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svn+ssh://pythondev@svn.python.org/python/trunk ........ r64114 | gregory.p.smith | 2008-06-11 09:41:16 +0200 (mer., 11 juin 2008) | 6 lines Merge in release25-maint r60793: Added checks for integer overflows, contributed by Google. Some are only available if asserts are left in the code, in cases where they can't be triggered from Python code. ........
606 lines
18 KiB
C
606 lines
18 KiB
C
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/* Memoryview object implementation */
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#include "Python.h"
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static int
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memory_getbuf(PyMemoryViewObject *self, Py_buffer *view, int flags)
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{
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if (view != NULL)
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*view = self->view;
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if (self->base == NULL)
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return 0;
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return self->base->ob_type->tp_as_buffer->bf_getbuffer(self->base, NULL,
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PyBUF_FULL);
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}
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static void
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memory_releasebuf(PyMemoryViewObject *self, Py_buffer *view)
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{
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if (self->base != NULL)
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PyObject_ReleaseBuffer(self->base, NULL);
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}
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PyDoc_STRVAR(memory_doc,
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"memoryview(object)\n\
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\n\
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Create a new memoryview object which references the given object.");
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PyObject *
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PyMemoryView_FromMemory(Py_buffer *info)
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{
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PyMemoryViewObject *mview;
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mview = (PyMemoryViewObject *)PyObject_New(PyMemoryViewObject,
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&PyMemoryView_Type);
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if (mview == NULL) return NULL;
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mview->base = NULL;
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mview->view = *info;
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return (PyObject *)mview;
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}
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PyObject *
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PyMemoryView_FromObject(PyObject *base)
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{
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PyMemoryViewObject *mview;
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if (!PyObject_CheckBuffer(base)) {
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PyErr_SetString(PyExc_TypeError,
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"cannot make memory view because object does "
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"not have the buffer interface");
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return NULL;
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}
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mview = (PyMemoryViewObject *)PyObject_New(PyMemoryViewObject,
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&PyMemoryView_Type);
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if (mview == NULL) return NULL;
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mview->base = NULL;
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if (PyObject_GetBuffer(base, &(mview->view), PyBUF_FULL) < 0) {
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Py_DECREF(mview);
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return NULL;
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}
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mview->base = base;
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Py_INCREF(base);
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return (PyObject *)mview;
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}
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static PyObject *
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memory_new(PyTypeObject *subtype, PyObject *args, PyObject *kwds)
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{
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PyObject *obj;
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static char *kwlist[] = {"object", 0};
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if (!PyArg_ParseTupleAndKeywords(args, kwds, "O:memoryview", kwlist,
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&obj)) {
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return NULL;
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}
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return PyMemoryView_FromObject(obj);
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}
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static void
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_strided_copy_nd(char *dest, char *src, int nd, Py_ssize_t *shape,
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Py_ssize_t *strides, Py_ssize_t itemsize, char fort)
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{
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int k;
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Py_ssize_t outstride;
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if (nd==0) {
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memcpy(dest, src, itemsize);
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}
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else if (nd == 1) {
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for (k = 0; k<shape[0]; k++) {
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memcpy(dest, src, itemsize);
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dest += itemsize;
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src += strides[0];
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}
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}
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else {
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if (fort == 'F') {
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/* Copy first dimension first,
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second dimension second, etc...
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Set up the recursive loop backwards so that final
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dimension is actually copied last.
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*/
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outstride = itemsize;
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for (k=1; k<nd-1;k++) {
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outstride *= shape[k];
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}
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for (k=0; k<shape[nd-1]; k++) {
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_strided_copy_nd(dest, src, nd-1, shape,
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strides, itemsize, fort);
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dest += outstride;
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src += strides[nd-1];
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}
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}
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else {
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/* Copy last dimension first,
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second-to-last dimension second, etc.
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Set up the recursion so that the
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first dimension is copied last
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*/
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outstride = itemsize;
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for (k=1; k < nd; k++) {
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outstride *= shape[k];
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}
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for (k=0; k<shape[0]; k++) {
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_strided_copy_nd(dest, src, nd-1, shape+1,
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strides+1, itemsize,
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fort);
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dest += outstride;
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src += strides[0];
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}
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}
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}
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return;
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}
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void _add_one_to_index_F(int nd, Py_ssize_t *index, Py_ssize_t *shape);
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void _add_one_to_index_C(int nd, Py_ssize_t *index, Py_ssize_t *shape);
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static int
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_indirect_copy_nd(char *dest, Py_buffer *view, char fort)
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{
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Py_ssize_t *indices;
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int k;
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Py_ssize_t elements;
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char *ptr;
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void (*func)(int, Py_ssize_t *, Py_ssize_t *);
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if (view->ndim > PY_SSIZE_T_MAX / sizeof(Py_ssize_t)) {
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PyErr_NoMemory();
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return -1;
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}
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indices = (Py_ssize_t *)PyMem_Malloc(sizeof(Py_ssize_t)*view->ndim);
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if (indices == NULL) {
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PyErr_NoMemory();
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return -1;
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}
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for (k=0; k<view->ndim;k++) {
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indices[k] = 0;
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}
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elements = 1;
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for (k=0; k<view->ndim; k++) {
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elements *= view->shape[k];
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}
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if (fort == 'F') {
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func = _add_one_to_index_F;
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}
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else {
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func = _add_one_to_index_C;
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}
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while (elements--) {
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func(view->ndim, indices, view->shape);
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ptr = PyBuffer_GetPointer(view, indices);
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memcpy(dest, ptr, view->itemsize);
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dest += view->itemsize;
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}
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PyMem_Free(indices);
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return 0;
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}
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/*
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Get a the data from an object as a contiguous chunk of memory (in
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either 'C' or 'F'ortran order) even if it means copying it into a
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separate memory area.
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Returns a new reference to a Memory view object. If no copy is needed,
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the memory view object points to the original memory and holds a
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lock on the original. If a copy is needed, then the memory view object
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points to a brand-new Bytes object (and holds a memory lock on it).
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buffertype
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PyBUF_READ buffer only needs to be read-only
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PyBUF_WRITE buffer needs to be writable (give error if not contiguous)
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PyBUF_SHADOW buffer needs to be writable so shadow it with
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a contiguous buffer if it is not. The view will point to
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the shadow buffer which can be written to and then
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will be copied back into the other buffer when the memory
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view is de-allocated. While the shadow buffer is
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being used, it will have an exclusive write lock on
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the original buffer.
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*/
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PyObject *
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PyMemoryView_GetContiguous(PyObject *obj, int buffertype, char fort)
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{
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PyMemoryViewObject *mem;
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PyObject *bytes;
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Py_buffer *view;
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int flags;
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char *dest;
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if (!PyObject_CheckBuffer(obj)) {
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PyErr_SetString(PyExc_TypeError,
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"object does not have the buffer interface");
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return NULL;
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}
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mem = PyObject_New(PyMemoryViewObject, &PyMemoryView_Type);
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if (mem == NULL) return NULL;
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view = &PyMemoryView(mem);
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flags = PyBUF_FULL_RO;
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switch(buffertype) {
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case PyBUF_WRITE:
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flags = PyBUF_FULL;
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break;
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}
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if (PyObject_GetBuffer(obj, view, flags) != 0) {
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PyObject_DEL(mem);
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return NULL;
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}
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if (PyBuffer_IsContiguous(view, fort)) {
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/* no copy needed */
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Py_INCREF(obj);
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mem->base = obj;
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return (PyObject *)mem;
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}
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/* otherwise a copy is needed */
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if (buffertype == PyBUF_WRITE) {
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PyObject_DEL(mem);
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PyErr_SetString(PyExc_BufferError,
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"writable contiguous buffer requested "
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"for a non-contiguousobject.");
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return NULL;
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}
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bytes = PyByteArray_FromStringAndSize(NULL, view->len);
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if (bytes == NULL) {
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PyObject_ReleaseBuffer(obj, view);
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return NULL;
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}
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dest = PyByteArray_AS_STRING(bytes);
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/* different copying strategy depending on whether
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or not any pointer de-referencing is needed
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*/
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/* strided or in-direct copy */
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if (view->suboffsets==NULL) {
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_strided_copy_nd(dest, view->buf, view->ndim, view->shape,
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view->strides, view->itemsize, fort);
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}
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else {
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if (_indirect_copy_nd(dest, view, fort) < 0) {
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Py_DECREF(bytes);
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PyObject_ReleaseBuffer(obj, view);
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return NULL;
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}
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}
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if (buffertype == PyBUF_SHADOW) {
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/* return a shadowed memory-view object */
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view->buf = dest;
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mem->base = PyTuple_Pack(2, obj, bytes);
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Py_DECREF(bytes);
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if (mem->base == NULL) {
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PyObject_ReleaseBuffer(obj, view);
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return NULL;
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}
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}
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else {
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PyObject_ReleaseBuffer(obj, view);
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/* steal the reference */
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mem->base = bytes;
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}
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return (PyObject *)mem;
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}
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static PyObject *
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memory_format_get(PyMemoryViewObject *self)
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{
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return PyUnicode_FromString(self->view.format);
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}
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static PyObject *
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memory_itemsize_get(PyMemoryViewObject *self)
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{
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return PyLong_FromSsize_t(self->view.itemsize);
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}
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static PyObject *
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_IntTupleFromSsizet(int len, Py_ssize_t *vals)
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{
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int i;
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PyObject *o;
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PyObject *intTuple;
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if (vals == NULL) {
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Py_INCREF(Py_None);
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return Py_None;
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}
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intTuple = PyTuple_New(len);
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if (!intTuple) return NULL;
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for(i=0; i<len; i++) {
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o = PyLong_FromSsize_t(vals[i]);
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if (!o) {
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Py_DECREF(intTuple);
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return NULL;
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}
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PyTuple_SET_ITEM(intTuple, i, o);
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}
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return intTuple;
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}
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static PyObject *
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memory_shape_get(PyMemoryViewObject *self)
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{
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return _IntTupleFromSsizet(self->view.ndim, self->view.shape);
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}
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static PyObject *
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memory_strides_get(PyMemoryViewObject *self)
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{
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return _IntTupleFromSsizet(self->view.ndim, self->view.strides);
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}
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static PyObject *
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memory_suboffsets_get(PyMemoryViewObject *self)
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{
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return _IntTupleFromSsizet(self->view.ndim, self->view.suboffsets);
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}
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static PyObject *
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memory_size_get(PyMemoryViewObject *self)
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{
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return PyLong_FromSsize_t(self->view.len);
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}
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static PyObject *
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memory_readonly_get(PyMemoryViewObject *self)
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{
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return PyBool_FromLong(self->view.readonly);
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}
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static PyObject *
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memory_ndim_get(PyMemoryViewObject *self)
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{
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return PyLong_FromLong(self->view.ndim);
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}
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static PyGetSetDef memory_getsetlist[] ={
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{"format", (getter)memory_format_get, NULL, NULL},
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{"itemsize", (getter)memory_itemsize_get, NULL, NULL},
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{"shape", (getter)memory_shape_get, NULL, NULL},
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{"strides", (getter)memory_strides_get, NULL, NULL},
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{"suboffsets", (getter)memory_suboffsets_get, NULL, NULL},
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{"size", (getter)memory_size_get, NULL, NULL},
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{"readonly", (getter)memory_readonly_get, NULL, NULL},
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{"ndim", (getter)memory_ndim_get, NULL, NULL},
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{NULL, NULL, NULL, NULL},
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};
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static PyObject *
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memory_tobytes(PyMemoryViewObject *mem, PyObject *noargs)
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{
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return PyByteArray_FromObject((PyObject *)mem);
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}
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static PyObject *
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memory_tolist(PyMemoryViewObject *mem, PyObject *noargs)
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{
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/* This should construct a (nested) list of unpacked objects
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possibly using the struct module.
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*/
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Py_INCREF(Py_NotImplemented);
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return Py_NotImplemented;
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}
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static PyMethodDef memory_methods[] = {
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{"tobytes", (PyCFunction)memory_tobytes, METH_NOARGS, NULL},
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{"tolist", (PyCFunction)memory_tolist, METH_NOARGS, NULL},
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{NULL, NULL} /* sentinel */
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};
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static void
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memory_dealloc(PyMemoryViewObject *self)
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{
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if (self->base != NULL) {
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if (PyTuple_Check(self->base)) {
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/* Special case when first element is generic object
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with buffer interface and the second element is a
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contiguous "shadow" that must be copied back into
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the data areay of the first tuple element before
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releasing the buffer on the first element.
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*/
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PyObject_CopyData(PyTuple_GET_ITEM(self->base,0),
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PyTuple_GET_ITEM(self->base,1));
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/* The view member should have readonly == -1 in
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this instance indicating that the memory can
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be "locked" and was locked and will be unlocked
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again after this call.
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*/
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PyObject_ReleaseBuffer(PyTuple_GET_ITEM(self->base,0),
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&(self->view));
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}
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else {
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PyObject_ReleaseBuffer(self->base, &(self->view));
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}
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Py_CLEAR(self->base);
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}
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PyObject_DEL(self);
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}
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static PyObject *
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memory_repr(PyMemoryViewObject *self)
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{
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return PyUnicode_FromFormat("<memory at %p>", self);
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}
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static PyObject *
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memory_str(PyMemoryViewObject *self)
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{
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Py_buffer view;
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PyObject *res;
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if (PyObject_GetBuffer((PyObject *)self, &view, PyBUF_FULL) < 0)
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return NULL;
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res = PyByteArray_FromStringAndSize(NULL, view.len);
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PyBuffer_ToContiguous(PyByteArray_AS_STRING(res), &view, view.len, 'C');
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PyObject_ReleaseBuffer((PyObject *)self, &view);
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return res;
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}
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/* Sequence methods */
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static Py_ssize_t
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memory_length(PyMemoryViewObject *self)
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{
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Py_buffer view;
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if (PyObject_GetBuffer((PyObject *)self, &view, PyBUF_FULL) < 0)
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return -1;
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PyObject_ReleaseBuffer((PyObject *)self, &view);
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return view.len;
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}
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/*
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mem[obj] returns a bytes object holding the data for one element if
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obj fully indexes the memory view or another memory-view object
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if it does not.
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0-d memory-view objects can be referenced using ... or () but
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not with anything else.
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*/
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static PyObject *
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memory_subscript(PyMemoryViewObject *self, PyObject *key)
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{
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Py_buffer *view;
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view = &(self->view);
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if (view->ndim == 0) {
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if (key == Py_Ellipsis ||
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(PyTuple_Check(key) && PyTuple_GET_SIZE(key)==0)) {
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Py_INCREF(self);
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return (PyObject *)self;
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}
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else {
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PyErr_SetString(PyExc_IndexError,
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"invalid indexing of 0-dim memory");
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return NULL;
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}
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}
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if (PyIndex_Check(key)) {
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Py_ssize_t result;
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result = PyNumber_AsSsize_t(key, NULL);
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if (result == -1 && PyErr_Occurred())
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return NULL;
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if (view->ndim == 1) {
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/* Return a bytes object */
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char *ptr;
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ptr = (char *)view->buf;
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if (result < 0) {
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result += view->shape[0];
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}
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if ((result < 0) || (result > view->shape[0])) {
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PyErr_SetString(PyExc_IndexError,
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"index out of bounds");
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return NULL;
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}
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if (view->strides == NULL)
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ptr += view->itemsize * result;
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else
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ptr += view->strides[0] * result;
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if (view->suboffsets != NULL &&
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view->suboffsets[0] >= 0)
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{
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ptr = *((char **)ptr) + view->suboffsets[0];
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}
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return PyByteArray_FromStringAndSize(ptr, view->itemsize);
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}
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else {
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/* Return a new memory-view object */
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Py_buffer newview;
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memset(&newview, 0, sizeof(newview));
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/* XXX: This needs to be fixed so it
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actually returns a sub-view
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*/
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return PyMemoryView_FromMemory(&newview);
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}
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}
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/* Need to support getting a sliced view */
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Py_INCREF(Py_NotImplemented);
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return Py_NotImplemented;
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}
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/* Need to support assigning memory if we can */
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static int
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memory_ass_sub(PyMemoryViewObject *self, PyObject *key, PyObject *value)
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{
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return 0;
|
|
}
|
|
|
|
/* As mapping */
|
|
static PyMappingMethods memory_as_mapping = {
|
|
(lenfunc)memory_length, /*mp_length*/
|
|
(binaryfunc)memory_subscript, /*mp_subscript*/
|
|
(objobjargproc)memory_ass_sub, /*mp_ass_subscript*/
|
|
};
|
|
|
|
|
|
/* Buffer methods */
|
|
|
|
static PyBufferProcs memory_as_buffer = {
|
|
(getbufferproc)memory_getbuf, /* bf_getbuffer */
|
|
(releasebufferproc)memory_releasebuf, /* bf_releasebuffer */
|
|
};
|
|
|
|
|
|
PyTypeObject PyMemoryView_Type = {
|
|
PyVarObject_HEAD_INIT(&PyType_Type, 0)
|
|
"memoryview",
|
|
sizeof(PyMemoryViewObject),
|
|
0,
|
|
(destructor)memory_dealloc, /* tp_dealloc */
|
|
0, /* tp_print */
|
|
0, /* tp_getattr */
|
|
0, /* tp_setattr */
|
|
0, /* tp_compare */
|
|
(reprfunc)memory_repr, /* tp_repr */
|
|
0, /* tp_as_number */
|
|
0, /* tp_as_sequence */
|
|
&memory_as_mapping, /* tp_as_mapping */
|
|
0, /* tp_hash */
|
|
0, /* tp_call */
|
|
(reprfunc)memory_str, /* tp_str */
|
|
PyObject_GenericGetAttr, /* tp_getattro */
|
|
0, /* tp_setattro */
|
|
&memory_as_buffer, /* tp_as_buffer */
|
|
Py_TPFLAGS_DEFAULT, /* tp_flags */
|
|
memory_doc, /* tp_doc */
|
|
0, /* tp_traverse */
|
|
0, /* tp_clear */
|
|
0, /* tp_richcompare */
|
|
0, /* tp_weaklistoffset */
|
|
0, /* tp_iter */
|
|
0, /* tp_iternext */
|
|
memory_methods, /* tp_methods */
|
|
0, /* tp_members */
|
|
memory_getsetlist, /* tp_getset */
|
|
0, /* tp_base */
|
|
0, /* tp_dict */
|
|
0, /* tp_descr_get */
|
|
0, /* tp_descr_set */
|
|
0, /* tp_dictoffset */
|
|
0, /* tp_init */
|
|
0, /* tp_alloc */
|
|
memory_new, /* tp_new */
|
|
};
|