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GLU Variants Improve Transformer


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Gated Linear Units (arXiv:1612.08083) consist of the component-wise product of two linear projections, one of which is first passed through a sigmoid function. Variations on GLU are possible, using different nonlinear (or even linear) functions in place of sigmoid. We test these variants in the feed-forward sublayers of the Transformer (arXiv:1706.03762) sequence-to-sequence model, and find that some of them yield quality improvements over the typically-used ReLU or GELU activations.
2020: Noam M. Shazeer
Transformer, Sigmoid function, Rectifier (neural networks), Nonlinear system
https://arxiv.org/pdf/2002.05202v1.pdf
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