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Igor Macedo Quintanilha 214ba59755 Better docs of returned tensor in ctc_ops.py ()
* Better docs of returned tensor in ctc_ops.py

'Logits' aren't a meaningful word for what the ctc_cost function returns. Browsing the implementation (tensorflow/tensorflow/core/util/ctc/) I saw that the cost function is returning the minus log probabilities of the target labelling, so, this new comment erases any doubt. Thanks!

* Update ctc_ops.py
2016-06-28 15:30:41 -07:00
tensorflow Better docs of returned tensor in ctc_ops.py () 2016-06-28 15:30:41 -07:00
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ACKNOWLEDGMENTS TensorFlow: Improve performance of Alexnet 2015-11-20 10:30:41 -08:00
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TensorFlow is an open source software library for numerical computation using data flow graphs. Nodes in the graph represent mathematical operations, while the graph edges represent the multidimensional data arrays (tensors) that flow between them. This flexible architecture lets you deploy computation to one or more CPUs or GPUs in a desktop, server, or mobile device without rewriting code. TensorFlow also includes TensorBoard, a data visualization toolkit.

TensorFlow was originally developed by researchers and engineers working on the Google Brain team within Google's Machine Intelligence research organization for the purposes of conducting machine learning and deep neural networks research. The system is general enough to be applicable in a wide variety of other domains, as well.

If you'd like to contribute to TensorFlow, be sure to review the contribution guidelines.

We use GitHub issues for tracking requests and bugs, but please see Community for general questions and discussion.

Installation

See Download and Setup for instructions on how to install our release binaries or how to build from source.

People who are a little bit adventurous can also try our nightly binaries:

Try your first TensorFlow program

$ python
>>> import tensorflow as tf
>>> hello = tf.constant('Hello, TensorFlow!')
>>> sess = tf.Session()
>>> sess.run(hello)
Hello, TensorFlow!
>>> a = tf.constant(10)
>>> b = tf.constant(32)
>>> sess.run(a+b)
42
>>>

##For more information

The TensorFlow community has created amazing things with TensorFlow, please see the resources section of tensorflow.org for an incomplete list.