Turbo Training with Token Dropout

October 10, 2022 ยท Declared Dead ยท ๐Ÿ› British Machine Vision Conference

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Authors Tengda Han, Weidi Xie, Andrew Zisserman arXiv ID 2210.04889 Category cs.CV: Computer Vision Citations 15 Venue British Machine Vision Conference Last Checked 3 months ago
Abstract
The objective of this paper is an efficient training method for video tasks. We make three contributions: (1) We propose Turbo training, a simple and versatile training paradigm for Transformers on multiple video tasks. (2) We illustrate the advantages of Turbo training on action classification, video-language representation learning, and long-video activity classification, showing that Turbo training can largely maintain competitive performance while achieving almost 4X speed-up and significantly less memory consumption. (3) Turbo training enables long-schedule video-language training and end-to-end long-video training, delivering competitive or superior performance than previous works, which were infeasible to train under limited resources.
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