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Home / Proceedings / Proceedings of the AAAI Conference on Artificial Intelligence, 36 / No. 3: AAAI-22 Technical Tracks 3

Weakly Supervised Video Moment Localization with Contrastive Negative Sample Mining

February 1, 2023

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Authors

Minghang Zheng

Peking University


Yanjie Huang

Peking University


Qingchao Chen

Peking University


Yang Liu

Peking University Beijing Institute for General Artificial Intelligence


DOI:

10.1609/aaai.v36i3.20263


Abstract:

Video moment localization aims at localizing the video segments which are most related to the given free-form natural language query. The weakly supervised setting, where only video level description is available during training, is getting more and more attention due to its lower annotation cost. Prior weakly supervised methods mainly use sliding windows to generate temporal proposals, which are independent of video content and low quality, and train the model to distinguish matched video-query pairs and unmatched ones collected from different videos, while neglecting what the model needs is to distinguish the unaligned segments within the video. In this work, we propose a novel weakly supervised solution by introducing Contrastive Negative sample Mining (CNM). Specifically, we use a learnable Gaussian mask to generate positive samples, highlighting the video frames most related to the query, and consider other frames of the video and the whole video as easy and hard negative samples respectively. We then train our network with the Intra-Video Contrastive loss to make our positive and negative samples more discriminative. Our method has two advantages: (1) Our proposal generation process with a learnable Gaussian mask is more efficient and makes our positive sample higher quality. (2) The more difficult intra-video negative samples enable our model to distinguish highly confusing scenes. Experiments on two datasets show the effectiveness of our method. Code can be found at https://github.com/minghangz/cnm.

Topics: AAAI

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HOW TO CITE:

Minghang Zheng||Yanjie Huang||Qingchao Chen||Yang Liu Weakly Supervised Video Moment Localization with Contrastive Negative Sample Mining Proceedings of the AAAI Conference on Artificial Intelligence (2022) 3517-3525.

Minghang Zheng||Yanjie Huang||Qingchao Chen||Yang Liu Weakly Supervised Video Moment Localization with Contrastive Negative Sample Mining AAAI 2022, 3517-3525.

Minghang Zheng||Yanjie Huang||Qingchao Chen||Yang Liu (2022). Weakly Supervised Video Moment Localization with Contrastive Negative Sample Mining. Proceedings of the AAAI Conference on Artificial Intelligence, 3517-3525.

Minghang Zheng||Yanjie Huang||Qingchao Chen||Yang Liu. Weakly Supervised Video Moment Localization with Contrastive Negative Sample Mining. Proceedings of the AAAI Conference on Artificial Intelligence 2022 p.3517-3525.

Minghang Zheng||Yanjie Huang||Qingchao Chen||Yang Liu. 2022. Weakly Supervised Video Moment Localization with Contrastive Negative Sample Mining. "Proceedings of the AAAI Conference on Artificial Intelligence". 3517-3525.

Minghang Zheng||Yanjie Huang||Qingchao Chen||Yang Liu. (2022) "Weakly Supervised Video Moment Localization with Contrastive Negative Sample Mining", Proceedings of the AAAI Conference on Artificial Intelligence, p.3517-3525

Minghang Zheng||Yanjie Huang||Qingchao Chen||Yang Liu, "Weakly Supervised Video Moment Localization with Contrastive Negative Sample Mining", AAAI, p.3517-3525, 2022.

Minghang Zheng||Yanjie Huang||Qingchao Chen||Yang Liu. "Weakly Supervised Video Moment Localization with Contrastive Negative Sample Mining". Proceedings of the AAAI Conference on Artificial Intelligence, 2022, p.3517-3525.

Minghang Zheng||Yanjie Huang||Qingchao Chen||Yang Liu. "Weakly Supervised Video Moment Localization with Contrastive Negative Sample Mining". Proceedings of the AAAI Conference on Artificial Intelligence, (2022): 3517-3525.

Minghang Zheng||Yanjie Huang||Qingchao Chen||Yang Liu. Weakly Supervised Video Moment Localization with Contrastive Negative Sample Mining. AAAI[Internet]. 2022[cited 2023]; 3517-3525.


ISSN: 2374-3468


Published by AAAI Press, Palo Alto, California USA
Copyright 2022, Association for the Advancement of
Artificial Intelligence 1900 Embarcadero Road, Suite
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