Stack More Layers Differently: High-Rank Training Through Low-Rank Updates
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Stack More Layers Differently: High-Rank Training Through Low-Rank Updates

2023-07-19
Despite the dominance and effectiveness of scaling, resulting in large networks with hundreds of billions of parameters, the necessity to train overparametrized models remains poorly understood, and alternative approaches do not necessarily make it cheaper to train high-performance models. In this paper, we explore low-rank training techniques as an alternative approach to training large neural networks. We introduce a novel method called ReLoRA, which utilizes low-rank updates to train high-rank...
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