Authors
Martín Abadi, Paul Barham, Jianmin Chen, Zhifeng Chen, Andy Davis, Jeffrey Dean, Matthieu Devin, Sanjay Ghemawat, Geoffrey Irving, Michael Isard, Manjunath Kudlur, Josh Levenberg, Rajat Monga, Sherry Moore, Derek G Murray, Benoit Steiner, Paul Tucker, Vijay Vasudevan, Pete Warden, Martin Wicke, Yuan Yu, Xiaoqiang Zheng
Publication date
2016
Conference
12th USENIX symposium on operating systems design and implementation (OSDI 16)
Pages
265-283
Description
TensorFlow is a machine learning system that operates at large scale and in heterogeneous environments. Tensor-Flow uses dataflow graphs to represent computation, shared state, and the operations that mutate that state. It maps the nodes of a dataflow graph across many machines in a cluster, and within a machine across multiple computational devices, including multicore CPUs, general-purpose GPUs, and custom-designed ASICs known as Tensor Processing Units (TPUs). This architecture gives flexibility to the application developer: whereas in previous “parameter server” designs the management of shared state is built into the system, TensorFlow enables developers to experiment with novel optimizations and training algorithms. TensorFlow supports a variety of applications, with a focus on training and inference on deep neural networks. Several Google services use TensorFlow in production, we have released it as an open-source project, and it has become widely used for machine learning research. In this paper, we describe the TensorFlow dataflow model and demonstrate the compelling performance that Tensor-Flow achieves for several real-world applications.
Total citations
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Scholar articles
M Abadi, P Barham, J Chen, Z Chen, A Davis, J Dean… - 12th USENIX symposium on operating systems design …, 2016
M Abadi, A Agarwal, P Barham, E Brevdo, Z Chen… - arXiv preprint arXiv:1603.04467, 2016
M Abadi, P Barham, J Chen, Z Chen, A Davis, J Dean… - USENIX Association, Savannah, GA, USA, 2016
M Abadi, P Barham, J Chen, Z Chen, A Davis, J Dean - 2016