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Haodong Duan Yue Zhao Yuanjun Xiong Wentao Liu Dahua Lin

Abstract
We introduce OmniSource, a novel framework for leveraging web data to train video recognition models. OmniSource overcomes the barriers between data formats, such as images, short videos, and long untrimmed videos for webly-supervised learning. First, data samples with multiple formats, curated by task-specific data collection and automatically filtered by a teacher model, are transformed into a unified form. Then a joint-training strategy is proposed to deal with the domain gaps between multiple data sources and formats in webly-supervised learning. Several good practices, including data balancing, resampling, and cross-dataset mixup are adopted in joint training. Experiments show that by utilizing data from multiple sources and formats, OmniSource is more data-efficient in training. With only 3.5M images and 800K minutes videos crawled from the internet without human labeling (less than 2% of prior works), our models learned with OmniSource improve Top-1 accuracy of 2D- and 3D-ConvNet baseline models by 3.0% and 3.9%, respectively, on the Kinetics-400 benchmark. With OmniSource, we establish new records with different pretraining strategies for video recognition. Our best models achieve 80.4%, 80.5%, and 83.6 Top-1 accuracies on the Kinetics-400 benchmark respectively for training-from-scratch, ImageNet pre-training and IG-65M pre-training.
Code Repositories
Benchmarks
| Benchmark | Methodology | Metrics |
|---|---|---|
| action-classification-on-kinetics-400 | OmniSource SlowOnly R101 8x8 (Scratch) | Acc@1: 80.4 Acc@5: 94.4 |
| action-classification-on-kinetics-400 | OmniSource SlowOnly R101 8x8(ImageNet pretrain) | Acc@1: 80.5 Acc@5: 94.4 |
| action-classification-on-kinetics-400 | OmniSource irCSN-152 (IG-Kinetics-65M pretrain) | Acc@1: 83.6 |
| action-recognition-in-videos-on-hmdb-51 | OmniSource (SlowOnly-8x8-R101-RGB + I3D Flow) | Average accuracy of 3 splits: 83.8 |
| action-recognition-in-videos-on-ucf101 | OmniSource (SlowOnly-8x8-R101-RGB + I3D-Flow) | 3-fold Accuracy: 98.6 |
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