Event-Guided Procedure Planning from Instructional Videos with Text Supervision
An-Lan Wang, Kun-Yu Lin, Jia-Run Du, Jingke Meng, Wei-Shi Zheng
Abstract
In this work, we focus on the task of procedure planning from instructional videos with text supervision, where a model aims to predict an action sequence to transform the initial visual state into the goal visual state. A critical challenge of this task is the large semantic gap between observed visual states and unobserved intermediate actions, which is ignored by previous works. Specifically, this semantic gap refers to that the contents in the observed visual states are semantically different from the elements of some action text labels in a procedure. To bridge this semantic gap, we propose a novel event-guided paradigm, which first infers events from the observed states and then plans out actions based on both the states and predicted events. Our inspiration comes from that planning a procedure from an instructional video is to complete a specific event and a specific event usually involves specific actions. Based on the proposed paradigm, we contribute an Event-guided Prompting-based Procedure Planning (E3P) model, which encodes event information into the sequential modeling process to support procedure planning. To further consider the strong action associations within each event, our E3P adopts a mask-and-predict approach for relation mining, incorporating a probabilistic masking scheme for regularization. Extensive experiments on three datasets demonstrate the effectiveness of our proposed model.
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Install the CLIlune papers fulltext 5edeb927-e4a5-453a-92bf-4e584a40b3aaCited by top-tier papers12
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- Why Not Use Your Textbook? Knowledge-Enhanced Procedure Planning of Instructional VideosKumaranage Ravindu Yasas Nagasinghe, Honglu Zhou, Malitha Gunawardhana, Martin Renqiang Min et al.CVPR 2024 · 5 citations
Builds on12
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- TSM: Temporal Shift Module for Efficient Video UnderstandingJi Lin, Chuang Gan, Song HanICCV 2019 · 2,049 citations
- HowTo100M: Learning a Text-Video Embedding by Watching Hundred Million Narrated Video ClipsAntoine Miech, Dimitri Zhukov, Jean-Baptiste Alayrac, Makarand Tapaswi et al.ICCV 2019 · 1,437 citations
- VidTr: Video Transformer Without ConvolutionsYanyi Zhang, Xinyu Li, Chunhui Liu, Bing Shuai et al.ICCV 2021 · 224 citations
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- P3IV: Probabilistic Procedure Planning from Instructional Videos with Weak SupervisionHe Zhao, Isma Hadji, Nikita Dvornik, Konstantinos G. Derpanis et al.CVPR 2022 · 23 citations
- PDPP: Projected Diffusion for Procedure Planning in Instructional VideosHanlin Wang, Yilu Wu, Sheng Guo, Limin WangCVPR 2023
- VG-TVP: Multimodal Procedural Planning via Visually Grounded Text-Video PromptingMuhammet Furkan Ilaslan, Ali Köksal, Kevin Qinghong Lin, Burak Satar et al.AAAI 2025 · 3 citations
- Skip-Plan: Procedure Planning in Instructional Videos via Condensed Action Space LearningZhiheng Li, Wenjia Geng, Muheng Li, Lei Chen et al.ICCV 2023 · 16 citations
