Question Answering in Natural Language: the Special Case of Temporal Expressions

November 23, 2023 ยท Declared Dead ยท ๐Ÿ› Recent Advances in Natural Language Processing

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Authors Armand Stricker arXiv ID 2311.14087 Category cs.CL: Computation & Language Citations 6 Venue Recent Advances in Natural Language Processing Last Checked 5 months ago
Abstract
Although general question answering has been well explored in recent years, temporal question answering is a task which has not received as much focus. Our work aims to leverage a popular approach used for general question answering, answer extraction, in order to find answers to temporal questions within a paragraph. To train our model, we propose a new dataset, inspired by SQuAD, specifically tailored to provide rich temporal information. We chose to adapt the corpus WikiWars, which contains several documents on history's greatest conflicts. Our evaluation shows that a deep learning model trained to perform pattern matching, often used in general question answering, can be adapted to temporal question answering, if we accept to ask questions whose answers must be directly present within a text.
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