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偏最小二乘法在苏锡常地区土地利用研究中的应用
引用本文:张旸,周成虎,张永民.偏最小二乘法在苏锡常地区土地利用研究中的应用[J].地理学报(英文版),2007,17(2):234-244.
作者姓名:张旸  周成虎  张永民
作者单位:[1]Institute of Geographic Sciences and Natural Resources Research, CAS, Beijing 100101, China [2]Graduate Sohool of the Chinese Academy of Sciences,Beijing 100039,China [3]Department of Resources and Environment Sciences,-Henan University of Finance and Economics,Zhengzhou 450002, China
基金项目:National Natural Science Foundation of China; No.40301038
摘    要:In several LUCC studies, statistical methods are being used to analyze land use data. A problem using conventional statistical methods in land use analysis is that these methods assume the data to be statistically independent. But in fact, they have the tendency to be dependent, a phenomenon known as multicollinearity, especially in the cases of few observations. In this paper, a Partial Least-Squares (PLS) regression approach is developed to study relationships between land use and its influencing factors through a case study of the Suzhou-Wuxi-Changzhou region in China. Multicollinearity exists in the dataset and the number of variables is high compared to the number of observations. Four PLS factors are selected through a preliminary analysis. The correlation analyses between land use and influencing factors demonstrate the land use character of rural industrialization and urbanization in the Suzhou-Wuxi-Changzhou region, meanwhile illustrate that the first PLS factor has enough ability to best describe land use patterns quantitatively, and most of the statistical relations derived from it accord with the fact. By the decreasing capacity of the PLS factors, the reliability of model outcome decreases correspondingly.

关 键 词:江苏  苏州-无锡-常州地区  土地利用研究  多变量数据分析  最小二乘偏回归法
收稿时间:1 December 2006
修稿时间:2006-12-012007-02-10

A partial least-squares regression approach to land use studies in the Suzhou-Wuxi-Changzhou region
Zhang?Yang,Zhou?Chenghu,Zhang?Yongmin.A partial least-squares regression approach to land use studies in the Suzhou-Wuxi-Changzhou region[J].Journal of Geographical Sciences,2007,17(2):234-244.
Authors:Zhang Yang  Zhou Chenghu  Zhang Yongmin
Institution:1. Institute of Geographic Sciences and Natural Resources Research, CAS, Beijing 100101, China|; 2. Graduate School of the Chinese Academy of Sciences, Beijing 100039, China|; 3. Department of Resources and Environment Sciences, Henan University of Finance and Economics, Zhengzhou 450002, China
Abstract:In several LUCC studies, statistical methods are being used to analyze land use data. A problem using conventional statistical methods in land use analysis is that these methods assume the data to be statistically independent. But in fact, they have the tendency to be dependent, a phenomenon known as multicollinearity, especially in the cases of few observations. In this paper, a Partial Least-Squares (PLS) regression approach is developed to study relationships between land use and its influencing factors through a case study of the Suzhou-Wuxi-Changzhou region in China. Multicollinearity exists in the dataset and the number of variables is high compared to the number of observations. Four PLS factors are selected through a preliminary analysis. The correlation analyses between land use and in- fluencing factors demonstrate the land use character of rural industrialization and urbaniza- tion in the Suzhou-Wuxi-Changzhou region, meanwhile illustrate that the first PLS factor has enough ability to best describe land use patterns quantitatively, and most of the statistical relations derived from it accord with the fact. By the decreasing capacity of the PLS factors, the reliability of model outcome decreases correspondingly.
Keywords:land use  multivariate data analysis  partial least-squares regression  Suzhou-Wuxi-Changzhou region  multicollinearity
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