通过阅读简化文本来学习的原型系统

Kenneth D. Forbus, C. Riesbeck, L. Birnbaum, K. Livingston, Abhishek B. Sharma, Leo C. Ureel
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引用次数: 5

摘要

能够通过阅读来学习的系统将从根本上改变构建大型知识库的经济模式。本文介绍了一个通过阅读扩展知识库的原型系统Learning Reader。学习阅读器由三个部分组成。Reader将文本转换为正式表示的用例,它使用直接内存访问解析器(Direct Memory Access Parser)在一个源自ResearchCyc的大型知识库上操作。Q/A系统提供了一种测试系统所学内容的方法,使用从知识库中自动提取的公理集进行跟踪。Ruminator试图通过离线处理来提高系统对所读内容的理解,它通过几种方式为自己生成问题,包括与先前材料的类比,以及从知识库中的示例及其先前阅读的内容自动构建概括。我们讨论了系统的架构,每个组件是如何工作的,以及一些实验结果。
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A Prototype System that Learns by Reading Simplified Texts
Systems that could learn by reading would radically change the economics of building large knowledge bases. This paper describes Learning Reader, a prototype system that extends its knowledge base by reading. Learning Reader consists of three components. The Reader, which converts text into formally represented cases, uses a Direct Memory Access Parser operating over a large knowledge base, derived from ResearchCyc. The Q/A system, which provides a means of quizzing the system on what it has learned, uses focused sets of axioms automatically extracted from the knowledge base for tractability. The Ruminator, which attempts to improve the system's understanding of what it has read by off-line processing, generates questions for itself by several means, including analogies with prior material and automatically constructed generalizations from examples in the KB and its prior reading. We discuss the architecture of the system, how each component works, and some experimental results.
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A Prototype System that Learns by Reading Simplified Texts Machine Reading as a Cognitive Science Research Instrument
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