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/* Built-in functions */
#include
"Python.h"
#include
"pycore_ast.h"
// _PyAST_Validate()
#include
"pycore_call.h"
// _PyObject_CallNoArgs()
#include
"pycore_ceval.h"
// _PyEval_Vector()
#include
"pycore_compile.h"
// _PyAST_Compile()
#include
"pycore_fileutils.h"
// _PyFile_Flush
#include
"pycore_floatobject.h"
// _PyFloat_ExactDealloc()
#include
"pycore_interp.h"
// _PyInterpreterState_GetConfig()
#include
"pycore_long.h"
// _PyLong_CompactValue
#include
"pycore_modsupport.h"
// _PyArg_NoKwnames()
#include
"pycore_object.h"
// _Py_AddToAllObjects()
#include
"pycore_pyerrors.h"
// _PyErr_NoMemory()
#include
"pycore_pystate.h"
// _PyThreadState_GET()
#include
"pycore_pythonrun.h"
// _Py_SourceAsString()
#include
"pycore_sysmodule.h"
// _PySys_GetRequiredAttr()
#include
"pycore_tuple.h"
// _PyTuple_FromArray()
#include
"pycore_cell.h"
// PyCell_GetRef()
#include
"clinic/bltinmodule.c.h"
#ifdef
HAVE_UNISTD_H
# include
<unistd.h>
// isatty()
#endif
static
PyObject
*
update_bases
(
PyObject
*
bases
,
PyObject
*
const
*
args
,
Py_ssize_t
nargs
)
{
Py_ssize_t
i
,
j
;
PyObject
*
base
,
*
meth
,
*
new_base
,
*
result
,
*
new_bases
=
NULL
;
assert
(
PyTuple_Check
(
bases
));
for
(
i
=
0
;
i
<
nargs
;
i
++
) {
base
=
args
[
i
];
if
(
PyType_Check
(
base
)) {
if
(
new_bases
) {
/* If we already have made a replacement, then we append every normal base,
otherwise just skip it. */
if
(
PyList_Append
(
new_bases
,
base
)
<
0
) {
goto
error
;
}
}
continue
;
}
if
(
PyObject_GetOptionalAttr
(
base
,
&
_Py_ID
(
__mro_entries__
),
&
meth
)
<
0
) {
goto
error
;
}
if
(!
meth
) {
if
(
new_bases
) {
if
(
PyList_Append
(
new_bases
,
base
)
<
0
) {
goto
error
;
}
}
continue
;
}
new_base
=
PyObject_CallOneArg
(
meth
,
bases
);
Py_DECREF
(
meth
);
if
(!
new_base
) {
goto
error
;
}
if
(!
PyTuple_Check
(
new_base
)) {
PyErr_SetString
(
PyExc_TypeError
,
"__mro_entries__ must return a tuple"
);
Py_DECREF
(
new_base
);
goto
error
;
}
if
(!
new_bases
) {
/* If this is a first successful replacement, create new_bases list and
copy previously encountered bases. */
if
(!(
new_bases
=
PyList_New
(
i
))) {
Py_DECREF
(
new_base
);
goto
error
;
}
for
(
j
=
0
;
j
<
i
;
j
++
) {
base
=
args
[
j
];
PyList_SET_ITEM
(
new_bases
,
j
,
Py_NewRef
(
base
));
}
}
j
=
PyList_GET_SIZE
(
new_bases
);
if
(
PyList_SetSlice
(
new_bases
,
j
,
j
,
new_base
)
<
0
) {
Py_DECREF
(
new_base
);
goto
error
;
}
Py_DECREF
(
new_base
);
}
if
(!
new_bases
) {
return
bases
;
}
result
=
PyList_AsTuple
(
new_bases
);
Py_DECREF
(
new_bases
);
return
result
;
error
:
Py_XDECREF
(
new_bases
);
return
NULL
;
}
/* AC: cannot convert yet, waiting for *args support */
static
PyObject
*
builtin___build_class__
(
PyObject
*
self
,
PyObject
*
const
*
args
,
Py_ssize_t
nargs
,
PyObject
*
kwnames
)
{
PyObject
*
func
,
*
name
,
*
winner
,
*
prep
;
PyObject
*
cls
=
NULL
,
*
cell
=
NULL
,
*
ns
=
NULL
,
*
meta
=
NULL
,
*
orig_bases
=
NULL
;
PyObject
*
mkw
=
NULL
,
*
bases
=
NULL
;
int
isclass
=
0
;
/* initialize to prevent gcc warning */
if
(
nargs
<
2
) {
PyErr_SetString
(
PyExc_TypeError
,
"__build_class__: not enough arguments"
);
return
NULL
;
}
func
=
args
[
0
];
/* Better be callable */
if
(!
PyFunction_Check
(
func
)) {
PyErr_SetString
(
PyExc_TypeError
,
"__build_class__: func must be a function"
);
return
NULL
;
}
name
=
args
[
1
];
if
(!
PyUnicode_Check
(
name
)) {
PyErr_SetString
(
PyExc_TypeError
,
"__build_class__: name is not a string"
);
return
NULL
;
}
orig_bases
=
_PyTuple_FromArray
(
args
+
2
,
nargs
-
2
);
if
(
orig_bases
==
NULL
)
return
NULL
;
bases
=
update_bases
(
orig_bases
,
args
+
2
,
nargs
-
2
);
if
(
bases
==
NULL
) {
Py_DECREF
(
orig_bases
);
return
NULL
;
}
if
(
kwnames
==
NULL
) {
meta
=
NULL
;
mkw
=
NULL
;
}
else
{
mkw
=
_PyStack_AsDict
(
args
+
nargs
,
kwnames
);
if
(
mkw
==
NULL
) {
goto
error
;
}
if
(
PyDict_Pop
(
mkw
,
&
_Py_ID
(
metaclass
),
&
meta
)
<
0
) {
goto
error
;
}
if
(
meta
!=
NULL
) {
/* metaclass is explicitly given, check if it's indeed a class */
isclass
=
PyType_Check
(
meta
);
}
}
if
(
meta
==
NULL
) {
/* if there are no bases, use type: */
if
(
PyTuple_GET_SIZE
(
bases
)
==
0
) {
meta
=
(
PyObject
*
) (
&
PyType_Type
);
}
/* else get the type of the first base */
else
{
PyObject
*
base0
=
PyTuple_GET_ITEM
(
bases
,
0
);
meta
=
(
PyObject
*
)
Py_TYPE
(
base0
);
}
Py_INCREF
(
meta
);
isclass
=
1
;
/* meta is really a class */
}
if
(
isclass
) {
/* meta is really a class, so check for a more derived
metaclass, or possible metaclass conflicts: */
winner
=
(
PyObject
*
)
_PyType_CalculateMetaclass
((
PyTypeObject
*
)
meta
,
bases
);
if
(
winner
==
NULL
) {
goto
error
;
}
if
(
winner
!=
meta
) {
Py_SETREF
(
meta
,
Py_NewRef
(
winner
));
}
}
/* else: meta is not a class, so we cannot do the metaclass
calculation, so we will use the explicitly given object as it is */
if
(
PyObject_GetOptionalAttr
(
meta
,
&
_Py_ID
(
__prepare__
),
&
prep
)
<
0
) {
ns
=
NULL
;
}
else
if
(
prep
==
NULL
) {
ns
=
PyDict_New
();
}
else
{
PyObject
*
pargs
[
2
]
=
{
name
,
bases
};
ns
=
PyObject_VectorcallDict
(
prep
,
pargs
,
2
,
mkw
);
Py_DECREF
(
prep
);
}
if
(
ns
==
NULL
) {
goto
error
;
}
if
(!
PyMapping_Check
(
ns
)) {
PyErr_Format
(
PyExc_TypeError
,
"%.200s.__prepare__() must return a mapping, not %.200s"
,
isclass
? ((
PyTypeObject
*
)
meta
)
->
tp_name
:
"<metaclass>"
,
Py_TYPE
(
ns
)
->
tp_name
);
goto
error
;
}
PyThreadState
*
tstate
=
_PyThreadState_GET
();
EVAL_CALL_STAT_INC
(
EVAL_CALL_BUILD_CLASS
);
cell
=
_PyEval_Vector
(
tstate
, (
PyFunctionObject
*
)
func
,
ns
,
NULL
,
0
,
NULL
);
if
(
cell
!=
NULL
) {
if
(
bases
!=
orig_bases
) {
if
(
PyMapping_SetItemString
(
ns
,
"__orig_bases__"
,
orig_bases
)
<
0
) {
goto
error
;
}
}
PyObject
*
margs
[
3
]
=
{
name
,
bases
,
ns
};
cls
=
PyObject_VectorcallDict
(
meta
,
margs
,
3
,
mkw
);
if
(
cls
!=
NULL
&&
PyType_Check
(
cls
)
&&
PyCell_Check
(
cell
)) {
PyObject
*
cell_cls
=
PyCell_GetRef
((
PyCellObject
*
)
cell
);
if
(
cell_cls
!=
cls
) {
if
(
cell_cls
==
NULL
) {
const
char
*
msg
=
"__class__ not set defining %.200R as %.200R. "
"Was __classcell__ propagated to type.__new__?"
;
PyErr_Format
(
PyExc_RuntimeError
,
msg
,
name
,
cls
);
}
else
{
const
char
*
msg
=
"__class__ set to %.200R defining %.200R as %.200R"
;
PyErr_Format
(
PyExc_TypeError
,
msg
,
cell_cls
,
name
,
cls
);
}
Py_XDECREF
(
cell_cls
);
Py_SETREF
(
cls
,
NULL
);
goto
error
;
}
else
{
Py_DECREF
(
cell_cls
);
}
}
}
error
:
Py_XDECREF
(
cell
);
Py_XDECREF
(
ns
);
Py_XDECREF
(
meta
);
Py_XDECREF
(
mkw
);
if
(
bases
!=
orig_bases
) {
Py_DECREF
(
orig_bases
);
}
Py_DECREF
(
bases
);
return
cls
;
}
PyDoc_STRVAR
(
build_class_doc
,
"__build_class__(func, name, /, *bases, [metaclass], **kwds) -> class\n\
\n\
Internal helper function used by the class statement."
);
/*[clinic input]
__import__ as builtin___import__
name: object
globals: object(c_default="NULL") = None
locals: object(c_default="NULL") = None
fromlist: object(c_default="NULL") = ()
level: int = 0
Import a module.
Because this function is meant for use by the Python
interpreter and not for general use, it is better to use
importlib.import_module() to programmatically import a module.
The globals argument is only used to determine the context;
they are not modified. The locals argument is unused. The fromlist
should be a list of names to emulate ``from name import ...``, or an
empty list to emulate ``import name``.
When importing a module from a package, note that __import__('A.B', ...)
returns package A when fromlist is empty, but its submodule B when
fromlist is not empty. The level argument is used to determine whether
to perform absolute or relative imports: 0 is absolute, while a positive
number is the number of parent directories to search relative to the
current module.
[clinic start generated code]*/
static
PyObject
*
builtin___import___impl
(
PyObject
*
module
,
PyObject
*
name
,
PyObject
*
globals
,
PyObject
*
locals
,
PyObject
*
fromlist
,
int
level
)
/*[clinic end generated code: output=4febeda88a0cd245 input=e3096a230383f72d]*/
{
return
PyImport_ImportModuleLevelObject
(
name
,
globals
,
locals
,
fromlist
,
level
);
}
/*[clinic input]
abs as builtin_abs
x: object
/
Return the absolute value of the argument.
[clinic start generated code]*/
static
PyObject
*
builtin_abs
(
PyObject
*
module
,
PyObject
*
x
)
/*[clinic end generated code: output=b1b433b9e51356f5 input=bed4ca14e29c20d1]*/
{
return
PyNumber_Absolute
(
x
);
}
/*[clinic input]
all as builtin_all
iterable: object
/
Return True if bool(x) is True for all values x in the iterable.
If the iterable is empty, return True.
[clinic start generated code]*/
static
PyObject
*
builtin_all
(
PyObject
*
module
,
PyObject
*
iterable
)
/*[clinic end generated code: output=ca2a7127276f79b3 input=1a7c5d1bc3438a21]*/
{
PyObject
*
it
,
*
item
;
PyObject
*
(
*
iternext
)(
PyObject
*
);
int
cmp
;
it
=
PyObject_GetIter
(
iterable
);
if
(
it
==
NULL
)
return
NULL
;
iternext
=
*
Py_TYPE
(
it
)
->
tp_iternext
;
for
(;;) {
item
=
iternext
(
it
);
if
(
item
==
NULL
)
break
;
cmp
=
PyObject_IsTrue
(
item
);
Py_DECREF
(
item
);
if
(
cmp
<
0
) {
Py_DECREF
(
it
);
return
NULL
;
}
if
(
cmp
==
0
) {
Py_DECREF
(
it
);
Py_RETURN_FALSE
;
}
}
Py_DECREF
(
it
);
if
(
PyErr_Occurred
()) {
if
(
PyErr_ExceptionMatches
(
PyExc_StopIteration
))
PyErr_Clear
();
else
return
NULL
;
}
Py_RETURN_TRUE
;
}
/*[clinic input]
any as builtin_any
iterable: object
/
Return True if bool(x) is True for any x in the iterable.
If the iterable is empty, return False.
[clinic start generated code]*/
static
PyObject
*
builtin_any
(
PyObject
*
module
,
PyObject
*
iterable
)
/*[clinic end generated code: output=fa65684748caa60e input=41d7451c23384f24]*/
{
PyObject
*
it
,
*
item
;
PyObject
*
(
*
iternext
)(
PyObject
*
);
int
cmp
;
it
=
PyObject_GetIter
(
iterable
);
if
(
it
==
NULL
)
return
NULL
;
iternext
=
*
Py_TYPE
(
it
)
->
tp_iternext
;
for
(;;) {
item
=
iternext
(
it
);
if
(
item
==
NULL
)
break
;
cmp
=
PyObject_IsTrue
(
item
);
Py_DECREF
(
item
);
if
(
cmp
<
0
) {
Py_DECREF
(
it
);
return
NULL
;
}
if
(
cmp
>
0
) {
Py_DECREF
(
it
);
Py_RETURN_TRUE
;
}
}
Py_DECREF
(
it
);
if
(
PyErr_Occurred
()) {
if
(
PyErr_ExceptionMatches
(
PyExc_StopIteration
))
PyErr_Clear
();
else
return
NULL
;
}
Py_RETURN_FALSE
;
}
/*[clinic input]
ascii as builtin_ascii
obj: object
/
Return an ASCII-only representation of an object.
As repr(), return a string containing a printable representation of an
object, but escape the non-ASCII characters in the string returned by
repr() using \\x, \\u or \\U escapes. This generates a string similar
to that returned by repr() in Python 2.
[clinic start generated code]*/
static
PyObject
*
builtin_ascii
(
PyObject
*
module
,
PyObject
*
obj
)
/*[clinic end generated code: output=6d37b3f0984c7eb9 input=4c62732e1b3a3cc9]*/
{
return
PyObject_ASCII
(
obj
);
}
/*[clinic input]
bin as builtin_bin
number: object
/
Return the binary representation of an integer.
>>> bin(2796202)
'0b1010101010101010101010'
[clinic start generated code]*/
static
PyObject
*
builtin_bin
(
PyObject
*
module
,
PyObject
*
number
)
/*[clinic end generated code: output=b6fc4ad5e649f4f7 input=53f8a0264bacaf90]*/
{
return
PyNumber_ToBase
(
number
,
2
);
}
/*[clinic input]
callable as builtin_callable
obj: object
/
Return whether the object is callable (i.e., some kind of function).
Note that classes are callable, as are instances of classes with a
__call__() method.
[clinic start generated code]*/
static
PyObject
*
builtin_callable
(
PyObject
*
module
,
PyObject
*
obj
)
/*[clinic end generated code: output=2b095d59d934cb7e input=1423bab99cc41f58]*/
{
return
PyBool_FromLong
((
long
)
PyCallable_Check
(
obj
));
}
static
PyObject
*
builtin_breakpoint
(
PyObject
*
self
,
PyObject
*
const
*
args
,
Py_ssize_t
nargs
,
PyObject
*
keywords
)
{
PyObject
*
hook
=
_PySys_GetRequiredAttrString
(
"breakpointhook"
);
if
(
hook
==
NULL
) {
return
NULL
;
}
if
(
PySys_Audit
(
"builtins.breakpoint"
,
"O"
,
hook
)
<
0
) {
Py_DECREF
(
hook
);
return
NULL
;
}
PyObject
*
retval
=
PyObject_Vectorcall
(
hook
,
args
,
nargs
,
keywords
);
Py_DECREF
(
hook
);
return
retval
;
}
PyDoc_STRVAR
(
breakpoint_doc
,
"breakpoint($module, /, *args, **kws)\n\
--\n\
\n\
Call sys.breakpointhook(*args, **kws). sys.breakpointhook() must accept\n\
whatever arguments are passed.\n\
\n\
By default, this drops you into the pdb debugger."
);
typedef
struct
{
PyObject_HEAD
PyObject
*
func
;
PyObject
*
it
;
}
filterobject
;
#define
_filterobject_CAST
(
op
) ((filterobject *)(op))
static
PyObject
*
filter_new
(
PyTypeObject
*
type
,
PyObject
*
args
,
PyObject
*
kwds
)
{
PyObject
*
func
,
*
seq
;
PyObject
*
it
;
filterobject
*
lz
;
if
((
type
==
&
PyFilter_Type
||
type
->
tp_init
==
PyFilter_Type
.
tp_init
)
&&
!
_PyArg_NoKeywords
(
"filter"
,
kwds
))
return
NULL
;
if
(!
PyArg_UnpackTuple
(
args
,
"filter"
,
2
,
2
,
&
func
,
&
seq
))
return
NULL
;
/* Get iterator. */
it
=
PyObject_GetIter
(
seq
);
if
(
it
==
NULL
)
return
NULL
;
/* create filterobject structure */
lz
=
(
filterobject
*
)
type
->
tp_alloc
(
type
,
0
);
if
(
lz
==
NULL
) {
Py_DECREF
(
it
);
return
NULL
;
}
lz
->
func
=
Py_NewRef
(
func
);
lz
->
it
=
it
;
return
(
PyObject
*
)
lz
;
}
static
PyObject
*
filter_vectorcall
(
PyObject
*
type
,
PyObject
*
const
*
args
,
size_t
nargsf
,
PyObject
*
kwnames
)
{
PyTypeObject
*
tp
=
_PyType_CAST
(
type
);
if
(
tp
==
&
PyFilter_Type
&&
!
_PyArg_NoKwnames
(
"filter"
,
kwnames
)) {
return
NULL
;
}
Py_ssize_t
nargs
=
PyVectorcall_NARGS
(
nargsf
);
if
(!
_PyArg_CheckPositional
(
"filter"
,
nargs
,
2
,
2
)) {
return
NULL
;
}
PyObject
*
it
=
PyObject_GetIter
(
args
[
1
]);
if
(
it
==
NULL
) {
return
NULL
;
}
filterobject
*
lz
=
(
filterobject
*
)
tp
->
tp_alloc
(
tp
,
0
);
if
(
lz
==
NULL
) {
Py_DECREF
(
it
);
return
NULL
;
}
lz
->
func
=
Py_NewRef
(
args
[
0
]);
lz
->
it
=
it
;
return
(
PyObject
*
)
lz
;
}
static
void
filter_dealloc
(
PyObject
*
self
)
{
filterobject
*
lz
=
_filterobject_CAST
(
self
);
PyObject_GC_UnTrack
(
lz
);
Py_XDECREF
(
lz
->
func
);
Py_XDECREF
(
lz
->
it
);
Py_TYPE
(
lz
)
->
tp_free
(
lz
);
}
static
int
filter_traverse
(
PyObject
*
self
,
visitproc
visit
,
void
*
arg
)
{
filterobject
*
lz
=
_filterobject_CAST
(
self
);
Py_VISIT
(
lz
->
it
);
Py_VISIT
(
lz
->
func
);
return
0
;
}
static
PyObject
*
filter_next
(
PyObject
*
self
)
{
filterobject
*
lz
=
_filterobject_CAST
(
self
);
PyObject
*
item
;
PyObject
*
it
=
lz
->
it
;
long
ok
;
PyObject
*
(
*
iternext
)(
PyObject
*
);
int
checktrue
=
lz
->
func
==
Py_None
||
lz
->
func
==
(
PyObject
*
)
&
PyBool_Type
;
iternext
=
*
Py_TYPE
(
it
)
->
tp_iternext
;
for
(;;) {
item
=
iternext
(
it
);
if
(
item
==
NULL
)
return
NULL
;
if
(
checktrue
) {
ok
=
PyObject_IsTrue
(
item
);
}
else
{
PyObject
*
good
;
good
=
PyObject_CallOneArg
(
lz
->
func
,
item
);
if
(
good
==
NULL
) {
Py_DECREF
(
item
);
return
NULL
;
}
ok
=
PyObject_IsTrue
(
good
);
Py_DECREF
(
good
);
}
if
(
ok
>
0
)
return
item
;
Py_DECREF
(
item
);
if
(
ok
<
0
)
return
NULL
;
}
}
static
PyObject
*
filter_reduce
(
PyObject
*
self
,
PyObject
*
Py_UNUSED
(
ignored
))
{
filterobject
*
lz
=
_filterobject_CAST
(
self
);
return
Py_BuildValue
(
"O(OO)"
,
Py_TYPE
(
lz
),
lz
->
func
,
lz
->
it
);
}
PyDoc_STRVAR
(
reduce_doc
,
"Return state information for pickling."
);
static
PyMethodDef
filter_methods
[]
=
{
{
"__reduce__"
,
filter_reduce
,
METH_NOARGS
,
reduce_doc
},
{
NULL
,
NULL
}
/* sentinel */
};
PyDoc_STRVAR
(
filter_doc
,
"filter(function, iterable, /)\n\
--\n\
\n\
Return an iterator yielding those items of iterable for which\n\
function(item) is true. If function is None, return the items that\n\
are true."
);
PyTypeObject
PyFilter_Type
=
{
PyVarObject_HEAD_INIT
(
&
PyType_Type
,
0
)
"filter"
,
/* tp_name */
sizeof
(
filterobject
),
/* tp_basicsize */
0
,
/* tp_itemsize */
/* methods */
filter_dealloc
,
/* tp_dealloc */
0
,
/* tp_vectorcall_offset */
0
,
/* tp_getattr */
0
,
/* tp_setattr */
0
,
/* tp_as_async */
0
,
/* tp_repr */
0
,
/* tp_as_number */
0
,
/* tp_as_sequence */
0
,
/* tp_as_mapping */
0
,
/* tp_hash */
0
,
/* tp_call */
0
,
/* tp_str */
PyObject_GenericGetAttr
,
/* tp_getattro */
0
,
/* tp_setattro */
0
,
/* tp_as_buffer */
Py_TPFLAGS_DEFAULT
|
Py_TPFLAGS_HAVE_GC
|
Py_TPFLAGS_BASETYPE
,
/* tp_flags */
filter_doc
,
/* tp_doc */
filter_traverse
,
/* tp_traverse */
0
,
/* tp_clear */
0
,
/* tp_richcompare */
0
,
/* tp_weaklistoffset */
PyObject_SelfIter
,
/* tp_iter */
filter_next
,
/* tp_iternext */
filter_methods
,
/* tp_methods */
0
,
/* tp_members */
0
,
/* tp_getset */
0
,
/* tp_base */
0
,
/* tp_dict */
0
,
/* tp_descr_get */
0
,
/* tp_descr_set */
0
,
/* tp_dictoffset */
0
,
/* tp_init */
PyType_GenericAlloc
,
/* tp_alloc */
filter_new
,
/* tp_new */
PyObject_GC_Del
,
/* tp_free */
.
tp_vectorcall
=
filter_vectorcall
};
/*[clinic input]
format as builtin_format
value: object
format_spec: unicode(c_default="NULL") = ''
/
Return type(value).__format__(value, format_spec)
Many built-in types implement format_spec according to the
Format Specification Mini-language. See help('FORMATTING').
If type(value) does not supply a method named __format__
and format_spec is empty, then str(value) is returned.
See also help('SPECIALMETHODS').
[clinic start generated code]*/
static
PyObject
*
builtin_format_impl
(
PyObject
*
module
,
PyObject
*
value
,
PyObject
*
format_spec
)
/*[clinic end generated code: output=2f40bdfa4954b077 input=45ef3934b86d5624]*/
{
return
PyObject_Format
(
value
,
format_spec
);
}
/*[clinic input]
chr as builtin_chr
i: object
/
Return a Unicode string of one character with ordinal i; 0 <= i <= 0x10ffff.
[clinic start generated code]*/
static
PyObject
*
builtin_chr
(
PyObject
*
module
,
PyObject
*
i
)
/*[clinic end generated code: output=d34f25b8035a9b10 input=f919867f0ba2f496]*/
{
int
overflow
;
long
v
=
PyLong_AsLongAndOverflow
(
i
,
&
overflow
);
if
(
v
==
-1
&&
PyErr_Occurred
()) {
return
NULL
;
}
if
(
overflow
) {
v
=
overflow
<
0
?
INT_MIN
:
INT_MAX
;
/* Allow PyUnicode_FromOrdinal() to raise an exception */
}
#if
SIZEOF_INT
<
SIZEOF_LONG
else
if
(
v
<
INT_MIN
) {
v
=
INT_MIN
;
}
else
if
(
v
>
INT_MAX
) {
v
=
INT_MAX
;
}
#endif
return
PyUnicode_FromOrdinal
(
v
);
}
/*[clinic input]
compile as builtin_compile
source: object
filename: unicode_fs_decoded
mode: str
flags: int = 0
dont_inherit: bool = False
optimize: int = -1
*
_feature_version as feature_version: int = -1
Compile source into a code object that can be executed by exec() or eval().
The source code may represent a Python module, statement or
expression.
The filename will be used for run-time error messages.
The mode must be 'exec' to compile a module, 'single' to compile a
single (interactive) statement, or 'eval' to compile an expression.
The flags argument, if present, controls which future statements
influence the compilation of the code.
The dont_inherit argument, if true, stops the compilation inheriting
the effects of any future statements in effect in the code calling
compile; if absent or false these statements do influence the
compilation, in addition to any features explicitly specified.
[clinic start generated code]*/
static
PyObject
*
builtin_compile_impl
(
PyObject
*
module
,
PyObject
*
source
,
PyObject
*
filename
,
const
char
*
mode
,
int
flags
,
int
dont_inherit
,
int
optimize
,
int
feature_version
)
/*[clinic end generated code: output=b0c09c84f116d3d7 input=d69ec2180ff24031]*/
{
PyObject
*
source_copy
;
const
char
*
str
;
int
compile_mode
=
-1
;
int
is_ast
;
int
start
[]
=
{
Py_file_input
,
Py_eval_input
,
Py_single_input
,
Py_func_type_input
};
PyObject
*
result
;
PyCompilerFlags
cf
=
_PyCompilerFlags_INIT
;
cf
.
cf_flags
=
flags
|
PyCF_SOURCE_IS_UTF8
;
if
(
feature_version
>=
0
&&
(
flags
&
PyCF_ONLY_AST
)) {
cf
.
cf_feature_version
=
feature_version
;
}
if
(
flags
&
~(
PyCF_MASK
|
PyCF_MASK_OBSOLETE
|
PyCF_COMPILE_MASK
))
{
PyErr_SetString
(
PyExc_ValueError
,
"compile(): unrecognised flags"
);
goto
error
;
}
/* XXX Warn if (supplied_flags & PyCF_MASK_OBSOLETE) != 0? */
if
(
optimize
<
-1
||
optimize
>
2
) {
PyErr_SetString
(
PyExc_ValueError
,
"compile(): invalid optimize value"
);
goto
error
;
}
if
(!
dont_inherit
) {
PyEval_MergeCompilerFlags
(
&
cf
);
}
if
(
strcmp
(
mode
,
"exec"
)
==
0
)
compile_mode
=
0
;
else
if
(
strcmp
(
mode
,
"eval"
)
==
0
)
compile_mode
=
1
;
else
if
(
strcmp
(
mode
,
"single"
)
==
0
)
compile_mode
=
2
;
else
if
(
strcmp
(
mode
,
"func_type"
)
==
0
) {
if
(!(
flags
&
PyCF_ONLY_AST
)) {
PyErr_SetString
(
PyExc_ValueError
,
"compile() mode 'func_type' requires flag PyCF_ONLY_AST"
);
goto
error
;
}
compile_mode
=
3
;
}
else
{
const
char
*
msg
;
if
(
flags
&
PyCF_ONLY_AST
)
msg
=
"compile() mode must be 'exec', 'eval', 'single' or 'func_type'"
;
else
msg
=
"compile() mode must be 'exec', 'eval' or 'single'"
;
PyErr_SetString
(
PyExc_ValueError
,
msg
);
goto
error
;
}
is_ast
=
PyAST_Check
(
source
);
if
(
is_ast
==
-1
)
goto
error
;
if
(
is_ast
) {
PyArena
*
arena
=
_PyArena_New
();
if
(
arena
==
NULL
) {
goto
error
;
}
if
(
flags
&
PyCF_ONLY_AST
) {
mod_ty
mod
=
PyAST_obj2mod
(
source
,
arena
,
compile_mode
);
if
(
mod
==
NULL
||
!
_PyAST_Validate
(
mod
)) {
_PyArena_Free
(
arena
);
goto
error
;
}
int
syntax_check_only
=
((
flags
&
PyCF_OPTIMIZED_AST
)
==
PyCF_ONLY_AST
);
/* unoptiomized AST */
if
(
_PyCompile_AstPreprocess
(
mod
,
filename
,
&
cf
,
optimize
,
arena
,
syntax_check_only
)
<
0
) {
_PyArena_Free
(
arena
);
goto
error
;
}
result
=
PyAST_mod2obj
(
mod
);
}
else
{
mod_ty
mod
=
PyAST_obj2mod
(
source
,
arena
,
compile_mode
);
if
(
mod
==
NULL
||
!
_PyAST_Validate
(
mod
)) {
_PyArena_Free
(
arena
);
goto
error
;
}
result
=
(
PyObject
*
)
_PyAST_Compile
(
mod
,
filename
,
&
cf
,
optimize
,
arena
);
}
_PyArena_Free
(
arena
);
goto
finally
;
}
str
=
_Py_SourceAsString
(
source
,
"compile"
,
"string, bytes or AST"
,
&
cf
,
&
source_copy
);
if
(
str
==
NULL
)
goto
error
;
#ifdef
Py_GIL_DISABLED
// Disable immortalization of code constants for explicit
// compile() calls to get consistent frozen outputs between the default
// and free-threaded builds.
_PyThreadStateImpl
*
tstate
=
(
_PyThreadStateImpl
*
)
_PyThreadState_GET
();
tstate
->
suppress_co_const_immortalization
++
;
#endif
result
=
Py_CompileStringObject
(
str
,
filename
,
start
[
compile_mode
],
&
cf
,
optimize
);
#ifdef
Py_GIL_DISABLED
tstate
->
suppress_co_const_immortalization
--
;
#endif
Py_XDECREF
(
source_copy
);
goto
finally
;
error
:
result
=
NULL
;
finally
:
return
result
;
}
/* AC: cannot convert yet, as needs PEP 457 group support in inspect */
static
PyObject
*
builtin_dir
(
PyObject
*
self
,
PyObject
*
args
)
{
PyObject
*
arg
=
NULL
;
if
(!
PyArg_UnpackTuple
(
args
,
"dir"
,
0
,
1
,
&
arg
))
return
NULL
;
return
PyObject_Dir
(
arg
);
}
PyDoc_STRVAR
(
dir_doc
,
"dir([object]) -> list of strings\n"
"\n"
"If called without an argument, return the names in the current scope.\n"
"Else, return an alphabetized list of names comprising (some of) the\n"
"attributes of the given object, and of attributes reachable from it.\n"
"If the object supplies a method named __dir__, it will be used;\n"
"otherwise the default dir() logic is used and returns:\n"
" for a module object: the module's attributes.\n"
" for a class object: its attributes, and recursively the attributes\n"
" of its bases.\n"
" for any other object: its attributes, its class's attributes, and\n"
" recursively the attributes of its class's base classes."
);
/*[clinic input]
divmod as builtin_divmod
x: object
y: object
/
Return the tuple (x//y, x%y). Invariant: div*y + mod == x.
[clinic start generated code]*/
static
PyObject
*
builtin_divmod_impl
(
PyObject
*
module
,
PyObject
*
x
,
PyObject
*
y
)
/*[clinic end generated code: output=b06d8a5f6e0c745e input=175ad9c84ff41a85]*/
{
return
PyNumber_Divmod
(
x
,
y
);
}
/*[clinic input]
eval as builtin_eval
source: object
/
globals: object = None
locals: object = None
Evaluate the given source in the context of globals and locals.
The source may be a string representing a Python expression
or a code object as returned by compile().
The globals must be a dictionary and locals can be any mapping,
defaulting to the current globals and locals.
If only globals is given, locals defaults to it.
[clinic start generated code]*/
static
PyObject
*
builtin_eval_impl
(
PyObject
*
module
,
PyObject
*
source
,
PyObject
*
globals
,
PyObject
*
locals
)
/*[clinic end generated code: output=0a0824aa70093116 input=7c7bce5299a89062]*/
{
PyThreadState
*
tstate
=
_PyThreadState_GET
();
PyObject
*
result
=
NULL
,
*
source_copy
;
const
char
*
str
;
if
(
locals
!=
Py_None
&&
!
PyMapping_Check
(
locals
)) {
PyErr_SetString
(
PyExc_TypeError
,
"locals must be a mapping"
);
return
NULL
;
}
if
(
globals
!=
Py_None
&&
!
PyDict_Check
(
globals
)) {
PyErr_SetString
(
PyExc_TypeError
,
PyMapping_Check
(
globals
) ?
"globals must be a real dict; try eval(expr, {}, mapping)"
:
"globals must be a dict"
);
return
NULL
;
}
int
fromframe
=
0
;
if
(
globals
!=
Py_None
) {
Py_INCREF
(
globals
);
}
else
if
(
_PyEval_GetFrame
()
!=
NULL
) {
fromframe
=
1
;
globals
=
PyEval_GetGlobals
();
assert
(
globals
!=
NULL
);
Py_INCREF
(
globals
);
}
else
{
globals
=
_PyEval_GetGlobalsFromRunningMain
(
tstate
);
if
(
globals
==
NULL
) {
if
(!
_PyErr_Occurred
(
tstate
)) {
PyErr_SetString
(
PyExc_TypeError
,
"eval must be given globals and locals "
"when called without a frame"
);
}
return
NULL
;
}
Py_INCREF
(
globals
);
}
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