Blocks and Fuel: Frameworks for deep learning

June 01, 2015 ยท Declared Dead ยท ๐Ÿ› arXiv.org

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Authors Bart van Merriรซnboer, Dzmitry Bahdanau, Vincent Dumoulin, Dmitriy Serdyuk, David Warde-Farley, Jan Chorowski, Yoshua Bengio arXiv ID 1506.00619 Category cs.LG: Machine Learning Cross-listed cs.NE, stat.ML Citations 187 Venue arXiv.org Last Checked 4 months ago
Abstract
We introduce two Python frameworks to train neural networks on large datasets: Blocks and Fuel. Blocks is based on Theano, a linear algebra compiler with CUDA-support. It facilitates the training of complex neural network models by providing parametrized Theano operations, attaching metadata to Theano's symbolic computational graph, and providing an extensive set of utilities to assist training the networks, e.g. training algorithms, logging, monitoring, visualization, and serialization. Fuel provides a standard format for machine learning datasets. It allows the user to easily iterate over large datasets, performing many types of pre-processing on the fly.
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