"Hang in There": Lexical and Visual Analysis to Identify Posts Warranting Empathetic Responses

March 12, 2019 ยท Declared Dead ยท ๐Ÿ› The Florida AI Research Society

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Authors Mimansa Jaiswal, Sairam Tabibu, Erik Cambria arXiv ID 1903.05210 Category cs.CL: Computation & Language Cross-listed cs.SI Citations 2 Venue The Florida AI Research Society Last Checked 5 months ago
Abstract
In the past few years, social media has risen as a platform where people express and share personal incidences about abuse, violence and mental health issues. There is a need to pinpoint such posts and learn the kind of response expected. For this purpose, we understand the sentiment that a personal story elicits on different posts present on different social media sites, on the topics of abuse or mental health. In this paper, we propose a method supported by hand-crafted features to judge if the post requires an empathetic response. The model is trained upon posts from various web-pages and corresponding comments, on both the captions and the images. We were able to obtain 80% accuracy in tagging posts requiring empathetic responses.
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