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首页> 外文期刊>Earthquake spectra >Modeling spatial cross-correlation of multiple ground motion intensity measures (SAs, PGA, PGV, la, CAV, and significant durations) based on principal component and geostatistical analyses
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Modeling spatial cross-correlation of multiple ground motion intensity measures (SAs, PGA, PGV, la, CAV, and significant durations) based on principal component and geostatistical analyses

机译:基于主成分和地质统计分析的多次运动强度测量(SAS,PGA,PGV,LA,CAV,CAV和显着持续时间)的模拟空间互连

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摘要

Ground motion intensity measures (IMs) were observed to be spatially correlated during past earthquakes. In this article, a new spatial cross-correlation model for a vector-IM, which consists of spectral acceleration (SA) ordinates at 17 periods and six non-SA IMs (e.g. peak ground velocity, Arias intensity, cumulative absolute velocity, and significant durations), is proposed using principal component analysis (PCA) and geostatistical analysis. A total of 3797 ground motion records are selected from the NGA-West2 database for such analyses. PCA is used to transform the spatially correlated within-event residuals into uncorrelated principal components; a permissible function is then proposed to fit the empirical semivariograms calculated by the principal components. It is evident that the proposed model performs well in capturing the spatial variability characteristics of the multiple ground motion IMs. A simple example is presented to illustrate the use of the proposed model in realizing spatially correlated ground motion residuals of multiple IMs. The model developed enables one to simulate spatially cross-correlated IMs over a large area in a rapid way.
机译:观察到地震期间观察到地面运动强度措施(IMS)在空间上相关。在本文中,用于载体IM的新空间互相关模型,其由17个时段和六个非SA IMS(例如峰值地面速度,累积强度,累积绝对速度和重要性)组成持续时间),采用主成分分析(PCA)和地统计分析。共有3797个地面运动记录选自NGA-WIST2数据库以进行此类分析。 PCA用于将空间相关内的内部残差转换为不相关的主成分;然后提出了一种允许的函数以符合主成分计算的经验半啮盘函数。显然,所提出的模型在捕获多个地面运动IMS的空间可变性特性时表现良好。提出了一个简单的例子,以说明所提出的模型在实现多个IMS的空间相关地面运动残差。该模型开发的是一种以快速方式在大面积上模拟空间交叉相关的IMS。

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