Spatial Weibull Regression with Multivariate Log Gamma Process and Its Applications to China Earthquake Economic Loss

Hou‐Cheng Yang, Lijiang Geng, Yishu Xue, Guanyu Hu
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引用次数: 1

Abstract

Bayesian spatial modeling of heavy-tailed distributions has become increasingly popular in various areas of science in recent decades. We propose a Weibull regression model with spatial random effects for analyzing extreme economic loss. Model estimation is facilitated by a computationally efficient Bayesian sampling algorithm utilizing the multivariate Log-Gamma distribution. Simulation studies are carried out to demonstrate better empirical performances of the proposed model than the generalized linear mixed effects model. An earthquake data obtained from Yunnan Seismological Bureau, China is analyzed. Logarithm of the Pseudo-marginal likelihood values are obtained to select the optimal model, and Value-at-risk, expected shortfall, and tail-value-at-risk based on posterior predictive distribution of the optimal model are calculated under different confidence levels.
多元对数过程空间威布尔回归及其在中国地震经济损失分析中的应用
近几十年来,重尾分布的贝叶斯空间建模在各个科学领域日益流行。本文提出了一个具有空间随机效应的威布尔回归模型,用于分析极端经济损失。利用多变量Log-Gamma分布的计算效率高的贝叶斯抽样算法促进了模型估计。仿真研究表明,该模型的经验性能优于广义线性混合效应模型。对云南地震局的一次地震资料进行了分析。对拟边际似然值取对数,选择最优模型,并在不同置信水平下,计算基于最优模型后验预测分布的风险值、期望缺口和尾部风险值。
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