A double-digitising method for building 3D virtual trees with non-planar leaves: application to the morphology and light-capture properties of young beech trees (Fagus sylvatica)

被引:22
作者
Chambelland, Jean-Christophe [1 ]
Dassot, Mathieu [1 ]
Adam, Boris [1 ]
Dones, Nicolas [1 ]
Balandier, Philippe [1 ,2 ]
Marquier, Andre [1 ]
Saudreau, Marc [1 ]
Sonohat, Gabriela [1 ,3 ]
Sinoquet, Herve [1 ]
机构
[1] Univ Clermont Ferrand, INRA, PIAF UMR547, F-63100 Clermont Ferrand, France
[2] Cemagref, UR EFNO, F-45290 Nogent Sur Vernisson, France
[3] ENITAC, F-63370 Lempdes, France
关键词
electromagnetic digitising; laser scanner; virtual plants;
D O I
10.1071/FP08051
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
We developed a double-digitising method combining a hand-held electromagnetic digitizer and a non-contact 3D laser scanner. The former was used to record the positions of all leaves in a tree and the orientation angles of their lamina. The latter served to obtain the morphology of the leaves sampled in the tree. As the scanner outputs a cloud of points, software was developed to reconstruct non-planar (NP) leaves composed of triangles, and to compute numerical shape parameters: midrib curvature, torsion and transversal curvature of the lamina. The combination of both methods allowed construction of 3D virtual trees with NP leaves. The method was applied to young beech trees (Fagus sylvatica L.) from different sunlight environments (from 1 to 100% incident light) in a forest in central France. Leaf morphology responded to light availability, with a more bent shape in well-lit leaves. Light interception at the leaf scale by NP leaves decreased from 4 to 10% for shaded and sunlit leaves compared with planar leaves. At the tree scale, light interception by trees made of NP leaves decreased by 1 to 3% for 100% to 1% light, respectively.
引用
收藏
页码:1059 / 1069
页数:11
相关论文
共 42 条
[1]  
ADAM B, 2006, PIAFPHOTEM SOFTWARE
[2]  
ADAM B, 2002, VEGESTAR SOFTWARE CO
[3]   Six-year time course of light-use efficiency, carbon gain and growth of beech saplings (Fagus sylvatica) planted under a Scots pine (Pinus sylvestris) shelterwood [J].
Balandier, Philippe ;
Sinoquet, Herve ;
Frak, Ela ;
Giuliani, Rita ;
Vandame, Marc ;
Descamps, Sylvestre ;
Coll, Lluis ;
Adam, Boris ;
Prevosto, Bernard ;
Curt, Thomas .
TREE PHYSIOLOGY, 2007, 27 (08) :1073-1082
[4]  
Begg J. E., 1980, Adaptation of plants to water and high temperature stress., P33
[5]   INFLUENCE OF SHOOT STRUCTURE ON LIGHT INTERCEPTION AND PHOTOSYNTHESIS IN CONIFERS [J].
CARTER, GA ;
SMITH, WK .
PLANT PHYSIOLOGY, 1985, 79 (04) :1038-1043
[6]   Quantitative contributions of blue light and PAR to the photocontrol of plant morphogenesis in Trifolium repens (L.) [J].
Christophe, Angelique ;
Moulia, Bruno ;
Varlet-Grancher, Claude .
JOURNAL OF EXPERIMENTAL BOTANY, 2006, 57 (10) :2379-2390
[7]   Does shade improve light interception efficiency? A comparison among seedlings from shade-tolerant and -intolerant temperate deciduous tree species [J].
Delagrange, Sylvain ;
Montpied, Pierre ;
Dreyer, Erwin ;
Messier, Christian ;
Sinoquet, Herve .
NEW PHYTOLOGIST, 2006, 172 (02) :293-304
[8]  
den Dulk JA., 1989, THESIS WAGENINGEN U
[9]  
DONES N, 2006, PIAFDIGIT SOFTWARE D
[10]   A method to extract morphological traits of plant organs from 3D point clouds as a database for an architectural plant model [J].
Dornbusch, Tino ;
Wernecke, Peter ;
Diepenbrock, Wulf .
ECOLOGICAL MODELLING, 2007, 200 (1-2) :119-129