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Anticipative Video Transformer

About

We propose Anticipative Video Transformer (AVT), an end-to-end attention-based video modeling architecture that attends to the previously observed video in order to anticipate future actions. We train the model jointly to predict the next action in a video sequence, while also learning frame feature encoders that are predictive of successive future frames' features. Compared to existing temporal aggregation strategies, AVT has the advantage of both maintaining the sequential progression of observed actions while still capturing long-range dependencies--both critical for the anticipation task. Through extensive experiments, we show that AVT obtains the best reported performance on four popular action anticipation benchmarks: EpicKitchens-55, EpicKitchens-100, EGTEA Gaze+, and 50-Salads; and it wins first place in the EpicKitchens-100 CVPR'21 challenge.

Rohit Girdhar, Kristen Grauman• 2021

Related benchmarks

TaskDatasetResultRank
Action AnticipationEPIC-KITCHENS 100 (test)
Overall Action Top-5 Recall16.74
59
Action AnticipationEPIC-KITCHENS unseen S2 (test)
Top-1 Acc (Verb)30.66
47
Action AnticipationEpic-Kitchen 55 (val)
Top-1 Acc16.6
33
Action AnticipationEpic-Kitchens-100 (val)
mCR@5 (Overall Verb)30.2
33
Action AnticipationEPIC-KITCHENS seen S1 (test)
Top-1 Acc (Verb)34.36
27
Egocentric Action AnticipationEPIC-Kitchens-55 S1 - Seen (test)
Top-1 Acc (Verb)34.36
24
Action AnticipationEGTEA Gaze+
Top-1 Acc (Verb)54.9
21
Surgical Phase RecognitionCholec80 (test)
Precision77.3
16
Action AnticipationEPIC-Kitchens-100 Unseen
Verb Recall@529.5
15
Spatial-Temporal AnticipationEgo4D STA v1, v2 (val)
Base Performance (B)40.5
14
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