Key-Word Based Query Recognition in a Speech Corpus by Using Artificial Neural Networks

R. Sukumar, Sarin Sukumar, Shah.A Firoz, Babu Anto
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引用次数: 9

Abstract

Information Retrieval deals with the easy access to the information based on the user’s request, which will be presented in the form of a query. A dialog system that understands spoken natural language queries asks for further information if necessary and produces an answer to the speaker’s query. Most of the research works in Information Extraction focus only on written language processing, in which a few are devoted to the study of Spoken Language Information Extraction. This paper discusses a novel technique for recognition of the isolated question words from Malayalam (one of the south Indian languages) speech query. We have created and analyzed a database consisting of 500 isolated question words. Fast Fourier Transform (FFT) and Discrete Cosine transform (DCT) is used for the feature extraction purpose and Artificial Neural Network (ANN) is used for classification and recognition. A recognition accuracy of 85% could be achieved from this experiment
基于人工神经网络的语音语料库关键词查询识别
信息检索处理基于用户请求的信息的轻松访问,这些请求将以查询的形式呈现。一个能够理解自然语言语音查询的对话系统会在必要时询问进一步的信息,并对说话者的查询给出回答。信息提取的研究工作大多集中在书面语处理方面,很少有针对口语信息提取的研究。本文讨论了一种从马拉雅拉姆语(南印度语言之一)语音查询中识别孤立疑问词的新技术。我们已经创建并分析了一个由500个孤立问题词组成的数据库。利用快速傅立叶变换(FFT)和离散余弦变换(DCT)进行特征提取,利用人工神经网络(ANN)进行分类和识别。该实验可达到85%的识别准确率
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