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Composite T-Process Regression Models
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作者 Zhanfeng Wang yuewen lv Yaohua Wu 《Communications in Mathematics and Statistics》 SCIE CSCD 2023年第2期307-323,共17页
Process regression models,such as Gaussian process regression model(GPR),have been widely applied to analyze kinds of functional data.This paper introduces a composite of two T-process(CT),where the first one captures... Process regression models,such as Gaussian process regression model(GPR),have been widely applied to analyze kinds of functional data.This paper introduces a composite of two T-process(CT),where the first one captures the smooth global trend and the second one models local details.TheCThas an advantage in the local variability compared to general T-process.Furthermore,a composite T-process regression(CTP)model is developed,based on the composite T-process.It inherits many nice properties as GPR,while it is more robust against outliers than GPR.Numerical studies including simulation and real data application show that CTP performs well in prediction. 展开更多
关键词 Composite Gaussian process regression Composite T-process regression Extended T-process regression Functional data
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