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Language classification using prosodic features: Comparing intensity and pitch

机译:使用韵律特征的语言分类:比较强度和间距

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The performance of Human Language Technology systems is known to be severely impacted by language variations. Distance measures have been used in several applications of speech processing to analyze different varying speech attributes. However, not much work has been done on language distance measures, and even less work has been done involving South African languages. Prosodic information-such as intonation and stress which are primarily encoded in pitch and intensity-have been known to lend language-specific variations to human language. We explore the use of intensity and pitch characteristics of languages for measuring the linguistic distance of six South African languages. Both methods are acoustic based and compare accumulative mean differences between pairs of languages to generate difference matrices. It is shown that cluster analysis resulting from the pitch distance matrix correlates closely with human perceptual distances and existing literature about the six languages whereas intensity distances show no distinct patterns of correlation.
机译:已知人类语言技术系统的性能受到语言变异的严重影响。语音处理的若干应用中使用了距离测量来分析不同的不同语音属性。但是,在语言距离措施上没有做出很多工作,甚至涉及南非语言的工作较少。已知韵律信息(例如主要编码的语调和压力),已知是对人类语言借出特定语言的变化。我们探索使用语言的强度和俯仰特性来测量六种南非语言的语言距离。两种方法都是基于声学的,并比较了对语言成对之间的累积平均差异来产生差分矩阵。结果表明,由俯仰距离矩阵产生的集群分析与人类感知距离和现有文献紧密相关,并且关于六种语言的现有文献,而强度距离显示没有不同的相关模式。

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