Nonparametric prediction for univariate spatial data: Methods and applications

IF 2.3 3区 经济学 Q2 ECONOMICS Papers in Regional Science Pub Date : 2023-06-01 DOI:10.1111/pirs.12735
Rodrigo García Arancibia , Pamela Llop , Mariel Lovatto
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Abstract

We introduce five nonparametric kriging‐type predictors for spatial data where only the variable of interest, without covariates, is recorded. The proposed methods seek to fully exploit the information contained in the spatial closeness and also in the similarity between neighbourhoods of the variable of interest. This is managed using different combinations of kernels (one or two kernels), and different combinations of distances (multiplicative and additive). The good performance of the proposed methods is shown via simulation studies and housing price prediction applications.
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单变量空间数据的非参数预测:方法与应用
我们为空间数据引入了五种非参数克里格型预测因子,其中只记录感兴趣的变量,而不记录协变量。所提出的方法寻求充分利用空间亲密性中包含的信息,以及感兴趣变量的邻居之间的相似性。这是使用不同的核组合(一个或两个核)和不同的距离组合(乘法和加法)来管理的。仿真研究和房价预测应用表明了所提方法的良好性能。
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来源期刊
CiteScore
4.40
自引率
4.80%
发文量
58
期刊介绍: Regional Science is the official journal of the Regional Science Association International. It encourages high quality scholarship on a broad range of topics in the field of regional science. These topics include, but are not limited to, behavioral modeling of location, transportation, and migration decisions, land use and urban development, interindustry analysis, environmental and ecological analysis, resource management, urban and regional policy analysis, geographical information systems, and spatial statistics. The journal publishes papers that make a new contribution to the theory, methods and models related to urban and regional (or spatial) matters.
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