首页> 外文会议>ACL-05; Association for Computational Linguistics Annual Meeting; 20050625-30; Ann Arbor,MI(US) >Learning Strategies for Open-Domain Natural Language Question Answering
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Learning Strategies for Open-Domain Natural Language Question Answering

机译:开放域自然语言问答的学习策略

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摘要

This work presents a model for learning inference procedures for story comprehension through inductive generalization and reinforcement learning, based on classified examples. The learned inference procedures (or strategies) are represented as of sequences of transformation rules. The approach is compared to three prior systems, and experimental results are presented demonstrating the efficacy of the model.
机译:这项工作基于分类的示例,提供了一种通过归纳概括和强化学习来学习故事理解推理程序的模型。所学习的推理过程(或策略)以转换规则序列的形式表示。将该方法与三个现有系统进行了比较,并给出了实验结果,证明了该模型的有效性。

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