/opt/imh/python3.13/include/python3.13
NameSizeModeActions
cpython/-0755rm
internal/-0755rm
abstract.h327540644editdlrm
bltinmodule.h2640644editdlrm
boolobject.h16050644editdlrm
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bytesobject.h25690644editdlrm
ceval.h51190644editdlrm
codecs.h54350644editdlrm
compile.h4480644editdlrm
complexobject.h7280644editdlrm
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datetime.h97690644editdlrm
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dictobject.h43810644editdlrm
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errcode.h19740644editdlrm
exports.h45950644editdlrm
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fileutils.h14190644editdlrm
floatobject.h15320644editdlrm
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import.h32350644editdlrm
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iterobject.h5250644editdlrm
listobject.h19180644editdlrm
lock.h2420644editdlrm
longobject.h38930644editdlrm
marshal.h8270644editdlrm
memoryobject.h10810644editdlrm
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modsupport.h56360644editdlrm
moduleobject.h36790644editdlrm
monitoring.h3310644editdlrm
object.h476390644editdlrm
objimpl.h83800644editdlrm
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pymacconfig.h24970644editdlrm
pymacro.h73550644editdlrm
pymath.h16880644editdlrm
pymem.h44380644editdlrm
pyport.h202940644editdlrm
pystate.h46340644editdlrm
pystats.h5960644editdlrm
pystrcmp.h4360644editdlrm
pystrtod.h12470644editdlrm
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pythonrun.h13130644editdlrm
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pytypedefs.h8510644editdlrm
py_curses.h35090644editdlrm
rangeobject.h6300644editdlrm
setobject.h15570644editdlrm
sliceobject.h26620644editdlrm
structmember.h16450644editdlrm
structseq.h13080644editdlrm
sysmodule.h12510644editdlrm
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weakrefobject.h13910644editdlrm
Edit: /opt/imh/python3.13/include/python3.13/pymem.h (4438B)
// The PyMem_ family: low-level memory allocation interfaces. // See objimpl.h for the PyObject_ memory family. #ifndef Py_PYMEM_H #define Py_PYMEM_H #ifdef __cplusplus extern "C" { #endif /* BEWARE: Each interface exports both functions and macros. Extension modules should use the functions, to ensure binary compatibility across Python versions. Because the Python implementation is free to change internal details, and the macros may (or may not) expose details for speed, if you do use the macros you must recompile your extensions with each Python release. Never mix calls to PyMem_ with calls to the platform malloc/realloc/ calloc/free. For example, on Windows different DLLs may end up using different heaps, and if you use PyMem_Malloc you'll get the memory from the heap used by the Python DLL; it could be a disaster if you free()'ed that directly in your own extension. Using PyMem_Free instead ensures Python can return the memory to the proper heap. As another example, in a debug build (Py_DEBUG macro), Python wraps all calls to all PyMem_ and PyObject_ memory functions in special debugging wrappers that add additional debugging info to dynamic memory blocks. The system routines have no idea what to do with that stuff, and the Python wrappers have no idea what to do with raw blocks obtained directly by the system routines then. The GIL must be held when using these APIs. */ /* * Raw memory interface * ==================== */ /* Functions Functions supplying platform-independent semantics for malloc/realloc/ free. These functions make sure that allocating 0 bytes returns a distinct non-NULL pointer (whenever possible -- if we're flat out of memory, NULL may be returned), even if the platform malloc and realloc don't. Returned pointers must be checked for NULL explicitly. No action is performed on failure (no exception is set, no warning is printed, etc). */ PyAPI_FUNC(void *) PyMem_Malloc(size_t size); PyAPI_FUNC(void *) PyMem_Calloc(size_t nelem, size_t elsize); PyAPI_FUNC(void *) PyMem_Realloc(void *ptr, size_t new_size); PyAPI_FUNC(void) PyMem_Free(void *ptr); /* * Type-oriented memory interface * ============================== * * Allocate memory for n objects of the given type. Returns a new pointer * or NULL if the request was too large or memory allocation failed. Use * these macros rather than doing the multiplication yourself so that proper * overflow checking is always done. */ #define PyMem_New(type, n) \ ( ((size_t)(n) > PY_SSIZE_T_MAX / sizeof(type)) ? NULL : \ ( (type *) PyMem_Malloc((n) * sizeof(type)) ) ) /* * The value of (p) is always clobbered by this macro regardless of success. * The caller MUST check if (p) is NULL afterwards and deal with the memory * error if so. This means the original value of (p) MUST be saved for the * caller's memory error handler to not lose track of it. */ #define PyMem_Resize(p, type, n) \ ( (p) = ((size_t)(n) > PY_SSIZE_T_MAX / sizeof(type)) ? NULL : \ (type *) PyMem_Realloc((p), (n) * sizeof(type)) ) // Deprecated aliases only kept for backward compatibility. // PyMem_Del and PyMem_DEL are defined with no parameter to be able to use // them as function pointers (ex: dealloc = PyMem_Del). #define PyMem_MALLOC(n) PyMem_Malloc((n)) #define PyMem_NEW(type, n) PyMem_New(type, (n)) #define PyMem_REALLOC(p, n) PyMem_Realloc((p), (n)) #define PyMem_RESIZE(p, type, n) PyMem_Resize((p), type, (n)) #define PyMem_FREE(p) PyMem_Free((p)) #define PyMem_Del(p) PyMem_Free((p)) #define PyMem_DEL(p) PyMem_Free((p)) #if !defined(Py_LIMITED_API) || Py_LIMITED_API+0 >= 0x030d0000 // Memory allocator which doesn't require the GIL to be held. // Usually, it's just a thin wrapper to functions of the standard C library: // malloc(), calloc(), realloc() and free(). The difference is that // tracemalloc can track these memory allocations. PyAPI_FUNC(void *) PyMem_RawMalloc(size_t size); PyAPI_FUNC(void *) PyMem_RawCalloc(size_t nelem, size_t elsize); PyAPI_FUNC(void *) PyMem_RawRealloc(void *ptr, size_t new_size); PyAPI_FUNC(void) PyMem_RawFree(void *ptr); #endif #ifndef Py_LIMITED_API # define Py_CPYTHON_PYMEM_H # include "cpython/pymem.h" # undef Py_CPYTHON_PYMEM_H #endif #ifdef __cplusplus } #endif #endif // !Py_PYMEM_H