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Learning low-precision neural networks without Straight-Through Estimator(STE)

Machine Learning 2019-05-22 v2 Machine Learning

Abstract

The Straight-Through Estimator (STE) is widely used for back-propagating gradients through the quantization function, but the STE technique lacks a complete theoretical understanding. We propose an alternative methodology called alpha-blending (AB), which quantizes neural networks to low-precision using stochastic gradient descent (SGD). Our method (AB) avoids STE approximation by replacing the quantized weight in the loss function by an affine combination of the quantized weight w_q and the corresponding full-precision weight w with non-trainable scalar coefficient α\alpha and 1α1-\alpha. During training, α\alpha is gradually increased from 0 to 1; the gradient updates to the weights are through the full-precision term, (1α)w(1-\alpha)w, of the affine combination; the model is converted from full-precision to low-precision progressively. To evaluate the method, a 1-bit BinaryNet on CIFAR10 dataset and 8-bits, 4-bits MobileNet v1, ResNet_50 v1/2 on ImageNet dataset are trained using the alpha-blending approach, and the evaluation indicates that AB improves top-1 accuracy by 0.9%, 0.82% and 2.93% respectively compared to the results of STE based quantization.

Keywords

Cite

@article{arxiv.1903.01061,
  title  = {Learning low-precision neural networks without Straight-Through Estimator(STE)},
  author = {Zhi-Gang Liu and Matthew Mattina},
  journal= {arXiv preprint arXiv:1903.01061},
  year   = {2019}
}

Comments

conference version accepted by IJCAI-2019

R2 v1 2026-06-23T07:57:04.309Z