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Tensor Comprehensions: Framework-Agnostic High …

Tensor Comprehensions: Framework-AgnosticHigh-Performance Machine Learning AbstractionsNicolas VasilacheFacebook AI ZinenkoInria & ENS, TheodoridisETH Z GoyalFacebook AI DeVitoFacebook AI S. MosesMIT VerdoolaegePolly Labs & Facebook AI AdamsFacebook AI CohenInria & ENS, DI & Facebook AI learning models with convolutional and recurrent networks are now ubiq-uitous and analyze massive amounts of audio, image, video, text and graph data,with applications in automatic translation, speech-to-text, scene understanding,ranking user preferences, ad placement, etc. Competing frameworks for buildingthese networks such as TensorFlow, Chainer, CNTK, Torch/PyTorch, Caffe1/2,MXNet and Theano, explore different tradeoffs between usability and expressive-ness, research or production orientation and supported hardware.

semantics allows for efficient memory management and mapping to complex parallel platforms. We address the second challenge by specializing a polyhedral intermediate representation and its

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