Cross-modal Causal Relation Alignment for Video Question Grounding
Weixing Chen, Yang Liu, Binglin Chen, Jiandong Su, Yongsen Zheng, Liang Lin
Abstract
Video question grounding (VideoQG) requires models to answer the questions and simultaneously infer the relevant video segments to support the answers. However, existing VideoQG methods usually suffer from spurious cross-modal correlations, leading to a failure to identify the dominant visual scenes that align with the intended question. Moreover, vision-language models exhibit unfaithful generalization performance and lack robustness on challenging downstream tasks such as VideoQG. In this work, we propose a novel VideoQG framework named Cross-modal Causal Relation Alignment (CRA), to eliminate spurious correlations and improve the causal consistency between questionanswering and video temporal grounding. Our CRA involves three essential components: i) Gaussian Smoothing Grounding (GSG) module for estimating the time interval via cross-modal attention, which is de-noised by an adaptive Gaussian filter, ii) Cross-Modal Alignment (CMA) enhances the performance of weakly supervised VideoQG by leveraging bidirectional contrastive learning between estimated video segments and QA features, iii) Explicit Causal Intervention (ECI) module for multimodal deconfounding, which involves front-door intervention for vision and backdoor intervention for language. Extensive experiments on two VideoQG datasets demonstrate the superiority of our CRA in discovering visually grounded content and achieving robust question reasoning. Codes are available at https://github.com/WissingChen/CRA-GQA . * Corresponding Author how does the woman help the baby at the start ? A. catch back balloon B. kiss them C. rock baby D. push the chair baby is in E. holds his hand Faithful Grounding for Answer E.
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Install the CLIlune papers fulltext c0d0a53d-d1ed-4b4e-896d-db884f8c8cffCited by top-tier papers10
- 3DAffordSplat: Efficient Affordance Reasoning with 3D GaussiansZeming Wei, Junyi Lin, Yang Liu, Weixing Chen et al.ACM MM 2025 · 4 citations
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- Beyond Perceptual Shortcuts: Causal-Inspired Debiasing Optimization for Generalizable Video Reasoning in Lightweight MLLMsJingze Wu, Quan Zhang, Hongfei Suo, Zeqiang Cai et al.CVPR 2026 · 2 citations
- CausalVTG: Towards Robust Video Temporal Grounding via Causal InferenceQiyi Wang, Senda Chen, Ying ShenNeurIPS 2025 · 1 citation
- CaST-Bench: Benchmarking Causal Chain-Grounded Spatio-Temporal Reasoning for Video Question AnsweringMingfang Zhang, Jingjing Pan, Ashutosh Kumar, Rajat Saini et al.CVPR 2026 · 1 citation
Builds on17
- Learning Transferable Visual Models From Natural Language SupervisionAlec Radford, Jong Wook Kim, Chris Hallacy, Aditya Ramesh et al.ICML 2021 · 47,906 citations
- Zero-Shot Video Question Answering via Frozen Bidirectional Language ModelsAntoine Yang, Antoine Miech, Josef Sivic, Ivan Laptev et al.NeurIPS 2022 · 305 citations
- Self-Chained Image-Language Model for Video Localization and Question AnsweringShoubin Yu, Jaemin Cho, Prateek Yadav, Mohit BansalNeurIPS 2023 · 281 citations
- Video-of-Thought: Step-by-Step Video Reasoning from Perception to CognitionHao Fei, Shengqiong Wu, Wei Ji, Hanwang Zhang et al.ICML 2024 · 182 citations
- Invariant Grounding for Video Question AnsweringYicong Li, Xiang Wang, Junbin Xiao, Wei Ji et al.CVPR 2022 · 108 citations
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