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DETECTION OF ANOMALOUS EVENTS IN BIOMEDICAL SIGNALS BY WIGNER ANALYSIS AND INSTANT-WISE RéNYI ENTROPY

机译:WIGNER分析和即时Rényi熵检测生物医学信号中的异常事件

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Rényi entropy is receiving an important attention as a data analysis tool in many practical applications, due to its relevant properties when dealing with time-frequency representations (TFR). Rényi entropy is characterized for providing generalized information contents (entropy) of a given signal. In this paper we present our results from applying the Rényi entropy to a 1-D pseudo-Wigner distribution (PWD) of a biomedical signal. A processed filtered signal is obtained by the application of a Rényi entropy measure to the instant-wise PWD of the given biomedical signal. The Rényi entropy allows individually identify, from an entropic criterion, which instants have a higher amount of information along the temporal data. Our method makes possible accurate localization of normal and pathological events in biomedical signals; hence early diagnosis of diseases is facilitated this way. The utility of our method is illustrated with examples of application to phonocardiograms.
机译:由于Rényi熵在处理时频表示(TFR)时具有相关属性,因此它在许多实际应用中作为数据分析工具受到了广泛的关注。 Rényi熵的特征在于提供给定信号的广义信息内容(熵)。在本文中,我们介绍了将Rényi熵应用于生物医学信号的一维伪维格纳分布(PWD)的结果。通过将Rényi熵测度应用于给定生物医学信号的即时PWD,可以获得经过处理的滤波信号。 Rényi熵允许根据熵标准单独识别沿瞬时数据具有较高信息量的瞬间。我们的方法使生物医学信号中正常和病理事件的准确定位成为可能。因此,这种方式有助于疾病的早期诊断。我们的方法的实用性通过在心电图上的应用示例进行了说明。

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