_BINARY_OP_INPLACE_SUBTRACT] = MP_QSTR___isub__,
#if MICROPY_PY_ALL_INPLACE_SPECIAL_METHODS
[MP_BINARY_OP_INPLACE_MULTIPLY] = MP_QSTR___imul__,
[MP_BINARY_OP_INPLACE_MAT_MULTIPLY] = MP_QSTR___imatmul__,
[MP_BINARY_OP_INPLACE_FLOOR_DIVIDE] = MP_QSTR___ifloordiv__,
[MP_BINARY_OP_INPLACE_TRUE_DIVIDE] = MP_QSTR___itruediv__,
[MP_BINARY_OP_INPLACE_MODULO] = MP_QSTR___imod__,
[MP_BINARY_OP_INPLACE_POWER] = MP_QSTR___ipow__,
[MP_BINARY_OP_INPLACE_OR] = MP_QSTR___ior__,
[MP_BINARY_OP_INPLACE_XOR] = MP_QSTR___ixor__,
[MP_BINARY_OP_INPLACE_AND] = MP_QSTR___iand__,
[MP_BINARY_OP_INPLACE_LSHIFT] = MP_QSTR___ilshift__,
[MP_BINARY_OP_INPLACE_RSHIFT] = MP_QSTR___irshift__,
#endif
[MP_BINARY_OP_ADD] = MP_QSTR___add__,
[MP_BINARY_OP_SUBTRACT] = MP_QSTR___sub__,
#if MICROPY_PY_ALL_SPECIAL_METHODS
[MP_BINARY_OP_MULTIPLY] = MP_QSTR___mul__,
[MP_BINARY_OP_MAT_MULTIPLY] = MP_QSTR___matmul__,
[MP_BINARY_OP_FLOOR_DIVIDE] = MP_QSTR___floordiv__,
[MP_BINARY_OP_TRUE_DIVIDE] = MP_QSTR___truediv__,
[MP_BINARY_OP_MODULO] = MP_QSTR___mod__,
[MP_BINARY_OP_DIVMOD] = MP_QSTR___divmod__,
[MP_BINARY_OP_POWER] = MP_QSTR___pow__,
[MP_BINARY_OP_OR] = MP_QSTR___or__,
[MP_BINARY_OP_XOR] = MP_QSTR___xor__,
[MP_BINARY_OP_AND] = MP_QSTR___and__,
[MP_BINARY_OP_LSHIFT] = MP_QSTR___lshift__,
[MP_BINARY_OP_RSHIFT] = MP_QSTR___rshift__,
#endif
#if MICROPY_PY_REVERSE_SPECIAL_METHODS
[MP_BINARY_OP_REVERSE_ADD] = MP_QSTR___radd__,
[MP_BINARY_OP_REVERSE_SUBTRACT] = MP_QSTR___rsub__,
#if MICROPY_PY_ALL_SPECIAL_METHODS
[MP_BINARY_OP_REVERSE_MULTIPLY] = MP_QSTR___rmul__,
[MP_BINARY_OP_REVERSE_MAT_MULTIPLY] = MP_QSTR___rmatmul__,
[MP_BINARY_OP_REVERSE_FLOOR_DIVIDE] = MP_QSTR___rfloordiv__,
[MP_BINARY_OP_REVERSE_TRUE_DIVIDE] = MP_QSTR___rtruediv__,
[MP_BINARY_OP_REVERSE_MODULO] = MP_QSTR___rmod__,
[MP_BINARY_OP_REVERSE_POWER] = MP_QSTR___rpow__,
[MP_BINARY_OP_REVERSE_OR] = MP_QSTR___ror__,
[MP_BINARY_OP_REVERSE_XOR] = MP_QSTR___rxor__,
[MP_BINARY_OP_REVERSE_AND] = MP_QSTR___rand__,
[MP_BINARY_OP_REVERSE_LSHIFT] = MP_QSTR___rlshift__,
[MP_BINARY_OP_REVERSE_RSHIFT] = MP_QSTR___rrshift__,
#endif
#endif
};
STATIC mp_obj_t instance_binary_op(mp_binary_op_t op, mp_obj_t lhs_in, mp_obj_t rhs_in) {
// Note: For ducktyping, CPython does not look in the instance members or use
// __getattr__ or __getattribute__. It only looks in the class dictionary.
mp_obj_instance_t *lhs = MP_OBJ_TO_PTR(lhs_in);
qstr op_name = mp_binary_op_method_name[op];
/* Still try to lookup native slot
if (op_name == 0) {
return MP_OBJ_NULL;
}
*/
mp_obj_t dest[3] = {MP_OBJ_NULL};
struct class_lookup_data lookup = {
.obj = lhs,
.attr = op_name,
.slot_offset = MP_OBJ_TYPE_OFFSETOF_SLOT(binary_op),
.dest = dest,
.is_type = false,
};
mp_obj_class_lookup(&lookup, lhs->base.type);
mp_obj_t res;
if (dest[0] == MP_OBJ_SENTINEL) {
res = mp_binary_op(op, lhs->subobj[0], rhs_in);
} else if (dest[0] != MP_OBJ_NULL) {
dest[2] = rhs_in;
res = mp_call_method_n_kw(1, 0, dest);
res = op == MP_BINARY_OP_CONTAINS ? mp_obj_new_bool(mp_obj_is_true(res)) : res;
} else {
return MP_OBJ_NULL; // op not supported
}
#if MICROPY_PY_BUILTINS_NOTIMPLEMENTED
// NotImplemented means "try other fallbacks (like calling __rop__
// instead of __op__) and if nothing works, raise TypeError".
if (res == mp_const_notimplemented) {
return MP_OBJ_NULL; // op not supported
}
#endif
return res;
}
STATIC void mp_obj_instance_load_attr(mp_obj_t self_in, qstr attr, mp_obj_t *dest) {
// logic: look in instance members then class locals
assert(mp_obj_is_instance_type(mp_obj_get_type(self_in)));
mp_obj_instance_t *self = MP_OBJ_TO_PTR(self_in);
// Note: This is fast-path'ed in the VM for the MP_BC_LOAD_ATTR operation.
mp_map_elem_t *elem = mp_map_lookup(&self->members, MP_OBJ_NEW_QSTR(attr), MP_MAP_LOOKUP);
if (elem != NULL) {
// object member, always treated as a value
dest[0] = elem->value;
return;
}
#if MICROPY_CPYTHON_COMPAT
if (attr == MP_QSTR___dict__) {
// Create a new dict with a copy of the instance's map items.
// This creates, unlike CPython, a read-only __dict__ that can't be modified.
mp_obj_dict_t dict;
dict.base.type = &mp_type_dict;
dict.map = self->members;
dest[0] = mp_obj_dict_copy(MP_OBJ_FROM_PTR(&dict));
mp_obj_dict_t *dest_dict = MP_OBJ_TO_PTR(dest[0]);
dest_dict->map.is_fixed = 1;
return;
}
#endif
struct class_lookup_data lookup = {
.obj = self,
.attr = attr,
.slot_offset = 0,
.dest = dest,
.is_type = false,
};
mp_obj_class_lookup(&lookup, self->base.type);
mp_obj_t member = dest[0];
if (member != MP_OBJ_NULL) {
if (!(self->base.type->flags & MP_TYPE_FLAG_HAS_SPECIAL_ACCESSORS)) {
// Class doesn't have any special accessors to check so return straight away
return;
}
#if MICROPY_PY_BUILTINS_PROPERTY
if (mp_obj_is_type(member, &mp_type_property)) {
// object member is a property; delegate the load to the property
// Note: This is an optimisation for code size and execution time.
// The proper way to do it is have the functionality just below
// in a __get__ method of the property object, and then it would
// be called by the descriptor code down below. But that way
// requires overhead for the nested mp_call's and overhead for
// the code.
size_t n_proxy;
const mp_obj_t *proxy = mp_obj_property_get(member, &n_proxy);
if (proxy[0] == mp_const_none) {
mp_raise_AttributeError(MP_ERROR_TEXT("unreadable attribute"));
} else {
dest[0] = mp_call_function_n_kw(proxy[0], 1, 0, &self_in);
}
return;
}
#endif
#if MICROPY_PY_DESCRIPTORS
// found a class attribute; if it has a __get__ method then call it with the
// class instance and class as arguments and return the result
// Note that this is functionally correct but very slow: each load_attr
// requires an extra mp_load_method_maybe to check for the __get__.
mp_obj_t attr_get_method[4];
mp_load_method_maybe(member, MP_QSTR___get__, attr_get_method);
if (attr_get_method[0] != MP_OBJ_NULL) {
attr_get_method[2] = self_in;
attr_get_method[3] = MP_OBJ_FROM_PTR(mp_obj_get_type(self_in));
dest[0] = mp_call_method_n_kw(2, 0, attr_get_method);
}
#endif
return;
}
// try __getattr__
if (attr != MP_QSTR___getattr__) {
#if MICROPY_PY_DELATTR_SETATTR
// If the requested attr is __setattr__/__delattr__ then don't delegate the lookup
// to __getattr__. If we followed CPython's behaviour then __setattr__/__delattr__
// would have already been found in the "object" base class.
if (attr == MP_QSTR___setattr__ || attr == MP_QSTR___delattr__) {
return;
}
#endif
mp_obj_t dest2[3];
mp_load_method_maybe(self_in, MP_QSTR___getattr__, dest2);
if (dest2[0] != MP_OBJ_NULL) {
// __getattr__ exists, call it and return its result
dest2[2] = MP_OBJ_NEW_QSTR(attr);
dest[0] = mp_call_method_n_kw(1, 0, dest2);
return;
}
}
}
STATIC bool mp_obj_instance_store_attr(mp_obj_t self_in, qstr attr, mp_obj_t value) {
mp_obj_instance_t *self = MP_OBJ_TO_PTR(self_in);
if (!(self->base.type->flags & MP_TYPE_FLAG_HAS_SPECIAL_ACCESSORS)) {
// Class doesn't have any special accessors so skip their checks
goto skip_special_accessors;
}
#if MICROPY_PY_BUILTINS_PROPERTY || MICROPY_PY_DESCRIPTORS
// With property and/or descriptors enabled we need to do a lookup
// first in the class dict for the attribute to see if the store should
// be delegated.
mp_obj_t member[2] = {MP_OBJ_NULL};
struct class_lookup_data lookup = {
.obj = self,
.attr = attr,
.slot_offset = 0,
.dest = member,
.is_type = false,
};
mp_obj_class_lookup(&lookup, self->base.type);
if (member[0] != MP_OBJ_NULL) {
#if MICROPY_PY_BUILTINS_PROPERTY
if (mp_obj_is_type(member[0], &mp_type_property)) {
// attribute exists and is a property; delegate the store/delete
// Note: This is an optimisation for code size and execution time.
// The proper way to do it is have the functionality just below in
// a __set__/__delete__ method of the property object, and then it
// would be called by the descriptor code down below. But that way
// requires overhead for the nested mp_call's and overhead for
// the code.
// CIRCUITPY-CHANGE: variable number of proxies
size_t n_proxy;
const mp_obj_t *proxy = mp_obj_property_get(member[0], &n_proxy);
mp_obj_t dest[2] = {self_in, value};
if (value == MP_OBJ_NULL) {
// delete attribute
if (n_proxy < 3 || proxy[2] == mp_const_none) {
// TODO better error message?
return false;
} else {
mp_call_function_n_kw(proxy[2], 1, 0, dest);
return true;
}
} else {
// store attribute
if (n_proxy < 2 || proxy[1] == mp_const_none) {
// TODO better error message?
return false;
} else {
mp_call_function_n_kw(proxy[1], 2, 0, dest);
return true;
}
}
}
#endif
#if MICROPY_PY_DESCRIPTORS
// found a class attribute; if it has a __set__/__delete__ method then
// call it with the class instance (and value) as arguments
if (value == MP_OBJ_NULL) {
// delete attribute
mp_obj_t attr_delete_method[3];
mp_load_method_maybe(member[0], MP_QSTR___delete__, attr_delete_method);
if (attr_delete_method[0] != MP_OBJ_NULL) {
attr_delete_method[2] = self_in;
mp_call_method_n_kw(1, 0, attr_delete_method);
return true;
}
} else {
// store attribute
mp_obj_t attr_set_method[4];
mp_load_method_maybe(member[0], MP_QSTR___set__, attr_set_method);
if (attr_set_method[0] != MP_OBJ_NULL) {
attr_set_method[2] = self_in;
attr_set_method[3] = value;
mp_call_method_n_kw(2, 0, attr_set_method);
return true;
}
}
#endif
}
#endif
#if MICROPY_PY_DELATTR_SETATTR
if (value == MP_OBJ_NULL) {
// delete attribute
// try __delattr__ first
mp_obj_t attr_delattr_method[3];
mp_load_method_maybe(self_in, MP_QSTR___delattr__, attr_delattr_method);
if (attr_delattr_method[0] != MP_OBJ_NULL) {
// __delattr__ exists, so call it
attr_delattr_method[2] = MP_OBJ_NEW_QSTR(attr);
mp_call_method_n_kw(1, 0, attr_delattr_method);
return true;
}
} else {
// store attribute
// try __setattr__ first
mp_obj_t attr_setattr_method[4];
mp_load_method_maybe(self_in, MP_QSTR___setattr__, attr_setattr_method);
if (attr_setattr_method[0] != MP_OBJ_NULL) {
// __setattr__ exists, so call it
attr_setattr_method[2] = MP_OBJ_NEW_QSTR(attr);
attr_setattr_method[3] = value;
mp_call_method_n_kw(2, 0, attr_setattr_method);
return true;
}
}
#endif
skip_special_accessors:
if (value == MP_OBJ_NULL) {
// delete attribute
mp_map_elem_t *elem = mp_map_lookup(&self->members, MP_OBJ_NEW_QSTR(attr), MP_MAP_LOOKUP_REMOVE_IF_FOUND);
return elem != NULL;
} else {
// store attribute
mp_map_lookup(&self->members, MP_OBJ_NEW_QSTR(attr), MP_MAP_LOOKUP_ADD_IF_NOT_FOUND)->value = value;
return true;
}
}
STATIC void mp_obj_instance_attr(mp_obj_t self_in, qstr attr, mp_obj_t *dest) {
if (dest[0] == MP_OBJ_NULL) {
mp_obj_instance_load_attr(self_in, attr, dest);
} else {
if (mp_obj_instance_store_attr(self_in, attr, dest[1])) {
dest[0] = MP_OBJ_NULL; // indicate success
}
}
}
STATIC mp_obj_t instance_subscr(mp_obj_t self_in, mp_obj_t index, mp_obj_t value) {
mp_obj_instance_t *self = MP_OBJ_TO_PTR(self_in);
mp_obj_t member[4] = {MP_OBJ_NULL, MP_OBJ_NULL, index, value};
struct class_lookup_data lookup = {
.obj = self,
.slot_offset = MP_OBJ_TYPE_OFFSETOF_SLOT(subscr),
.dest = member,
.is_type = false,
};
if (value == MP_OBJ_NULL) {
// delete item
lookup.attr = MP_QSTR___delitem__;
} else if (value == MP_OBJ_SENTINEL) {
// load item
lookup.attr = MP_QSTR___getitem__;
} else {
// store item
lookup.attr = MP_QSTR___setitem__;
}
mp_obj_class_lookup(&lookup, self->base.type);
if (member[0] == MP_OBJ_SENTINEL) {
// CIRCUITPY-CHANGE: We pass the native subscr a copy of the original
// object so it can access info about the subobject.
const mp_obj_type_t *type = mp_obj_get_type(self->subobj[0]);
mp_obj_t ret = MP_OBJ_TYPE_GET_SLOT(type, subscr)(self_in, index, value);
return ret;
} else if (member[0] != MP_OBJ_NULL) {
size_t n_args = value == MP_OBJ_NULL || value == MP_OBJ_SENTINEL ? 1 : 2;
mp_obj_t ret = mp_call_method_n_kw(n_args, 0, member);
if (value == MP_OBJ_SENTINEL) {
return ret;
} else {
return mp_const_none;
}
} else {
return MP_OBJ_NULL; // op not supported
}
}
STATIC mp_obj_t mp_obj_instance_get_call(mp_obj_t self_in, mp_obj_t *member) {
mp_obj_instance_t *self = MP_OBJ_TO_PTR(self_in);
struct class_lookup_data lookup = {
.obj = self,
.attr = MP_QSTR___call__,
.slot_offset = MP_OBJ_TYPE_OFFSETOF_SLOT(call),
.dest = member,
.is_type = false,
};
mp_obj_class_lookup(&lookup, self->base.type);
return member[0];
}
bool mp_obj_instance_is_callable(mp_obj_t self_in) {
mp_obj_t member[2] = {MP_OBJ_NULL, MP_OBJ_NULL};
return mp_obj_instance_get_call(self_in, member) != MP_OBJ_NULL;
}
mp_obj_t mp_obj_instance_call(mp_obj_t self_in, size_t n_args, size_t n_kw, const mp_obj_t *args) {
mp_obj_t member[2] = {MP_OBJ_NULL, MP_OBJ_NULL};
mp_obj_t call = mp_obj_instance_get_call(self_in, member);
if (call == MP_OBJ_NULL) {
#if MICROPY_ERROR_REPORTING <= MICROPY_ERROR_REPORTING_TERSE
mp_raise_TypeError(MP_ERROR_TEXT("object not callable"));
#else
mp_raise_TypeError_varg(MP_ERROR_TEXT("'%q' object is not callable"),
mp_obj_get_type_qstr(self_in));
#endif
}
mp_obj_instance_t *self = MP_OBJ_TO_PTR(self_in);
if (call == MP_OBJ_SENTINEL) {
return mp_call_function_n_kw(self->subobj[0], n_args, n_kw, args);
}
return mp_call_method_self_n_kw(member[0], member[1], n_args, n_kw, args);
}
// Note that iter_buf may be NULL, and needs to be allocated if needed
mp_obj_t mp_obj_instance_getiter(mp_obj_t self_in, mp_obj_iter_buf_t *iter_buf) {
mp_obj_instance_t *self = MP_OBJ_TO_PTR(self_in);
mp_obj_t member[2] = {MP_OBJ_NULL};
struct class_lookup_data lookup = {
.obj = self,
.attr = MP_QSTR___iter__,
.slot_offset = MP_OBJ_TYPE_OFFSETOF_SLOT(iter),
.dest = member,
.is_type = false,
};
mp_obj_class_lookup(&lookup, self->base.type);
if (member[0] == MP_OBJ_NULL) {
return MP_OBJ_NULL;
} else if (member[0] == MP_OBJ_SENTINEL) {
const mp_obj_type_t *type = mp_obj_get_type(self->subobj[0]);
if (type->flags & MP_TYPE_FLAG_ITER_IS_ITERNEXT) {
return self->subobj[0];
} else {
if (iter_buf == NULL) {
iter_buf = m_new_obj(mp_obj_iter_buf_t);
}
return ((mp_getiter_fun_t)MP_OBJ_TYPE_GET_SLOT(type, iter))(self->subobj[0], iter_buf);
}
} else {
return mp_call_method_n_kw(0, 0, member);
}
}
STATIC mp_int_t instance_get_buffer(mp_obj_t self_in, mp_buffer_info_t *bufinfo, mp_uint_t flags) {
mp_obj_instance_t *self = MP_OBJ_TO_PTR(self_in);
mp_obj_t member[2] = {MP_OBJ_NULL};
struct class_lookup_data lookup = {
.obj = self,
.attr = MP_QSTR_, // don't actually look for a method
.slot_offset = MP_OBJ_TYPE_OFFSETOF_SLOT(buffer),
.dest = member,
.is_type = false,
};
mp_obj_class_lookup(&lookup, self->base.type);
if (member[0] == MP_OBJ_SENTINEL) {
const mp_obj_type_t *type = mp_obj_get_type(self->subobj[0]);
return MP_OBJ_TYPE_GET_SLOT(type, buffer)(self->subobj[0], bufinfo, flags);
} else {
return 1; // object does not support buffer protocol
}
}
/******************************************************************************/
// type object
// - the struct is mp_obj_type_t and is defined in obj.h so const types can be made
// - there is a constant mp_obj_type_t (called mp_type_type) for the 'type' object
// - creating a new class (a new type) creates a new mp_obj_type_t
#if ENABLE_SPECIAL_ACCESSORS
STATIC bool check_for_special_accessors(mp_obj_t key, mp_obj_t value) {
#if MICROPY_PY_DELATTR_SETATTR
if (key == MP_OBJ_NEW_QSTR(MP_QSTR___setattr__) || key == MP_OBJ_NEW_QSTR(MP_QSTR___delattr__)) {
return true;
}
#endif
#if MICROPY_PY_BUILTINS_PROPERTY
if (mp_obj_is_type(value, &mp_type_property)) {
return true;
}
#endif
#if MICROPY_PY_DESCRIPTORS
static const uint8_t to_check[] = {
MP_QSTR___get__, MP_QSTR___set__, MP_QSTR___delete__,
};
for (size_t i = 0; i < MP_ARRAY_SIZE(to_check); ++i) {
mp_obj_t dest_temp[2];
mp_load_method_protected(value, to_check[i], dest_temp, true);
if (dest_temp[0] != MP_OBJ_NULL) {
return true;
}
}
#endif
return false;
}
#endif
STATIC void type_print(const mp_print_t *print, mp_obj_t self_in, mp_print_kind_t kind) {
(void)kind;
mp_obj_type_t *self = MP_OBJ_TO_PTR(self_in);
mp_printf(print, "<class '%q'>", self->name);
}