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Signal segmentation in time-frequency plane using R#x00E9;nyi entropy - Application in seismic signal processing

机译:基于Rényi熵的时频平面信号分割-在地震信号处理中的应用

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摘要

Reliable seismic waves characterization is essential for better understanding wave propagation phenomena, providing new physical insight into soil properties. Many works in this area have been based on detecting special patterns or clusters in seismic data, event detection using parametric models and time-frequency analysis. In this paper we present a new approach making use of the short-term time-frequency Rényi entropy and maximum a posteriori probability (MAP) estimator, operating on time-frequency Rényi entropy, as a new space of decision; this method enables more robust feature extraction and a more accurate classification. This approach was used in simulation and in the analysis of the earthquake records during the Kocaeli, Arcelik seism, Turkey, August 1999, a strong to moderate ground motion.
机译:可靠的地震波表征对于更好地理解波传播现象,为土壤特性提供新的物理见解至关重要。该领域的许多工作都基于检测地震数据中的特殊模式或聚类,使用参数模型进行事件检测以及时频分析。在本文中,我们提出一种利用短期时频Rényi熵和最大后验概率(MAP)估计器的新方法,该方法基于时频Rényi熵作为决策的新空间。此方法可实现更强大的特征提取和更准确的分类。此方法用于模拟和分析1999年8月土耳其阿卡利克(Arcelik)地震期间的强烈地震到中等地震期间的地震记录。

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