Multi-objective environmental model evaluation by means of multidimensional kernel density estimators: Efficient and multi-core implementations

被引:7
|
作者
Lopez-Novoa, Unai [1 ]
Saenz, Jon [2 ,3 ]
Mendiburu, Alexander [1 ]
Miguel-Alonso, Jose [1 ]
Errasti, Inigo [4 ]
Esnaola, Ganix [2 ]
Ezcurra, Agustin [2 ]
Ibarra-Berastegi, Gabriel [4 ]
机构
[1] Univ Basque Country UPV EHU, Dept Comp Architecture & Technol, Intelligent Syst Grp, Donostia San Sebastian 20018, Spain
[2] Univ Basque Country UPV EHU, Dept Appl Phys 2, Leioa 48940, Spain
[3] Plentzia Marine Stn PIE UPV EHU, Areatza Pasealekua 48520, Plentzia, Spain
[4] Univ Basque Country UPV EHU, Dept Nucl Engn & Fluid Mech, Bilbao 48013, Spain
关键词
Multivariate kernel density estimation; Multidimensional kernel density estimation; Multi-core implementation; Environmental model evaluation; HEMISPHERE STORM TRACKS; AR4 CLIMATE MODELS; STATISTICAL FRAMEWORK; MAXIMUM TEMPERATURE; ENSEMBLE PREDICTION; MINIMUM TEMPERATURE; LAST MILLENNIUM; PROXY DATA; SIMULATIONS; PRECIPITATION;
D O I
10.1016/j.envsoft.2014.09.019
中图分类号
TP39 [计算机的应用];
学科分类号
081203 ; 0835 ;
摘要
We propose an extension to multiple dimensions of the univariate index of agreement between Probability Density Functions (PDFs) used in climate studies. We also provide a set of high-performance programs targeted both to single and multi-core processors. They compute multivariate PDFs by means of kernels, the optimal bandwidth using smoothed bootstrap and the index of agreement between multidimensional PDFs. Their use is illustrated with two case-studies. The first one assesses the ability of seven global climate models to reproduce the seasonal cycle of zonally averaged temperature. The second case study analyzes the ability of an oceanic reanalysis to reproduce global Sea Surface Temperature and Sea Surface Height. Results show that the proposed methodology is robust to variations in the optimal bandwidth used. The technique is able to process multivariate datasets corresponding to different physical dimensions. The methodology is very sensitive to the existence of a bias in the model with respect to observations. (C) 2014 Elsevier Ltd. All rights reserved.
引用
收藏
页码:123 / 136
页数:14
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