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Non-stationary/transient signal feature extraction system

机译:非平稳/瞬态信号特征提取系统

摘要

Principal features are inventively derived from a non-stationary time series signal, and can be used to classify the attributes of the signal. Intrinsic to the invention is its recognition of the value of information contained within singular vectors. The invention therefore seeks to render singular vectors as proper density functions for purposes of formulating at least one feature of a signal, which is or has been sensed. To this end, the signal is typically evaluated thusly according to the invention: a time-frequency distribution (e.g., positive time-frequency distribution) matrix is generated; the time-frequency distribution matrix is decomposed; an element-by-element square of singular vectors is performed; the non-principal singular values are sorted and truncated; density functions are obtained; the density functions are normalized; and, at least one feature from the normalized density functions is formulated. The invention admits of utilization of any time-frequency distribution pursuant to the general formulation of Leon Cohen, first expounded in 1966; a positive time-frequency distribution may prove especially propitious for many applications.
机译:根据本发明,主要特征是从非平稳时间序列信号中得出的,并且可以用于对信号的属性进行分类。本发明的内在特征是其识别包含在奇异向量中的信息的价值。因此,本发明寻求将奇异矢量呈现为适当的密度函数,以用于形成被感测或已经感测到的信号的至少一个特征的目的。为此,通常根据本发明如此评估信号:生成时频分布(例如,正时频分布)矩阵;分解时频分布矩阵;执行奇异矢量的逐个元素平方;非主奇异值被排序和截断;获得密度函数;密度函数归一化;并制定归一化密度函数中的至少一个特征。本发明承认根据1966年首次提出的Leon Cohen的一般公式可以利用任何时频分布。正时频分布可能对许多应用特别有利。

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