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Linear time-variant transformations of generalized almost-cyclostationary signals.II. Development and applications

机译:广义近循环平稳信号的线性时变变换开发与应用

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For pt. I see ibid., vol.50, no.12, p.2947-61 (2000). In Part I, the problem of the linear time-variant (LTV) filtering is addressed in the fraction-of-time (FOT) probability framework. The adopted approach, which is an alternative to the classical stochastic one, provides a statistical characterization of the systems in terms of functions that can be estimated by a single time-series. The analysis is carried out with reference to the wide class of the generalized almost-cyclostationary (GACS) signals, which includes, as a special case, the class of the almost-cyclostationary (ACS) signals. Examples of applications and developments of the theory introduced in Part I are presented here in Part II. Specifically, the countability of the set of the output cycle frequencies is studied with reference to linear time-variant systems for both ACS and GACS not containing any ACS component input signals. Thus, the linear almost-periodically time-variant filtering and the product modulation are considered in detail. Moreover, several Doppler channel models are analyzed. In all these examples, it is shown that the FOT probability approach allows one to characterize the system and its output in terms of statistical functions that can be measured by a single time-series. Furthermore, the usefulness of considering the linear filtering problem within the class of the GACS signals is clarified, and several pitfalls arising from continuing to adopt for the observed time-series the ACS model when an increase in the data-record length makes the GACS model more appropriate are pointed out.
机译:对于pt。我见同上,第50卷,第12期,第2947-61页(2000)。在第一部分中,线性时变(LTV)滤波的问题在时间分数(FOT)概率框架中得到解决。所采用的方法是经典随机方法的替代方法,它根据可以通过单个时间序列估算的功能对系统进行统计表征。分析是参考广义的几乎循环平稳(GACS)信号的广泛类别,在特殊情况下,其中包括几乎循环平稳的(ACS)信号的类别。在第一部分中介绍了在第一部分中介绍的理论的应用和发展的示例。具体而言,参考线性时变系统,针对不包含任何ACS组件输入信号的ACS和GACS,研究了一组输出周期频率的可数性。因此,详细考虑了线性的,几乎周期性的时变滤波和乘积调制。此外,分析了几种多普勒信道模型。在所有这些示例中,都显示出FOT概率方法允许人们根据可以由单个时间序列测量的统计函数来表征系统及其输出。此外,阐明了在GACS信号类别内考虑线性滤波问题的有用性,并且当数据记录长度的增加使GACS模型继续用于观察到的时间序列ACS模型时,产生了一些陷阱指出更合适的。

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