The Correction of Ill-Formed Input Using History-Based Expectation with Applications to Speech Understanding

Pamela E. Fink, A. Biermann
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引用次数: 38

Abstract

A method for error correction of ill-formed input is described that acquires dialogue patterns in typical usage and uses these patterns to predict new inputs. Error correction is done by strongly biasing parsing toward expected meanings unless clear evidence from the input shows the current sentence is not expected. A dialogue acquisition and tracking algorithm is presented along with a description of its implementation in a voice interactive system. A series of tests are described that show the power of the error correction methodology when stereotypic dialogue occurs.
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基于历史期望的错误输入纠正及其在语音理解中的应用
描述了一种错误格式输入的纠错方法,该方法获取典型用法中的对话模式,并使用这些模式预测新的输入。错误纠正是通过强烈偏向预期意义的解析来完成的,除非来自输入的明确证据表明当前句子不是预期的。提出了一种对话采集和跟踪算法,并描述了该算法在语音交互系统中的实现。本文描述了一系列测试,这些测试显示了在出现刻板印象对话时纠错方法的威力。
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