A Quantitative Exploration of Collaborative Pruning and Approximation Computing Towards Energy Efficient Neural Networks.

IEEE Design & Test(2020)

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摘要
Editor's note: This work has the goal of minimizing digital neural network computation energy consumption with little loss in accuracy. The authors describe a Dynamic Network Surgery based approach to network pruning, after which weights are incrementally selected for approximate multiplication. Considering which network components are necessary and determining the needed level of accuracy for the...
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关键词
Neural networks,Energy consumption,Approximate computing,Collaboration,Computational modeling,Artificial neural networks,Optimization
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