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A Greedy Algorithm for Quantizing Neural Networks

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arxiv 2010.15979 v2 pith:BB6Q2GKE submitted 2020-10-29 cs.LG cs.ITmath.IT

classification cs.LGcs.ITmath.IT
keywords quantizingnetworksneuralalgorithmdatamulti-layernetworkgreedy
verification ladder T0 review T1 audit T2 compute T3 formal
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We propose a new computationally efficient method for quantizing the weights of pre- trained neural networks that is general enough to handle both multi-layer perceptrons and convolutional neural networks. Our method deterministically quantizes layers in an iterative fashion with no complicated re-training required. Specifically, we quantize each neuron, or hidden unit, using a greedy path-following algorithm. This simple algorithm is equivalent to running a dynamical system, which we prove is stable for quantizing a single-layer neural network (or, alternatively, for quantizing the first layer of a multi-layer network) when the training data are Gaussian. We show that under these assumptions, the quantization error decays with the width of the layer, i.e., its level of over-parametrization. We provide numerical experiments, on multi-layer networks, to illustrate the performance of our methods on MNIST and CIFAR10 data, as well as for quantizing the VGG16 network using ImageNet data.

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  1. Post-Training Quantization of Generative and Discriminative LSTM Text Classifiers: A Study of Calibration, Class Balance, and Robustness

    cs.LG 2025-07 conditional novelty 6.0 of 10

    Generative LSTM classifiers under post-training quantization are far more sensitive than discriminative ones to calibration data class balance and input noise, especially at 3- to 5-bit widths.

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