Spatial ordination of vegetation data using a generalization of Wartenberg's multivariate spatial correlation

被引:78
作者
Dray, Stephane [1 ]
Said, Sonia [2 ]
Debias, Francois [1 ]
机构
[1] Univ Lyon 1, CNRS, UMR 5558, Lab Biometrie & Biol Evolut, F-69622 Villeurbanne, France
[2] Off Natl Chasse Faune Sauvage, Ctr Natl Etudes & Rech Appl Cervides Sanglier, F-75017 Paris, France
关键词
correspondence analysis; Moran's I; multivariate analysis; spatial autocorrelation; spatially constrained ordination;
D O I
10.3170/2007-8-18312
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Question: Are there spatial structures in the composition of plant communities? Methods: Identification and measurement of spatial structures is a topic of great interest in plant ecology. Univariate measurements of spatial autocorrelation such as Moran's I and Geary's c are widely used, but extensions to the multivariate case ( i. e. multi-species) are rare. Here, we propose a multivariate spatial analysis based on Moran's I (MULTISPATI) by introducing a row-sum standardized spatial weight matrix in the statistical triplet notation. This analysis, which is a generalization of Wartenberg's approach to multivariate spatial correlation, would imply a compromise between the relations among many variables ( multivariate analysis) and their spatial structure ( autocorrelation). MULTISPATI approach is very flexible and can handle various kinds of data ( quantitative and/or qualitative data, contingency tables). A study is presented to illustrate the method using a spatial version of Correspondence Analysis. Location: Territoire d'Etude et d'Experimentation de Trois-Fontaines ( eastern France). Results: Ordination of vegetation plots by this spatial analysis is quite robust with reference to rare species and highlights spatial patterns related to soil properties.
引用
收藏
页码:45 / 56
页数:12
相关论文
共 59 条
[1]  
[Anonymous], 1987, Developments in Numerical Ecology
[2]  
[Anonymous], 2002, URBANA
[3]   LOCAL INDICATORS OF SPATIAL ASSOCIATION - LISA [J].
ANSELIN, L .
GEOGRAPHICAL ANALYSIS, 1995, 27 (02) :93-115
[4]  
Anselin L., 1996, ANALYTICAL PERSPECTI, P121, DOI DOI 10.1201/9780203739051-8
[5]   Extensions to spatial factor methods with an illustration in geochemistry [J].
Bailey, TC ;
Krzanowski, WJ .
MATHEMATICAL GEOLOGY, 2000, 32 (06) :657-682
[6]  
Bavaud F, 1998, GEOGR ANAL, V30, P153
[7]  
Benali H., 1990, REV STAT APPL, V38, P55
[8]   All-scale spatial analysis of ecological data by means of principal coordinates of neighbour matrices [J].
Borcard, D ;
Legendre, P .
ECOLOGICAL MODELLING, 2002, 153 (1-2) :51-68
[9]   PARTIALLING OUT THE SPATIAL COMPONENT OF ECOLOGICAL VARIATION [J].
BORCARD, D ;
LEGENDRE, P ;
DRAPEAU, P .
ECOLOGY, 1992, 73 (03) :1045-1055
[10]  
Braun-Blanquet J., 1932, PLANT SOCIOLOGY STUD