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plspathmodelbuildingamultivariateapproachtolandpricestudiesacasestudyinbeijing
Wenjie Wu1; Wenzhong Zhang2
2009
Source Publicationprogressinnaturalscience
ISSN1002-0071
Volume19Issue:11Pages:1643
AbstractPrevious studies have revealed that statistical methods can be used to analyze land-leasing parcel data. however, the conventional statistical methods used in land analysis have some limitations, especially in cases of limited observational data. in this paper, with the help of geographic information system (gis) techniques, a partial least squares (pls) path model is applied to study the relationship between residential land prices and various determinants through a case study of beijing in china. from a preliminary analysis, four latent variables are selected: accessibility of the workplace center, livability, traffic, and environment facilities. the results show that the observation variables have a strong explanatory power for their corresponding latent variables, and the four latent variables have varying impacts on residential land prices. of the latent variables, accessibility to the workplace center has the strongest impact on the residential land price. (c) 2009 national natural science foundation of china and chinese academy of sciences. published by elsevier limited and science in china press. all rights reserved.
Language英语
Document Type期刊论文
Identifierhttp://ir.igsnrr.ac.cn/handle/311030/120756
Collection中国科学院地理科学与资源研究所
Affiliation1.中国科学院大学
2.中国科学院地理科学与资源研究所
Recommended Citation
GB/T 7714
Wenjie Wu,Wenzhong Zhang. plspathmodelbuildingamultivariateapproachtolandpricestudiesacasestudyinbeijing[J]. progressinnaturalscience,2009,19(11):1643.
APA Wenjie Wu,&Wenzhong Zhang.(2009).plspathmodelbuildingamultivariateapproachtolandpricestudiesacasestudyinbeijing.progressinnaturalscience,19(11),1643.
MLA Wenjie Wu,et al."plspathmodelbuildingamultivariateapproachtolandpricestudiesacasestudyinbeijing".progressinnaturalscience 19.11(2009):1643.
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