基于机器学习的MODIS LST巴基斯坦三次地震热异常探测

Amna Hafeez, Munawar Shah, Rasim Shahzad
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引用次数: 0

摘要

热异常可以通过遥感仪器监测,以提供对即将发生的地震(EQ)的一些了解。本文利用中分辨率成像光谱直径(MODIS)研究了巴基斯坦地震发生时与三个EQs(2019年Azad Kashmir、2013年Awaran和2017年Khuzdar)相关的热异常。研究了主震日前后20 d的地表温度(LST)资料。主震前后10天的温度测量值显示不规律。此外,还使用神经网络对数据进行分析,以验证统计观测到的异常。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Machine Learning Based Thermal Anomaly Detection Associated with Three Earthquakes in Pakistan Using MODIS LST
Thermal anomalies can be monitored by remote sensing instruments to provide some insight into forthcoming earthquakes (EQ). In this paper, we study thermal anomaly associated with the three EQs (2019 Azad Kashmir, 2013 Awaran and 2017 Khuzdar) in Pakistan from Moderate Resolution Imaging Spectrodiameter (MODIS) when earthquakes were underway. The temporal data of Land Surface Temperature (LST) is deliberated for 20 days before and 10 days later the main shock day. Temperature measurements in the 10 days preceding and after the main event show irregular values. Moreover, the data is also analyzed using neural network for validating the statistically observed anomalies.
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