Conditional Gaussian mixture models for environmental risk mapping

N. Gilardi, Samy Bengio, M. Kanevski
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引用次数: 19

Abstract

This paper proposes the use of Gaussian mixture models to estimate conditional probability density functions in an environmental risk mapping context. A conditional Gaussian mixture model has been compared to, the geostatistical method of sequential Gaussian simulations and shows good performance in reconstructing the local PDF. The data sets used for this comparison are parts of the digital elevation model of Switzerland.
环境风险映射的条件高斯混合模型
本文提出使用高斯混合模型来估计环境风险映射上下文中的条件概率密度函数。将条件高斯混合模型与序贯高斯模拟的地统计学方法进行了比较,结果表明,该模型在局部PDF重建中具有良好的性能。用于比较的数据集是瑞士数字高程模型的一部分。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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