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首页> 外文期刊>ETRI journal >Enhancing Performance with a Learnable Strategy for Multiple Question Answering Modules
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Enhancing Performance with a Learnable Strategy for Multiple Question Answering Modules

机译:通过多种问答模块的易学策略提高绩效

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A question answering (QA) system can be built using multiple QA modules that can individually serve as a QA system in and of themselves. This paper proposes a learnable, strategy-driven QA model that aims at enhancing both efficiency and effectiveness. A strategy is learned using a learning-based classification algorithm that determines the sequence of QA modules to be invoked and decides when to stop invoking additional modules. The learned strategy invokes the most suitable QA module for a given question and attempts to verify the answer by consulting other modules until the level of confidence reaches a threshold. In our experiments, our strategy learning approach obtained improvement over a simple routing approach by 10.5% in effectiveness and 27.2% in efficiency.
机译:可以使用多个QA模块构建问答系统(QA),这些模块可以单独或单独用作QA系统。本文提出了一个可学习的,策略驱动的质量保证模型,旨在提高效率和有效性。使用基于学习的分类算法学习策略,该算法确定要调用的质量检查模块的顺序,并确定何时停止调用其他模块。学习到的策略针对给定问题调用最合适的质量检查模块,并尝试通过咨询其他模块来验证答案,直到置信度达到阈值为止。在我们的实验中,我们的策略学习方法比简单的路由方法获得了10.5%的效率和27.2%的效率提升。

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