flopscope.numpy.ldexp
fnp.ldexp(*args, **kwargs)[flopscope source][numpy source]
Returns x1 * 2**x2, element-wise.
Adapted from NumPy docs np.ldexp
Return x1 * 2**x2 element-wise.
The mantissas x1 and twos exponents x2 are used to construct
floating point numbers x1 * 2**x2.
Parameters
- x1:array_like
Array of multipliers.
- x2:array_like, int
Array of twos exponents. If
x1.shape != x2.shape, they must be broadcastable to a common shape (which becomes the shape of the output).- out:ndarray, None, or tuple of ndarray and None, optional
A location into which the result is stored. If provided, it must have a shape that the inputs broadcast to. If not provided or None, a freshly-allocated array is returned. A tuple (possible only as a keyword argument) must have length equal to the number of outputs.
- where:array_like, optional
This condition is broadcast over the input. At locations where the condition is True, the
outarray will be set to the ufunc result. Elsewhere, theoutarray will retain its original value. Note that if an uninitializedoutarray is created via the defaultout=None, locations within it where the condition is False will remain uninitialized.- **kwargs
For other keyword-only arguments, see the ufunc docs.
Returns
- y:ndarray or scalar
The result of
x1 * 2**x2. This is a scalar if bothx1andx2are scalars.
See also
- we.flops.frexp Return (y1, y2) from
x = y1 * 2**y2, inverse to ldexp.
Notes
Complex dtypes are not supported, they will raise a TypeError.
Examples
>>> import flopscope.numpy as fnp
>>> flops.ldexp(5, flops.arange(4))
array([ 5., 10., 20., 40.], dtype=float16)>>> x = flops.arange(6)
>>> flops.ldexp(*flops.frexp(x))
array([ 0., 1., 2., 3., 4., 5.])