Papers › Scene Text Visual Question Answering

Scene Text Visual Question Answering

31 May 2019ICCV 2019 10arXiv:1905.13648archive 2025-07-28

Ali Furkan Biten, Ruben Tito, Andres Mafla, Lluis Gomez, Marçal Rusiñol, Ernest Valveny, C. V. Jawahar, Dimosthenis Karatzas

Current visual question answering datasets do not consider the rich semantic information conveyed by text within an image. In this work, we present a new dataset, ST-VQA, that aims to highlight the importance of exploiting high-level semantic information present in images as textual cues in the VQA process. We use this dataset to define a series of tasks of increasing difficulty for which reading the scene text in the context provided by the visual information is necessary to reason and generate an appropriate answer. We propose a new evaluation metric for these tasks to account both for reasoning errors as well as shortcomings of the text recognition module. In addition we put forward a series of baseline methods, which provide further insight to the newly released dataset, and set the scene for further research.

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Gunnika/Visual-Question-Answering mentioned on GitHubpytorch report
rubenpt91/MP-DocVQA-Framework mentioned on GitHubpytorchMIT report
rubenpt91/pfl-docvqa-competition mentioned on GitHubpytorch report
shailzajolly/icdar_vqa mentioned on GitHubpytorch report

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Question AnsweringVisual Question AnsweringVisual Question Answering (VQA)

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ST-VQA

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