首页> 外文会议>8th World Multi-Conference on Systemics, Cybernetics and Informatics(SCI 2004) vol.6: Image, Acoustic, Signal Processing and Optical Systems, Technologies and Applications >Spontaneous Speech Understanding in Train Timetable Inquiry Processing Based on N-gram Language Models and Finite State Transducers
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Spontaneous Speech Understanding in Train Timetable Inquiry Processing Based on N-gram Language Models and Finite State Transducers

机译:基于N-gram语言模型和有限状态传感器的列车时刻表查询处理中的自发语音理解

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The presented paper concerns the spoken language understanding in an information retrieval dialogue system. There are described methods of use the finite state transducers for conceptual semantic parsing and meaning extraction from speaker's utterances. In this case, the main aim of understanding is an identification of important semantic constituents and their interpretation within supposed frame structure. The key problem is to create an appropriate mapping between sequence of recognized words and concept based meaning that represents real-world entities. We propose a hierarchical semantic n-gram language model for parsing of a first initiative spontaneous speech train timetable inquiry. The design, implementation and evaluation of the model in experimental understanding system are described below.
机译:提出的论文涉及信息检索对话系统中的口头语言理解。描述了使用有限状态换能器进行概念性语义解析和从说话者话语中提取意思的方法。在这种情况下,理解的主要目的是在假设的框架结构中识别重要的语义成分及其解释。关键问题是要在识别的单词序列与代表现实世界实体的基于概念的含义之间创建适当的映射。我们提出了一个层次化的语义n-gram语言模型来解析第一个主动的自发语音列车时间表查询。实验理解系统中模型的设计,实现和评估描述如下。

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