2023
DOI: 10.1609/aaai.v37i1.25204
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Curriculum Multi-Negative Augmentation for Debiased Video Grounding

Xiaohan Lan,
Yitian Yuan,
Hong Chen
et al.

Abstract: Video Grounding (VG) aims to locate the desired segment from a video given a sentence query. Recent studies have found that current VG models are prone to over-rely the groundtruth moment annotation distribution biases in the training set. To discourage the standard VG model's behavior of exploiting such temporal annotation biases and improve the model generalization ability, we propose multiple negative augmentations in a hierarchical way, including cross-video augmentations from clip-/video-level, and self-s… Show more

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Cited by 10 publications
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