GSTDTAP  > 资源环境科学
DOI10.1029/2019WR026416
Multisite Weather Generators using Bayesian Networks: An illustrative case study for precipitation occurrence
M. N. Legasa; J. M. Gutié; rrez
2020-06-08
发表期刊Water Resources Research
出版年2020
英文摘要

Many existing approaches for multisite weather generation try to capture several statistics of the observed data (e.g. pairwise correlations) in order to generate spatially and temporarily consistent series. In this work we analyse the application of Bayesian networks to this problem, focusing on precipitation occurrence and considering a simple case study to illustrate the potential of this new approach. We use Bayesian networks to approximate the multi‐variate (‐site) probability distribution of observed gauge data, which is factorized according to the relevant (marginal and conditional) dependencies. This factorization allows the simulation of synthetic samples from the multivariate distribution, thus providing a sound and promising methodology for multisite precipitation series generation.

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文献类型期刊论文
条目标识符http://119.78.100.173/C666/handle/2XK7JSWQ/274397
专题资源环境科学
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M. N. Legasa,J. M. Gutié,rrez. Multisite Weather Generators using Bayesian Networks: An illustrative case study for precipitation occurrence[J]. Water Resources Research,2020.
APA M. N. Legasa,J. M. Gutié,&rrez.(2020).Multisite Weather Generators using Bayesian Networks: An illustrative case study for precipitation occurrence.Water Resources Research.
MLA M. N. Legasa,et al."Multisite Weather Generators using Bayesian Networks: An illustrative case study for precipitation occurrence".Water Resources Research (2020).
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