Natural Language Video Localization with Learnable Moment Proposals
Shaoning Xiao, Long Chen, Jian Shao, Yueting Zhuang, Jun Xiao
Abstract
Given an untrimmed video and a natural language query, Natural Language Video Localization (NLVL) aims to identify the video moment described by the query. To address this task, existing methods can be roughly grouped into two groups: 1) propose-and-rank models first define a set of hand-designed moment candidates and then find out the best-matching one. 2) proposal-free models directly predict two temporal boundaries of the referential moment from frames. Currently, almost all the propose-and-rank methods have inferior performance than proposal-free counterparts. In this paper, we argue that propose-and-rank approach is underestimated due to the predefined manners: 1) Hand-designed rules are hard to guarantee the complete coverage of targeted segments. 2) Densely sampled candidate moments cause redundant computation and degrade the performance of ranking process. To this end, we propose a novel model termed LP-Net (Learnable Proposal Network for NLVL) with a fixed set of learnable moment proposals. The position and length of these proposals are dynamically adjusted during training process. Moreover, a boundary-aware loss has been proposed to leverage frame-level information and further improve the performance. Extensive ablations on two challenging NLVL benchmarks have demonstrated the effectiveness of LPNet over existing state-of-the-art methods 1 .
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Cited by top-tier papers8
- MomentDiff: Generative Video Moment Retrieval from Random to RealPandeng Li, Chen-Wei Xie, Hongtao Xie, Liming Zhao et al.NeurIPS 2023 · 113 citations
- Classification-Then-Grounding: Reformulating Video Scene Graphs as Temporal Bipartite GraphsKaifeng Gao, Long Chen, Yulei Niu, Jian Shao et al.CVPR 2022 · 34 citations
- MS-DETR: Natural Language Video Localization with Sampling Moment-Moment InteractionJing Wang, Aixin Sun, Hao Zhang, Xiaoli LiACL 2023 · 13 citations
- SnAG: Scalable and Accurate Video GroundingFangzhou Mu, Sicheng Mo, Yin LiCVPR 2024 · 13 citations
- Mixup-Augmented Temporally Debiased Video Grounding with Content-Location DisentanglementXin Wang, Zihao Wu, Hong Chen, Xiaohan Lan et al.ACM MM 2023 · 9 citations
Builds on9
- An Image is Worth 16x16 Words: Transformers for Image Recognition at ScaleAlexey Dosovitskiy, Lucas Beyer, Alexander Kolesnikov, Dirk Weissenborn et al.ICLR 2021 · 21,477 citations
- CenterNet: Keypoint Triplets for Object DetectionKaiwen Duan, Song Bai, Lingxi Xie, Honggang Qi et al.ICCV 2019 · 3,348 citations
- Learning 2D Temporal Adjacent Networks for Moment Localization with Natural LanguageSongyang Zhang, Houwen Peng, Jianlong Fu, Jiebo LuoAAAI 2020 · 579 citations
- Span-based Localizing Network for Natural Language Video LocalizationHao Zhang, Aixin Sun, Wei Jing, Joey Tianyi ZhouACL 2020 · 279 citations
- Boundary Proposal Network for Two-stage Natural Language Video LocalizationShaoning Xiao, Long Chen, Songyang Zhang, Wei Ji et al.AAAI 2021 · 186 citations
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