Science Checker: Extractive-Boolean Question Answering For Scientific Fact Checking

April 26, 2022 ยท Declared Dead ยท ๐Ÿ› MAD@ICMR

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Authors Loรฏc Rakotoson, Charles Letaillieur, Sylvain Massip, Frรฉjus Laleye arXiv ID 2204.12263 Category cs.CL: Computation & Language Cross-listed cs.AI, cs.IR, cs.LG Citations 5 Venue MAD@ICMR Last Checked 5 months ago
Abstract
With the explosive growth of scientific publications, making the synthesis of scientific knowledge and fact checking becomes an increasingly complex task. In this paper, we propose a multi-task approach for verifying the scientific questions based on a joint reasoning from facts and evidence in research articles. We propose an intelligent combination of (1) an automatic information summarization and (2) a Boolean Question Answering which allows to generate an answer to a scientific question from only extracts obtained after summarization. Thus on a given topic, our proposed approach conducts structured content modeling based on paper abstracts to answer a scientific question while highlighting texts from paper that discuss the topic. We based our final system on an end-to-end Extractive Question Answering (EQA) combined with a three outputs classification model to perform in-depth semantic understanding of a question to illustrate the aggregation of multiple responses. With our light and fast proposed architecture, we achieved an average error rate of 4% and a F1-score of 95.6%. Our results are supported via experiments with two QA models (BERT, RoBERTa) over 3 Million Open Access (OA) articles in the medical and health domains on Europe PMC.
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