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Where a Strong Backbone Meets Strong Features -- ActionFormer for Ego4D Moment Queries Challenge

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This report describes our submission to the Ego4D Moment Queries Challenge 2022. Our submission builds on ActionFormer, the state-of-the-art backbone for temporal action localization, and a trio of strong video features from SlowFast, Omnivore and EgoVLP. Our solution is ranked 2nd on the public leaderboard with 21.76% average mAP on the test set, which is nearly three times higher than the official baseline. Further, we obtain 42.54% Recall@1x at tIoU=0.5 on the test set, outperforming the top-ranked solution by a significant margin of 1.41 absolute percentage points. Our code is available at https://github.com/happyharrycn/actionformer_release.

Fangzhou Mu, Sicheng Mo, Gillian Wang, Yin Li• 2022

Related benchmarks

TaskDatasetResultRank
Moment QueryEgo4D Moment Query (val)
R@1 (IoU=0.5)38.73
19
Moment QueryEgo4D (test)
R@1 (IoU=0.5)0.4254
11
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