This instance of PyTypeObject represents the Python module type. This
is exposed to Python programs as types.ModuleType.
Return true if p is a module object, or a subtype of a module object. This function always succeeds.
Return true if p is a module object, but not a subtype of
PyModule_Type. This function always succeeds.
Return a new module object with module.__name__ set to name.
The module’s __name__, __doc__,
__package__ and __loader__ attributes are
filled in (all but __name__ are set to None). The caller is
responsible for setting a __file__ attribute.
Return NULL with an exception set on error.
Added in version 3.3.
Changed in version 3.4: __package__ and __loader__ are now set to
None.
Similar to PyModule_NewObject(), but the name is a UTF-8 encoded
string instead of a Unicode object.
Return the dictionary object that implements module’s namespace; this object
is the same as the __dict__ attribute of the module object.
If module is not a module object (or a subtype of a module object),
SystemError is raised and NULL is returned.
It is recommended extensions use other PyModule_* and
PyObject_* functions rather than directly manipulate a module’s
__dict__.
The returned reference is borrowed from the module; it is valid until the module is destroyed.
Return module’s __name__ value. If the module does not
provide one, or if it is not a string, SystemError is raised and
NULL is returned.
Added in version 3.3.
Similar to PyModule_GetNameObject() but return the name encoded to
'utf-8'.
The returned buffer is only valid until the module is renamed or destroyed.
Note that Python code may rename a module by setting its __name__
attribute.
Return the “state” of the module, that is, a pointer to the block of memory
allocated at module creation time, or NULL. See
PyModuleDef.m_size.
Return a pointer to the PyModuleDef struct from which the module was
created, or NULL if the module wasn’t created from a definition.
On error, return NULL with an exception set.
Use PyErr_Occurred() to tell this case apart from a missing
PyModuleDef.
Return the name of the file from which module was loaded using module’s
__file__ attribute. If this is not defined, or if it is not a
string, raise SystemError and return NULL; otherwise return
a reference to a Unicode object.
Added in version 3.2.
Similar to PyModule_GetFilenameObject() but return the filename
encoded to ‘utf-8’.
The returned buffer is only valid until the module’s __file__ attribute
is reassigned or the module is destroyed.
Deprecated since version 3.2: PyModule_GetFilename() raises UnicodeEncodeError on
unencodable filenames, use PyModule_GetFilenameObject() instead.
The functions in the previous section work on any module object, including modules imported from Python code.
Modules defined using the C API typically use a module definition,
PyModuleDef – a statically allocated, constant “description” of
how a module should be created.
The definition is usually used to define an extension’s “main” module object (see Defining extension modules for details). It is also used to create extension modules dynamically.
Unlike PyModule_New(), the definition allows management of
module state – a piece of memory that is allocated and cleared together
with the module object.
Unlike the module’s Python attributes, Python code cannot replace or delete
data stored in module state.
The module definition struct, which holds all information needed to create a module object. This structure must be statically allocated (or be otherwise guaranteed to be valid while any modules created from it exist). Usually, there is only one variable of this type for each extension module.
Always initialize this member to PyModuleDef_HEAD_INIT.
Name for the new module.
Docstring for the module; usually a docstring variable created with
PyDoc_STRVAR is used.
Module state may be kept in a per-module memory area that can be
retrieved with PyModule_GetState(), rather than in static globals.
This makes modules safe for use in multiple sub-interpreters.
This memory area is allocated based on m_size on module creation,
and freed when the module object is deallocated, after the
m_free function has been called, if present.
Setting it to a non-negative value means that the module can be re-initialized and specifies the additional amount of memory it requires for its state.
Setting m_size to -1 means that the module does not support
sub-interpreters, because it has global state.
Negative m_size is only allowed when using
legacy single-phase initialization
or when creating modules dynamically.
See PEP 3121 for more details.
A pointer to a table of module-level functions, described by
PyMethodDef values. Can be NULL if no functions are present.
An array of slot definitions for multi-phase initialization, terminated by
a {0, NULL} entry.
When using legacy single-phase initialization, m_slots must be NULL.
A traversal function to call during GC traversal of the module object, or
NULL if not needed.
This function is not called if the module state was requested but is not
allocated yet. This is the case immediately after the module is created
and before the module is executed (Py_mod_exec function). More
precisely, this function is not called if m_size is greater
than 0 and the module state (as returned by PyModule_GetState())
is NULL.
Changed in version 3.9: No longer called before the module state is allocated.
A clear function to call during GC clearing of the module object, or
NULL if not needed.
This function is not called if the module state was requested but is not
allocated yet. This is the case immediately after the module is created
and before the module is executed (Py_mod_exec function). More
precisely, this function is not called if m_size is greater
than 0 and the module state (as returned by PyModule_GetState())
is NULL.
Like PyTypeObject.tp_clear, this function is not always
called before a module is deallocated. For example, when reference
counting is enough to determine that an object is no longer used,
the cyclic garbage collector is not involved and
m_free is called directly.
Changed in version 3.9: No longer called before the module state is allocated.
A function to call during deallocation of the module object, or NULL
if not needed.
This function is not called if the module state was requested but is not
allocated yet. This is the case immediately after the module is created
and before the module is executed (Py_mod_exec function). More
precisely, this function is not called if m_size is greater
than 0 and the module state (as returned by PyModule_GetState())
is NULL.
Changed in version 3.9: No longer called before the module state is allocated.
The type of PyModuleDef objects.
A slot ID, chosen from the available values explained below.
Value of the slot, whose meaning depends on the slot ID.
Added in version 3.5.
The available slot types are:
Specifies a function that is called to create the module object itself. The value pointer of this slot must point to a function of the signature:
The function receives a ModuleSpec
instance, as defined in PEP 451, and the module definition.
It should return a new module object, or set an error
and return NULL.
This function should be kept minimal. In particular, it should not call arbitrary Python code, as trying to import the same module again may result in an infinite loop.
Multiple Py_mod_create slots may not be specified in one module
definition.
If Py_mod_create is not specified, the import machinery will create
a normal module object using PyModule_New(). The name is taken from
spec, not the definition, to allow extension modules to dynamically adjust
to their place in the module hierarchy and be imported under different
names through symlinks, all while sharing a single module definition.
There is no requirement for the returned object to be an instance of
PyModule_Type. Any type can be used, as long as it supports
setting and getting import-related attributes.
However, only PyModule_Type instances may be returned if the
PyModuleDef has non-NULL m_traverse, m_clear,
m_free; non-zero m_size; or slots other than Py_mod_create.
Added in version 3.5.
Specifies a function that is called to execute the module. This is equivalent to executing the code of a Python module: typically, this function adds classes and constants to the module. The signature of the function is:
If multiple Py_mod_exec slots are specified, they are processed in the
order they appear in the m_slots array.
Added in version 3.5.
Specifies one of the following values:
The module does not support being imported in subinterpreters.
The module supports being imported in subinterpreters, but only when they share the main interpreter’s GIL. (See Isolating Extension Modules.)
The module supports being imported in subinterpreters, even when they have their own GIL. (See Isolating Extension Modules.)
This slot determines whether or not importing this module in a subinterpreter will fail.
Multiple Py_mod_multiple_interpreters slots may not be specified
in one module definition.
If Py_mod_multiple_interpreters is not specified, the import
machinery defaults to Py_MOD_MULTIPLE_INTERPRETERS_SUPPORTED.
Added in version 3.12.
Specifies one of the following values:
The module depends on the presence of the global interpreter lock (GIL), and may access global state without synchronization.
The module is safe to run without an active GIL.
This slot is ignored by Python builds not configured with
--disable-gil. Otherwise, it determines whether or not importing
this module will cause the GIL to be automatically enabled. See
Free-threaded CPython for more detail.
Multiple Py_mod_gil slots may not be specified in one module definition.
If Py_mod_gil is not specified, the import machinery defaults to
Py_MOD_GIL_USED.
Added in version 3.13.
The following functions may be used to create a module outside of an extension’s initialization function. They are also used in single-phase initialization.
Create a new module object, given the definition in def.
This is a macro that calls PyModule_Create2() with
module_api_version set to PYTHON_API_VERSION, or
to PYTHON_ABI_VERSION if using the
limited API.
Create a new module object, given the definition in def, assuming the
API version module_api_version. If that version does not match the version
of the running interpreter, a RuntimeWarning is emitted.
Return NULL with an exception set on error.
This function does not support slots.
The m_slots member of def must be NULL.
Note
Most uses of this function should be using PyModule_Create()
instead; only use this if you are sure you need it.
This macro calls PyModule_FromDefAndSpec2() with
module_api_version set to PYTHON_API_VERSION, or
to PYTHON_ABI_VERSION if using the
limited API.
Added in version 3.5.
Create a new module object, given the definition in def and the
ModuleSpec spec, assuming the API version module_api_version.
If that version does not match the version of the running interpreter,
a RuntimeWarning is emitted.
Return NULL with an exception set on error.
Note that this does not process execution slots (Py_mod_exec).
Both PyModule_FromDefAndSpec and PyModule_ExecDef must be called
to fully initialize a module.
Note
Most uses of this function should be using PyModule_FromDefAndSpec()
instead; only use this if you are sure you need it.
Added in version 3.5.
Process any execution slots (Py_mod_exec) given in def.
Added in version 3.5.
The C API version. Defined for backwards compatibility.
Currently, this constant is not updated in new Python versions, and is not useful for versioning. This may change in the future.
Defined as 3 for backwards compatibility.
Currently, this constant is not updated in new Python versions, and is not useful for versioning. This may change in the future.
The following functions are provided to help initialize a module
state.
They are intended for a module’s execution slots (Py_mod_exec),
the initialization function for legacy single-phase initialization,
or code that creates modules dynamically.
Add an object to module as name. This is a convenience function which can be used from the module’s initialization function.
On success, return 0. On error, raise an exception and return -1.
Example usage:
static int
add_spam(PyObject *module, int value)
{
PyObject *obj = PyLong_FromLong(value);
if (obj == NULL) {
return -1;
}
int res = PyModule_AddObjectRef(module, "spam", obj);
Py_DECREF(obj);
return res;
}
To be convenient, the function accepts NULL value with an exception
set. In this case, return -1 and just leave the raised exception
unchanged.
The example can also be written without checking explicitly if obj is
NULL:
static int
add_spam(PyObject *module, int value)
{
PyObject *obj = PyLong_FromLong(value);
int res = PyModule_AddObjectRef(module, "spam", obj);
Py_XDECREF(obj);
return res;
}
Note that Py_XDECREF() should be used instead of Py_DECREF() in
this case, since obj can be NULL.
The number of different name strings passed to this function
should be kept small, usually by only using statically allocated strings
as name.
For names that aren’t known at compile time, prefer calling
PyUnicode_FromString() and PyObject_SetAttr() directly.
For more details, see PyUnicode_InternFromString(), which may be
used internally to create a key object.
Added in version 3.10.
Similar to PyModule_AddObjectRef(), but “steals”
a reference to value (even on error).
It can be called with a result of function that returns a new reference
without bothering to check its result or even saving it to a variable.
Example usage:
if (PyModule_Add(module, "spam", PyBytes_FromString(value)) < 0) {
goto error;
}
Added in version 3.13.
Similar to PyModule_AddObjectRef(), but steals
a reference to value on success (if it returns 0).
The new PyModule_Add() or PyModule_AddObjectRef()
functions are recommended, since it is
easy to introduce reference leaks by misusing the
PyModule_AddObject() function.
Note
Unlike other functions that steal references, PyModule_AddObject()
only releases the reference to value on success.
This means that its return value must be checked, and calling code must
Py_XDECREF() value manually on error.
Example usage:
PyObject *obj = PyBytes_FromString(value);
if (PyModule_AddObject(module, "spam", obj) < 0) {
// If 'obj' is not NULL and PyModule_AddObject() failed,
// 'obj' strong reference must be deleted with Py_XDECREF().
// If 'obj' is NULL, Py_XDECREF() does nothing.
Py_XDECREF(obj);
goto error;
}
// PyModule_AddObject() stole a reference to obj:
// Py_XDECREF(obj) is not needed here.
Soft deprecated since version 3.13.
Add an integer constant to module as name. This convenience function can be
used from the module’s initialization function.
Return -1 with an exception set on error, 0 on success.
This is a convenience function that calls PyLong_FromLong() and
PyModule_AddObjectRef(); see their documentation for details.
Add a string constant to module as name. This convenience function can be
used from the module’s initialization function. The string value must be
NULL-terminated.
Return -1 with an exception set on error, 0 on success.
This is a convenience function that calls
PyUnicode_InternFromString() and PyModule_AddObjectRef();
see their documentation for details.
Add an int constant to module. The name and the value are taken from
macro. For example PyModule_AddIntMacro(module, AF_INET) adds the int
constant AF_INET with the value of AF_INET to module.
Return -1 with an exception set on error, 0 on success.
Add a string constant to module.
Add a type object to module.
The type object is finalized by calling internally PyType_Ready().
The name of the type object is taken from the last component of
tp_name after dot.
Return -1 with an exception set on error, 0 on success.
Added in version 3.9.
Add the functions from the NULL terminated functions array to module.
Refer to the PyMethodDef documentation for details on individual
entries (due to the lack of a shared module namespace, module level
“functions” implemented in C typically receive the module as their first
parameter, making them similar to instance methods on Python classes).
This function is called automatically when creating a module from
PyModuleDef (such as when using Multi-phase initialization,
PyModule_Create, or PyModule_FromDefAndSpec).
Some module authors may prefer defining functions in multiple
PyMethodDef arrays; in that case they should call this function
directly.
The functions array must be statically allocated (or otherwise guaranteed to outlive the module object).
Added in version 3.5.
Set the docstring for module to docstring.
This function is called automatically when creating a module from
PyModuleDef (such as when using Multi-phase initialization,
PyModule_Create, or PyModule_FromDefAndSpec).
Return 0 on success.
Return -1 with an exception set on error.
Added in version 3.5.
Indicate that module does or does not support running without the global
interpreter lock (GIL), using one of the values from
Py_mod_gil. It must be called during module’s initialization
function when using Legacy single-phase initialization.
If this function is not called during module initialization, the
import machinery assumes the module does not support running without the
GIL. This function is only available in Python builds configured with
--disable-gil.
Return -1 with an exception set on error, 0 on success.
Added in version 3.13.
The legacy single-phase initialization initialization scheme creates singleton modules that can be looked up in the context of the current interpreter. This allows the module object to be retrieved later with only a reference to the module definition.
These functions will not work on modules created using multi-phase initialization, since multiple such modules can be created from a single definition.
Returns the module object that was created from def for the current interpreter.
This method requires that the module object has been attached to the interpreter state with
PyState_AddModule() beforehand. In case the corresponding module object is not
found or has not been attached to the interpreter state yet, it returns NULL.
Attaches the module object passed to the function to the interpreter state. This allows
the module object to be accessible via PyState_FindModule().
Only effective on modules created using single-phase initialization.
Python calls PyState_AddModule automatically after importing a module
that uses single-phase initialization,
so it is unnecessary (but harmless) to call it from module initialization
code. An explicit call is needed only if the module’s own init code
subsequently calls PyState_FindModule.
The function is mainly intended for implementing alternative import
mechanisms (either by calling it directly, or by referring to its
implementation for details of the required state updates).
If a module was attached previously using the same def, it is replaced by the new module.
The caller must have an attached thread state.
Return -1 with an exception set on error, 0 on success.
Added in version 3.3.
Removes the module object created from def from the interpreter state.
Return -1 with an exception set on error, 0 on success.
The caller must have an attached thread state.
Added in version 3.3.