VisualHow: Multimodal Problem Solving
Jinhui Yang, Xianyu Chen, Ming Jiang, Shi Chen, Louis Wang, Qi Zhao
Abstract
Recent progress in the interdisciplinary studies of computer vision (CV) and natural language processing (NLP) has enabled the development of intelligent systems that can describe what they see and answer questions accordingly. However, despite showing usefulness in performing these vision-language tasks, existing methods still struggle in understanding real-life problems (i.e., how to do something) and suggesting step-by-step guidance to solve them. With an overarching goal of developing intelligent systems to assist humans in various daily activities, we propose Vi-sualHow, a free-form and open-ended research that focuses on understanding a real-life problem and deriving its solution by incorporating key components across multiple modalities. We develop a new dataset with 20,028 real-life problems and 102,933 steps that constitute their solutions, where each step consists of both a visual illustration and a textual description that guide the problem solving. To establish better understanding of problems and solutions, we also provide annotations of multimodal attention that localizes important components across modalities and solution graphs that encapsulate different steps in structured representations. These data and annotations enable a family of new vision-language tasks that solve real-life problems. Through extensive experiments with representative models, we demonstrate their effectiveness on training and testing models for the new tasks, and there is significant scope for improvement by learning effective attention mechanisms. Our dataset and models are available at https://github.com/formidify/VisualHow . * Equal contributions. Create an ornament with their picture on it. Cut out previous photos of your pet and make a collage. Play with your animal around the holidays. Give your pet a gift.
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Install the CLIlune papers fulltext a40913b0-1289-4873-a424-33dcd4ca67a6Cited by top-tier papers2
- Explainable Saliency: Articulating Reasoning with Contextual PrioritizationNuo Chen, Ming Jiang, Qi ZhaoCVPR 2025
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- Learning Transferable Visual Models From Natural Language SupervisionAlec Radford, Jong Wook Kim, Chris Hallacy, Aditya Ramesh et al.ICML 2021 · 47,906 citations
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- Visual Semantic Reasoning for Image-Text MatchingKunpeng Li, Yulun Zhang, Kai Li, Yuanyuan Li et al.ICCV 2019 · 598 citations
- MERLOT: Multimodal Neural Script Knowledge ModelsRowan Zellers, Ximing Lu, Jack Hessel, Youngjae Yu et al.NeurIPS 2021 · 463 citations
- VD-BERT: A Unified Vision and Dialog Transformer with BERTYue Wang, Shafiq R. Joty, Michael R. Lyu, Irwin King et al.EMNLP 2020 · 68 citations
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