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Broaden Your Views for Self-Supervised Video Learning

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Most successful self-supervised learning methods are trained to align the representations of two independent views from the data. State-of-the-art methods in video are inspired by image techniques, where these two views are similarly extracted by cropping and augmenting the resulting crop. However, these methods miss a crucial element in the video domain: time. We introduce BraVe, a self-supervised learning framework for video. In BraVe, one of the views has access to a narrow temporal window of the video while the other view has a broad access to the video content. Our models learn to generalise from the narrow view to the general content of the video. Furthermore, BraVe processes the views with different backbones, enabling the use of alternative augmentations or modalities into the broad view such as optical flow, randomly convolved RGB frames, audio or their combinations. We demonstrate that BraVe achieves state-of-the-art results in self-supervised representation learning on standard video and audio classification benchmarks including UCF101, HMDB51, Kinetics, ESC-50 and AudioSet.

Adri\`a Recasens, Pauline Luc, Jean-Baptiste Alayrac, Luyu Wang, Ross Hemsley, Florian Strub, Corentin Tallec, Mateusz Malinowski, Viorica Patraucean, Florent Altch\'e, Michal Valko, Jean-Bastien Grill, A\"aron van den Oord, Andrew Zisserman• 2021

Related benchmarks

TaskDatasetResultRank
Action RecognitionUCF101
Accuracy90
365
Audio ClassificationESC-50
Accuracy90.4
325
Action RecognitionUCF101 (test)
Accuracy96.9
307
Action RecognitionHMDB51 (test)--
249
Action RecognitionUCF101 (3 splits)
Accuracy95.1
155
Video Action RecognitionHMDB-51 (3 splits)
Accuracy74.3
116
Action RecognitionUCF101 (Split 1)
Top-1 Acc93.6
105
Video RecognitionHMDB51
Accuracy74.6
89
Audio ClassificationESC-50 (test)
Accuracy93
84
Action RecognitionKinetics-600 (test)
Top-1 Accuracy70.8
84
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