UNIQ: Uniform Noise Injection for Non-Uniform Quantization of Neural Networks
April 29, 2018 ยท Declared Dead ยท ๐ ACM Transactions on Computer Systems
"No code URL or promise found in abstract"
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Authors
Chaim Baskin, Eli Schwartz, Evgenii Zheltonozhskii, Natan Liss, Raja Giryes, Alex M. Bronstein, Avi Mendelson
arXiv ID
1804.10969
Category
cs.LG: Machine Learning
Cross-listed
cs.AI,
cs.CV,
stat.ML
Citations
43
Venue
ACM Transactions on Computer Systems
Last Checked
6 months ago
Abstract
We present a novel method for neural network quantization that emulates a non-uniform $k$-quantile quantizer, which adapts to the distribution of the quantized parameters. Our approach provides a novel alternative to the existing uniform quantization techniques for neural networks. We suggest to compare the results as a function of the bit-operations (BOPS) performed, assuming a look-up table availability for the non-uniform case. In this setup, we show the advantages of our strategy in the low computational budget regime. While the proposed solution is harder to implement in hardware, we believe it sets a basis for new alternatives to neural networks quantization.
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