Stochastic Weight Averaging in Parallel: Large-Batch Training That Generalizes Well
Vipul Gupta, Santiago Akle Serrano, Dennis DeCoste
2020年份
78被引次数
23顶会引用
摘要
We propose Stochastic Weight Averaging in Parallel (SWAP), an algorithm to accelerate DNN training. Our algorithm uses large mini-batches to compute an approximate solution quickly and then refines it by averaging the weights of multiple models computed independently and in parallel. The resulting models generalize equally well as those trained with small mini-batches but are produced in a substantially shorter time. We demonstrate the reduction in training time and the good generalization performance of the resulting models on the computer vision datasets CIFAR10, CIFAR100, and ImageNet.
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引用它的顶会 Paper23
- AdaMerging: Adaptive Model Merging for Multi-Task LearningEnneng Yang, Zhenyi Wang, Li Shen, Shiwei Liu 等ICLR 2024 · 被引用 230 次
- Diverse Weight Averaging for Out-of-Distribution GeneralizationAlexandre Ramé, Matthieu Kirchmeyer, Thibaud Rahier, Alain Rakotomamonjy 等NeurIPS 2022 · 被引用 183 次
- Consensus Control for Decentralized Deep LearningLingjing Kong, Tao Lin, Anastasia Koloskova, Martin Jaggi 等ICML 2021 · 被引用 100 次
- Representation Surgery for Multi-Task Model MergingEnneng Yang, Li Shen, Zhenyi Wang, Guibing Guo 等ICML 2024 · 被引用 96 次
- Parameter Competition Balancing for Model MergingGuodong Du, Junlin Lee, Jing Li, Runhua Jiang 等NeurIPS 2024 · 被引用 91 次
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