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Additive Powers-of-Two Quantization: An Efficient Non-uniform Discretization for Neural Networks
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We propose Additive Powers-of-Two~(APoT) quantization, an efficient non-uniform quantization scheme for the bell-shaped and long-tailed distribution of weights and activations in neural networks. By constraining all quantization levels as the sum of Powers-of-Two terms, APoT quantization enjoys high computational efficiency and a good match with the distribution of weights. A simple reparameterization of the clipping function is applied to generate a better-defined gradient for learning the clipping threshold. Moreover, weight normalization is presented to refine the distribution of weights to make the training more stable and consistent. Experimental results show that our proposed method outperforms state-of-the-art methods, and is even competitive with the full-precision models, demonstrating the effectiveness of our proposed APoT quantization. For example, our 4-bit quantized ResNet-50 on ImageNet achieves 76.6% top-1 accuracy without bells and whistles; meanwhile, our model reduces 22% computational cost compared with the uniformly quantized counterpart. The code is available at https://github.com/yhhhli/APoT_Quantization.
Forward citations
Cited by 4 Pith papers
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GRAU: Generic Reconfigurable Activation Unit Design for Neural Network Hardware Accelerators
GRAU implements reconfigurable QNN activation hardware using power-of-two-slope piecewise linear fits, cutting LUTs by >90% versus multi-threshold units while keeping accuracy within ~1% except for SiLU under aggressi...
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Integrating Pruning with Quantization for Efficient Deep Neural Networks Compression
Simultaneous or sequential integration of geometric-median filter pruning with 4-bit additive-power-of-two quantization compresses ResNet and VGG models on CIFAR-10 by about 15x with modest accuracy loss.
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Progressive Element-wise Gradient Estimation for Neural Network Quantization
PEGE replaces the straight-through estimator with a curriculum-driven blend of quantized and full-precision weights plus an additive discretization-error correction, reporting small accuracy gains on low-bit CNNs.
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