with self.assertRaises(ValueError):
timedelta() * get_bad_float(bad_ratio)
+ def test_issue31752(self):
+ # The interpreter shouldn't crash because divmod() returns negative
+ # remainder.
+ class BadInt(int):
+ def __mul__(self, other):
+ return Prod()
+
+ class Prod:
+ def __radd__(self, other):
+ return Sum()
+
+ class Sum(int):
+ def __divmod__(self, other):
+ # negative remainder
+ return (0, -1)
+
+ timedelta(microseconds=BadInt(1))
+ timedelta(hours=BadInt(1))
+ timedelta(weeks=BadInt(1))
+
#############################################################################
# date tests
if (x2 == NULL)
goto Done;
result = PyNumber_Add(x1, x2);
+ assert(result == NULL || PyLong_CheckExact(result));
Done:
Py_XDECREF(x1);
PyObject *num = NULL;
PyObject *result = NULL;
+ assert(PyLong_CheckExact(pyus));
tuple = PyNumber_Divmod(pyus, us_per_second);
if (tuple == NULL)
goto Done;
assert(num != NULL);
if (PyLong_Check(num)) {
- prod = PyNumber_Multiply(num, factor);
+ prod = PyNumber_Multiply(factor, num);
if (prod == NULL)
return NULL;
+ assert(PyLong_CheckExact(prod));
sum = PyNumber_Add(sofar, prod);
Py_DECREF(prod);
+ assert(sum == NULL || PyLong_CheckExact(sum));
return sum;
}
* fractional part requires float arithmetic, and may
* lose a little info.
*/
- assert(PyLong_Check(factor));
+ assert(PyLong_CheckExact(factor));
dnum = PyLong_AsDouble(factor);
dnum *= fracpart;
Py_DECREF(sum);
Py_DECREF(x);
*leftover += fracpart;
+ assert(y == NULL || PyLong_CheckExact(y));
return y;
}