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篇名
A Flexible and Extensible Framework for Multiple Answer Modes Question Answering
並列篇名
A Flexible and Extensible Framework for Multiple Answer Modes Question Answering
作者 Cheng-Chung FanChia-Chih KuoShang-Bao LuoPei-Jun LiaoKuang-Yu Chang
英文摘要
This paper presents a framework to answer the questions that require various kinds of inference mechanisms (such as Extraction, Entailment-Judgement, and Summarization). Most of the previous approaches adopt a rigid framework which handles only one inference mechanism. Only a few of them adopt several answer generation modules for providing different mechanisms; however, they either lack an aggregation mechanism to merge the answers from various modules, or are too complicated to be implemented with neural networks. To alleviate the problems mentioned above, we propose a divide-and-conquer framework, which consists of a set of various answer generation modules, a dispatch module, and an aggregation module. The answer generation modules are designed to provide different inference mechanisms, the dispatch module is used to select a few appropriate answer generation modules to generate answer candidates, and the aggregation module is employed to select the final answer. We test our framework on the 2020 Formosa Grand Challenge Contest dataset. Experiments show that the proposed framework outperforms the state-of-the-art Roberta-large model by about 11.4%.
起訖頁 33-42
關鍵詞 QAFrameworkDivide-and-Conquer strategyAnswer AggregationInference mechanism
刊名 ROCLING論文集  
期數 202112 (2021期)
出版單位 中華民國計算語言學學會
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