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The SAFER geodatabase for the Kathmandu valley: Bayesian kriging for data-scarce regions

机译:加德满都谷的更安全的地理数据库:贝叶斯克里格为数据稀缺的地区

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Geostatistical methods are valuable to better understand the spatial distribution of geotechnical parameters at regional scale and to optimize the locations of future ground investigations. This article investigates the use of the kriging interpolation method to extend the knowledge of a specific geotechnical property from a few sites to a broader geographical area with a focus on the Kathmandu valley (Nepal). A Bayesian form of kriging is proposed in this article. The estimation of the shear wave velocity in the uppermost 30 m of soil (V-S30) in the Kathmandu valley is examined. Slope-based V-S30 estimates from the United States Geological Survey are used as prior information, and 15 V-S30 measurements are used as more precise data. Considering the limited number of high-quality V-S30 measurements available in the valley, it is shown that the Bayesian scheme can lead to a more robust estimation of V-S30 than that obtained with the ordinary kriging approach. A methodology for conditioning prior low-precision data to the measurements is also presented.
机译:地质统计方法有助于更好地了解区域规模的岩土参数的空间分布,并优化未来地面调查的位置。本文调查了使用Kriging插值方法的使用,将特定岩土性财产的知识从几个站点扩展到更广泛的地理区域,重点是加德满都谷(尼泊尔)。本文提出了一种贝叶斯形式的Kriging。检查了加德满都谷的最上面的30米(V-S30)中的剪切波速度的估计。从美国地质调查的基于斜率的V-S30估计用作现有信息,并且15 V-S30测量用作更精确的数据。考虑到山谷中可用的有限数量的高质量V-S30测量,结果表明贝叶斯方案可以导致V-S30的更强大的估计而不是用普通的Kriging方法获得的估计。还提出了一种用于将现有的低精度数据调节到测量的方法。

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