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A spatio-temporal binary grid-based clustering model for seismicity analysis

delete2024-02-28
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PRE
AI
R
Rahul Kumar Vijay *
S
Satyasai Jagannath Nanda
A
Ashish Sharma
DOI:10.1007/s10044-024-01234-7delete
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摘要

摘要

En 中文
This paper presents a spatio-temporal binary grid-based clustering model for determining complex earthquake clusters with different shapes and heterogeneous densities present in a catalog. The 3D occurrence of earthquakes is mapped into a 2D-low memory sparse matrix through a grid mechanism in the binary domain with consideration of spatio-temporal attributes. Then, image-transformation of a non-empty sets binary feature matrix, a clustering strategy is implemented with logical AND operator as similarity measure among the binary vectors. This approach is applied to solve the problem of seismicity declustering which separates the clustering and non-clustering patterns of seismicity for real-world earthquake catalogs of Japan (1972-2020) and Eastern Mediterranean (1966-2020). Results demonstrate that the proposed method has a significant reduction in both computation and memory footprint with few tuning parameters. Background earthquakes have an impression on the homogeneous Poisson process with fair memory-less characteristics in the time domain as evident from graphical and statistical analysis. Overall seismicity and observed background activity both have similar multi-fractal behavior with a deviation of +/- 0.04\documentclass[12pt]{minimal} \usepackage{amsmath} \usepackage{wasysym} \usepackage{amsfonts} \usepackage{amssymb} \usepackage{amsbsy} \usepackage{mathrsfs} \usepackage{upgreek} \setlength{\oddsidemargin}{-69pt} \begin{document}$$\pm 0.04$$\end{document}. The comparative analysis is carried out with benchmark declustering models: Gardner-Knopoff, Uhrhammer, Gruenthal window-based method, and Reasenberg's approach, and superior performance of the proposed method is found in most cases.
Keyword:
Grid-based clustering
Seismicity
Earthquake catalogs
Homogeneous Poisson process
Morisita index
Memory coefficient

期刊

Pattern Analysis and Applications 封面图
Pattern Analysis and Applications
IF:
2
论文数:
1.9K
被引数:
1.9K

机构

N
national institute of technology (nit system)
学者数:
4.0W
论文数: 3.7W
被引数: 31
B
Banasthali Vidyapith
学者数:
986
论文数: 784
被引数: 2
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