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Retrieve and Re-rank: A Simple and Effective IR Approach to Simple Question Answering over Knowledge GraphsAuthors: Vishal Gupta,Manoj Chinnakotla,Manish Shrivastava Conference: Conference on Empirical Methods in Natural Language Processing (EMNLP-2018 2018) Location Brussels, Belgium Date: 2018-10-31 Report no: IIIT/TR/2018/98 AbstractSimpleQuestions is a commonly used benchmark for single-factoid question answering (QA) over Knowledge Graphs (KG). Existing QA systems rely on various components to solve different sub-tasks of the problem (such as entity detection, entity linking, relation prediction and evidence integration). In this work, we propose a different approach to the problem and present an information retrieval style solution for it. We adopt a two-phase approach: candidate generation and candidate re-ranking to answer questions. We propose a Triplet-Siamese-Hybrid CNN (TSHCNN) to re-rank candidate answers. Our approach achieves an accuracy of 80% which sets a new state-of-the-art on the SimpleQuestions dataset. Full paper: pdf Centre for Language Technologies Research Centre |
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