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A Lempel-Ziv like approach for signal classification

机译:类似于Lempel-Ziv的信号分类方法

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In this paper, the seminal method proposed by Abraham Lempel and Jacob Ziv, aimed at the complexity analysis of sequences of symbols, was modified to compare similarities between two sequences. This modification allowed the creation of a new criterion which can replace likelihood in some pattern recognition applications. Moreover, to allow for analysis and comparison of multivariate continuously valued patterns, we also present a simple adaptation of the Lempel-Ziv's method to time-sampled signals. To illustrate the usefulness of these proposed tools, two sets of experimental results are presented, namely: one on speaker identity verification (biometrics) and another on healthcare signal detection. Both experiments yield promising performances. Moreover, as compared to a conventional pattern recognition method, the new approach provided better performances in terms of Equal Error Ratio in speaker verification experiments.
机译:本文对亚伯拉罕·伦佩尔(Abraham Lempel)和雅各布·齐夫(Jacob Ziv)提出的开创性方法进行了修改,旨在对符号序列进行复杂性分析,以比较两个序列之间的相似性。此修改允许创建新的准则,该准则可以替换某些模式识别应用程序中的可能性。而且,为了允许分析和比较多变量连续值模式,我们还提出了Lempel-Ziv方法对时间采样信号的简单修改。为了说明这些建议工具的实用性,提出了两组实验结果,分别是:一组关于说话人身份验证(生物统计学),另一组关于医疗保健信号检测。这两个实验均产生了有希望的性能。而且,与传统的模式识别方法相比,该新方法在说话人验证实验中的均等错误率方面提供了更好的性能。

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