Regional earthquake forecast model for M\(\ge \)6 using strain rate and seismicity for Western Himalayas
摘要
Earthquake prediction plays a crucial role in hazard preparedness and offers an edge to the concerned authorities to minimize the subsequent risk to lives and the economy. However, predicting earthquakes is challenging, considering the uncertainties involved in the earth tectonics process and complicated interactions. In a general sense, the continuous movement of tectonic plates results in the gradual accumulation of strain, which leads to rupture and subsequent occurrence of earthquakes. Further, with the enhancement in the density of earthquake recording stations and technical advancement in the navigation satellite systems, both earthquake and geodetic data are readily available, but its application in successfully forecasting future earthquakes with reasonable spatiotemporal accuracy remains a challenging endeavour. This paper aims to develop a grid-based, time-independent regional earthquake likelihood model for the Western Himalayan region (RELM-WH). Here, horizontal strain rates are utilized to calculate the geodetic moment rate, which is balanced by the empirical correlation coefficient with the historical seismicity. After that, the Poisson process and Truncated Gutenberg Richter processes were employed to calculate the probability of M