ChartNet: Visual Reasoning over Statistical Charts using MAC-Networks

November 21, 2019 Β· Declared Dead Β· πŸ› IEEE International Joint Conference on Neural Network

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Authors Monika Sharma, Shikha Gupta, Arindam Chowdhury, Lovekesh Vig arXiv ID 1911.09375 Category cs.CV: Computer Vision Cross-listed cs.CL, cs.LG Citations 10 Venue IEEE International Joint Conference on Neural Network Last Checked 5 months ago
Abstract
Despite the improvements in perception accuracies brought about via deep learning, developing systems combining accurate visual perception with the ability to reason over the visual percepts remains extremely challenging. A particular application area of interest from an accessibility perspective is that of reasoning over statistical charts such as bar and pie charts. To this end, we formulate the problem of reasoning over statistical charts as a classification task using MAC-Networks to give answers from a predefined vocabulary of generic answers. Additionally, we enhance the capabilities of MAC-Networks to give chart-specific answers to open-ended questions by replacing the classification layer by a regression layer to localize the textual answers present over the images. We call our network ChartNet, and demonstrate its efficacy on predicting both in vocabulary and out of vocabulary answers. To test our methods, we generated our own dataset of statistical chart images and corresponding question answer pairs. Results show that ChartNet consistently outperform other state-of-the-art methods on reasoning over these questions and may be a viable candidate for applications containing images of statistical charts.
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