AdaSTE: An Adaptive Straight-Through Estimator to Train Binary Neural Networks
Huu Le, Rasmus Kjær Høier, Che-Tsung Lin, Christopher Zach
摘要
We propose a new algorithm for training deep neural networks (DNNs) with binary weights. In particular, we first cast the problem of training binary neural networks (BiNNs) as a bilevel optimization instance and subsequently construct flexible relaxations of this bilevel program. The resulting training method shares its algorithmic simplicity with several existing approaches to train BiNNs, in particular with the straight-through gradient estimator successfully employed in BinaryConnect and subsequent methods. In fact, our proposed method can be interpreted as an adaptive variant of the original straight-through estimator that conditionally (but not always) acts like a linear mapping in the backward pass of error propagation. Experimental results demonstrate that our new algorithm offers favorable performance compared to existing approaches. 1
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引用它的顶会 Paper2
- BiPer: Binary Neural Networks Using a Periodic FunctionEdwin Vargas, Claudia V. Correa P., Carlos Hinojosa, Henry ArguelloCVPR 2024 · 被引用 10 次
- Training Binary Neural Networks via Gaussian Variational Inference and Low-Rank Semidefinite ProgrammingLorenzo Orecchia, Jiawei Hu, Xue He, Wang Mark 等NeurIPS 2024 · 被引用 4 次
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