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			483 lines
		
	
	
	
		
			13 KiB
		
	
	
	
		
			C
		
	
	
	
	
	
			
		
		
	
	
			483 lines
		
	
	
	
		
			13 KiB
		
	
	
	
		
			C
		
	
	
	
	
	
/* Bisection algorithms. Drop in replacement for bisect.py
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Converted to C by Dmitry Vasiliev (dima at hlabs.spb.ru).
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*/
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#ifndef Py_BUILD_CORE_BUILTIN
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#  define Py_BUILD_CORE_MODULE 1
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#endif
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#include "Python.h"
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#include "pycore_call.h"          // _PyObject_CallMethod()
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/*[clinic input]
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module _bisect
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[clinic start generated code]*/
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/*[clinic end generated code: output=da39a3ee5e6b4b0d input=4d56a2b2033b462b]*/
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#include "clinic/_bisectmodule.c.h"
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typedef struct {
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    PyObject *str_insert;
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} bisect_state;
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static inline bisect_state*
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get_bisect_state(PyObject *module)
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{
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    void *state = PyModule_GetState(module);
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    assert(state != NULL);
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    return (bisect_state *)state;
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}
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static ssizeargfunc
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get_sq_item(PyObject *s)
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{
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    // The parts of PySequence_GetItem that we only need to do once
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    PyTypeObject *tp = Py_TYPE(s);
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    PySequenceMethods *m = tp->tp_as_sequence;
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    if (m && m->sq_item) {
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        return m->sq_item;
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    }
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    const char *msg;
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    if (tp->tp_as_mapping && tp->tp_as_mapping->mp_subscript) {
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        msg = "%.200s is not a sequence";
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    }
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    else {
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        msg = "'%.200s' object does not support indexing";
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    }
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    PyErr_Format(PyExc_TypeError, msg, tp->tp_name);
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    return NULL;
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}
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static inline Py_ssize_t
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internal_bisect_right(PyObject *list, PyObject *item, Py_ssize_t lo, Py_ssize_t hi,
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                      PyObject* key)
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{
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    PyObject *litem;
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    Py_ssize_t mid;
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    int res;
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    if (lo < 0) {
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        PyErr_SetString(PyExc_ValueError, "lo must be non-negative");
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        return -1;
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    }
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    if (hi == -1) {
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        hi = PySequence_Size(list);
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        if (hi < 0)
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            return -1;
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    }
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    ssizeargfunc sq_item = get_sq_item(list);
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    if (sq_item == NULL) {
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        return -1;
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    }
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    if (Py_EnterRecursiveCall("in _bisect.bisect_right")) {
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        return -1;
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    }
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    PyTypeObject *tp = Py_TYPE(item);
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    richcmpfunc compare = tp->tp_richcompare;
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    while (lo < hi) {
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        /* The (size_t)cast ensures that the addition and subsequent division
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           are performed as unsigned operations, avoiding difficulties from
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           signed overflow.  (See issue 13496.) */
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        mid = ((size_t)lo + hi) / 2;
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        assert(mid >= 0);
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        // PySequence_GetItem, but we already checked the types.
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        litem = sq_item(list, mid);
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        assert((PyErr_Occurred() == NULL) ^ (litem == NULL));
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        if (litem == NULL) {
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            goto error;
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        }
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        if (key != Py_None) {
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            PyObject *newitem = PyObject_CallOneArg(key, litem);
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            if (newitem == NULL) {
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                goto error;
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            }
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            Py_SETREF(litem, newitem);
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        }
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        /* if item < key(list[mid]):
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         *     hi = mid
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         * else:
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         *     lo = mid + 1
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         */
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        if (compare != NULL && Py_IS_TYPE(litem, tp)) {
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            // A fast path for comparing objects of the same type
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            PyObject *res_obj = compare(item, litem, Py_LT);
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            if (res_obj == Py_True) {
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                Py_DECREF(res_obj);
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                Py_DECREF(litem);
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                hi = mid;
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                continue;
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            }
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            if (res_obj == Py_False) {
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                Py_DECREF(res_obj);
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                Py_DECREF(litem);
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                lo = mid + 1;
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                continue;
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            }
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            if (res_obj == NULL) {
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                goto error;
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            }
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            if (res_obj == Py_NotImplemented) {
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                Py_DECREF(res_obj);
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                compare = NULL;
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                res = PyObject_RichCompareBool(item, litem, Py_LT);
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            }
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            else {
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                res = PyObject_IsTrue(res_obj);
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                Py_DECREF(res_obj);
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            }
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        }
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        else {
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            // A default path for comparing arbitrary objects
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            res = PyObject_RichCompareBool(item, litem, Py_LT);
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        }
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        if (res < 0) {
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            goto error;
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        }
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        Py_DECREF(litem);
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        if (res)
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            hi = mid;
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        else
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            lo = mid + 1;
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    }
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    Py_LeaveRecursiveCall();
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    return lo;
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error:
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    Py_LeaveRecursiveCall();
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    Py_XDECREF(litem);
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    return -1;
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}
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/*[clinic input]
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_bisect.bisect_right -> Py_ssize_t
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    a: object
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    x: object
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    lo: Py_ssize_t = 0
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    hi: Py_ssize_t(c_default='-1', accept={int, NoneType}) = None
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    *
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    key: object = None
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Return the index where to insert item x in list a, assuming a is sorted.
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The return value i is such that all e in a[:i] have e <= x, and all e in
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a[i:] have e > x.  So if x already appears in the list, a.insert(i, x) will
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insert just after the rightmost x already there.
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Optional args lo (default 0) and hi (default len(a)) bound the
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slice of a to be searched.
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A custom key function can be supplied to customize the sort order.
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[clinic start generated code]*/
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static Py_ssize_t
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_bisect_bisect_right_impl(PyObject *module, PyObject *a, PyObject *x,
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                          Py_ssize_t lo, Py_ssize_t hi, PyObject *key)
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/*[clinic end generated code: output=3a4bc09cc7c8a73d input=43071869772dd53a]*/
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{
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    return internal_bisect_right(a, x, lo, hi, key);
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}
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/*[clinic input]
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_bisect.insort_right
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    a: object
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    x: object
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    lo: Py_ssize_t = 0
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    hi: Py_ssize_t(c_default='-1', accept={int, NoneType}) = None
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    *
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    key: object = None
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Insert item x in list a, and keep it sorted assuming a is sorted.
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If x is already in a, insert it to the right of the rightmost x.
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Optional args lo (default 0) and hi (default len(a)) bound the
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slice of a to be searched.
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A custom key function can be supplied to customize the sort order.
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[clinic start generated code]*/
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static PyObject *
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_bisect_insort_right_impl(PyObject *module, PyObject *a, PyObject *x,
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                          Py_ssize_t lo, Py_ssize_t hi, PyObject *key)
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/*[clinic end generated code: output=ac3bf26d07aedda2 input=f60777d2b6ddb239]*/
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{
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    PyObject *result, *key_x;
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    Py_ssize_t index;
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    if (key == Py_None) {
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        index = internal_bisect_right(a, x, lo, hi, key);
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    } else {
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        key_x = PyObject_CallOneArg(key, x);
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        if (key_x == NULL) {
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            return NULL;
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        }
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        index = internal_bisect_right(a, key_x, lo, hi, key);
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        Py_DECREF(key_x);
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    }
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    if (index < 0)
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        return NULL;
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    if (PyList_CheckExact(a)) {
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        if (PyList_Insert(a, index, x) < 0)
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            return NULL;
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    }
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    else {
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        bisect_state *state = get_bisect_state(module);
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        result = _PyObject_CallMethod(a, state->str_insert, "nO", index, x);
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        if (result == NULL)
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            return NULL;
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        Py_DECREF(result);
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    }
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    Py_RETURN_NONE;
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}
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static inline Py_ssize_t
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internal_bisect_left(PyObject *list, PyObject *item, Py_ssize_t lo, Py_ssize_t hi,
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                     PyObject *key)
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{
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    PyObject *litem;
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    Py_ssize_t mid;
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    int res;
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    if (lo < 0) {
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        PyErr_SetString(PyExc_ValueError, "lo must be non-negative");
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        return -1;
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    }
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    if (hi == -1) {
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        hi = PySequence_Size(list);
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        if (hi < 0)
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            return -1;
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    }
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    ssizeargfunc sq_item = get_sq_item(list);
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    if (sq_item == NULL) {
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        return -1;
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    }
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    if (Py_EnterRecursiveCall("in _bisect.bisect_left")) {
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        return -1;
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    }
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    PyTypeObject *tp = Py_TYPE(item);
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    richcmpfunc compare = tp->tp_richcompare;
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    while (lo < hi) {
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        /* The (size_t)cast ensures that the addition and subsequent division
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           are performed as unsigned operations, avoiding difficulties from
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           signed overflow.  (See issue 13496.) */
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        mid = ((size_t)lo + hi) / 2;
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        assert(mid >= 0);
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        // PySequence_GetItem, but we already checked the types.
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        litem = sq_item(list, mid);
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        assert((PyErr_Occurred() == NULL) ^ (litem == NULL));
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        if (litem == NULL) {
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            goto error;
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        }
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        if (key != Py_None) {
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            PyObject *newitem = PyObject_CallOneArg(key, litem);
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            if (newitem == NULL) {
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                goto error;
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            }
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            Py_SETREF(litem, newitem);
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        }
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        /* if key(list[mid]) < item:
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         *     lo = mid + 1
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         * else:
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         *     hi = mid
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         */
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        if (compare != NULL && Py_IS_TYPE(litem, tp)) {
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            // A fast path for comparing objects of the same type
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            PyObject *res_obj = compare(litem, item, Py_LT);
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            if (res_obj == Py_True) {
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                Py_DECREF(res_obj);
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                Py_DECREF(litem);
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                lo = mid + 1;
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                continue;
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            }
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            if (res_obj == Py_False) {
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                Py_DECREF(res_obj);
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                Py_DECREF(litem);
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                hi = mid;
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                continue;
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            }
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            if (res_obj == NULL) {
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                goto error;
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            }
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            if (res_obj == Py_NotImplemented) {
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                Py_DECREF(res_obj);
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                compare = NULL;
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                res = PyObject_RichCompareBool(litem, item, Py_LT);
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            }
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            else {
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                res = PyObject_IsTrue(res_obj);
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                Py_DECREF(res_obj);
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            }
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        }
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        else {
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            // A default path for comparing arbitrary objects
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            res = PyObject_RichCompareBool(litem, item, Py_LT);
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        }
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        if (res < 0) {
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            goto error;
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        }
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        Py_DECREF(litem);
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        if (res)
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            lo = mid + 1;
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        else
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            hi = mid;
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    }
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    Py_LeaveRecursiveCall();
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    return lo;
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error:
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    Py_LeaveRecursiveCall();
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    Py_XDECREF(litem);
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    return -1;
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}
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/*[clinic input]
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_bisect.bisect_left -> Py_ssize_t
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    a: object
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    x: object
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    lo: Py_ssize_t = 0
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    hi: Py_ssize_t(c_default='-1', accept={int, NoneType}) = None
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    *
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    key: object = None
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 | 
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Return the index where to insert item x in list a, assuming a is sorted.
 | 
						|
 | 
						|
The return value i is such that all e in a[:i] have e < x, and all e in
 | 
						|
a[i:] have e >= x.  So if x already appears in the list, a.insert(i, x) will
 | 
						|
insert just before the leftmost x already there.
 | 
						|
 | 
						|
Optional args lo (default 0) and hi (default len(a)) bound the
 | 
						|
slice of a to be searched.
 | 
						|
 | 
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A custom key function can be supplied to customize the sort order.
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[clinic start generated code]*/
 | 
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 | 
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static Py_ssize_t
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_bisect_bisect_left_impl(PyObject *module, PyObject *a, PyObject *x,
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                         Py_ssize_t lo, Py_ssize_t hi, PyObject *key)
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/*[clinic end generated code: output=70749d6e5cae9284 input=f29c4fe7f9b797c7]*/
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{
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    return internal_bisect_left(a, x, lo, hi, key);
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}
 | 
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 | 
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 | 
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/*[clinic input]
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_bisect.insort_left
 | 
						|
 | 
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    a: object
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    x: object
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    lo: Py_ssize_t = 0
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    hi: Py_ssize_t(c_default='-1', accept={int, NoneType}) = None
 | 
						|
    *
 | 
						|
    key: object = None
 | 
						|
 | 
						|
Insert item x in list a, and keep it sorted assuming a is sorted.
 | 
						|
 | 
						|
If x is already in a, insert it to the left of the leftmost x.
 | 
						|
 | 
						|
Optional args lo (default 0) and hi (default len(a)) bound the
 | 
						|
slice of a to be searched.
 | 
						|
 | 
						|
A custom key function can be supplied to customize the sort order.
 | 
						|
[clinic start generated code]*/
 | 
						|
 | 
						|
static PyObject *
 | 
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_bisect_insort_left_impl(PyObject *module, PyObject *a, PyObject *x,
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                         Py_ssize_t lo, Py_ssize_t hi, PyObject *key)
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/*[clinic end generated code: output=b1d33e5e7ffff11e input=0a700a82edbd472c]*/
 | 
						|
{
 | 
						|
    PyObject *result, *key_x;
 | 
						|
    Py_ssize_t index;
 | 
						|
 | 
						|
    if (key == Py_None) {
 | 
						|
        index = internal_bisect_left(a, x, lo, hi, key);
 | 
						|
    } else {
 | 
						|
        key_x = PyObject_CallOneArg(key, x);
 | 
						|
        if (key_x == NULL) {
 | 
						|
            return NULL;
 | 
						|
        }
 | 
						|
        index = internal_bisect_left(a, key_x, lo, hi, key);
 | 
						|
        Py_DECREF(key_x);
 | 
						|
    }
 | 
						|
    if (index < 0)
 | 
						|
        return NULL;
 | 
						|
    if (PyList_CheckExact(a)) {
 | 
						|
        if (PyList_Insert(a, index, x) < 0)
 | 
						|
            return NULL;
 | 
						|
    } else {
 | 
						|
        bisect_state *state = get_bisect_state(module);
 | 
						|
        result = _PyObject_CallMethod(a, state->str_insert, "nO", index, x);
 | 
						|
        if (result == NULL)
 | 
						|
            return NULL;
 | 
						|
        Py_DECREF(result);
 | 
						|
    }
 | 
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 | 
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    Py_RETURN_NONE;
 | 
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}
 | 
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 | 
						|
static PyMethodDef bisect_methods[] = {
 | 
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    _BISECT_BISECT_RIGHT_METHODDEF
 | 
						|
    _BISECT_INSORT_RIGHT_METHODDEF
 | 
						|
    _BISECT_BISECT_LEFT_METHODDEF
 | 
						|
    _BISECT_INSORT_LEFT_METHODDEF
 | 
						|
    {NULL, NULL} /* sentinel */
 | 
						|
};
 | 
						|
 | 
						|
PyDoc_STRVAR(module_doc,
 | 
						|
"Bisection algorithms.\n\
 | 
						|
\n\
 | 
						|
This module provides support for maintaining a list in sorted order without\n\
 | 
						|
having to sort the list after each insertion. For long lists of items with\n\
 | 
						|
expensive comparison operations, this can be an improvement over the more\n\
 | 
						|
common approach.\n");
 | 
						|
 | 
						|
static int
 | 
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bisect_clear(PyObject *module)
 | 
						|
{
 | 
						|
    bisect_state *state = get_bisect_state(module);
 | 
						|
    Py_CLEAR(state->str_insert);
 | 
						|
    return 0;
 | 
						|
}
 | 
						|
 | 
						|
static void
 | 
						|
bisect_free(void *module)
 | 
						|
{
 | 
						|
    bisect_clear((PyObject *)module);
 | 
						|
}
 | 
						|
 | 
						|
static int
 | 
						|
bisect_modexec(PyObject *m)
 | 
						|
{
 | 
						|
    bisect_state *state = get_bisect_state(m);
 | 
						|
    state->str_insert = PyUnicode_InternFromString("insert");
 | 
						|
    if (state->str_insert == NULL) {
 | 
						|
        return -1;
 | 
						|
    }
 | 
						|
    return 0;
 | 
						|
}
 | 
						|
 | 
						|
static PyModuleDef_Slot bisect_slots[] = {
 | 
						|
    {Py_mod_exec, bisect_modexec},
 | 
						|
    {Py_mod_multiple_interpreters, Py_MOD_PER_INTERPRETER_GIL_SUPPORTED},
 | 
						|
    {0, NULL}
 | 
						|
};
 | 
						|
 | 
						|
static struct PyModuleDef _bisectmodule = {
 | 
						|
    PyModuleDef_HEAD_INIT,
 | 
						|
    .m_name = "_bisect",
 | 
						|
    .m_size = sizeof(bisect_state),
 | 
						|
    .m_doc = module_doc,
 | 
						|
    .m_methods = bisect_methods,
 | 
						|
    .m_slots = bisect_slots,
 | 
						|
    .m_clear = bisect_clear,
 | 
						|
    .m_free = bisect_free,
 | 
						|
};
 | 
						|
 | 
						|
PyMODINIT_FUNC
 | 
						|
PyInit__bisect(void)
 | 
						|
{
 | 
						|
    return PyModuleDef_Init(&_bisectmodule);
 | 
						|
}
 |