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pytensor
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174591ce
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174591ce
authored
10月 20, 2014
作者:
serdyuk
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Added more info about inputs and restrictions
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neighbours.txt
doc/library/tensor/nnet/neighbours.txt
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doc/library/tensor/nnet/neighbours.txt
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174591ce
...
@@ -18,22 +18,34 @@
...
@@ -18,22 +18,34 @@
represents a list of lists of images. The first two dimensions can be
represents a list of lists of images. The first two dimensions can be
useful to store different channels and batches.
useful to store different channels and batches.
The second input of the function `neib_shape` is a tuple of two values:
height and width of the neighbourhood.
It is possible to assign a step of selecting patches (parameter
`neib_step`). By default it is equal to `neib_shape` in other words, the
patches are disjoint.
Example:
Example:
.. code-block:: python
.. code-block:: python
images = T.tensor4('images')
images = T.tensor4('images')
neibs = images2neibs(images, (5, 5))
neibs = images2neibs(images,
neib_shape=
(5, 5))
im_val = np.arange(100.).reshape((1, 1, 10, 10))
im_val = np.arange(100.).reshape((1, 1, 10, 10))
neibs_val = theano.function([images], neibs)(im_val)
neibs_val = theano.function([images], neibs)(im_val)
.. note:: The underlying code will construct a 2D tensor of patches 5x5
.. note:: The underlying code will construct a 2D tensor of disjoint
patches 5x5. The output has shape 4x25.
- Function :func:`neibs2images <theano.sandbox.neighbours.neibs2images>`
- Function :func:`neibs2images <theano.sandbox.neighbours.neibs2images>`
performs the inverse operation of
performs the inverse operation of
:func:`images2neibs <theano.sandbox.neigbours.neibs2images>`.
:func:`images2neibs <theano.sandbox.neigbours.neibs2images>`.
.. note:: Currently, the function doesn't support tensors created with
`neib_step` different from default value. This means that it may be
impossible to compute the gradient in this case.
Example:
Example:
...
@@ -42,4 +54,4 @@
...
@@ -42,4 +54,4 @@
im_new = neibs2images(neibs, (5, 5), im_val.shape)
im_new = neibs2images(neibs, (5, 5), im_val.shape)
im_new_val = theano.function([neibs], im_new)(neibs_val)
im_new_val = theano.function([neibs], im_new)(neibs_val)
.. note:: The code will output
an initial image array
.. note:: The code will output
the initial image array.
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