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Applied Mathematics and Computational Sciences
AMCS
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spatio-temporal data analysis

Spatio-Temporal Data Analysis by Transformed Gaussian Processes

Yuan Yan, PhD Student of Prof. Marc Genton, KAUST

Nov 5, 17:15 - 18:15

B2 L5 R5220

spatio-temporal data analysis statistics

In the analysis of spatio-temporal data, statistical inference based on the assumption that the data follow a Gaussian distribution is ubiquitous due to its many attractive properties. However, data collected from different fields of science, such as meteorology, astronomy, biology and medicine, rarely meet the assumption of Gaussianity. One option is to apply a monotonic transformation to the data such that the transformed data have a distribution that is close to Gaussian. In this thesis, we focus on a flexible two-parameter family of transformations, the Tukey g-and-h (TGH) transformation

Marc G. Genton

Al-Khawarzmi Distinguished Professor, Statistics

mathematical modelling visualization computational predictions spatio-temporal data analysis applied statistics

Professor Genton’s pioneering research on large-scale spatial and temporal data has profoundly affected the field of environmental statistics. He is an expert in spatial and spatio-temporal statistics with applications to environmental problems.

Applied Mathematics and Computational Sciences (AMCS)

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