Characterizing the complex multiscale geometry of plants
| AUTHOR | Da Silva-D |
| PUBLISHER | Omniscriptum (02/28/2018) |
| PRODUCT TYPE | Paperback (Paperback) |
Description
With concerns such as sustainable development or climat changes, controling and understanding plant growth has become important society matters. Computer models that uses plant architecture, called "functional-structural plant models" (FSPMs), have become more and more widespread. Contrariwise to agronomic models based on the relations between few parameters, FSPMs allow to assess the relation between the three-dimensional structure of plants and the physical and ecophysiological processes that drive their development. However, plant architecture, and particularly its geometry, is rather complex and can be described at different detail levels. In this thesis we wanted to characterize the complex multiscale geometry of plants with few descriptors in order to be able to acknowledge the structure in simple models of light interception.
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Product Format
Product Details
ISBN-13:
9786131563713
ISBN-10:
6131563713
Binding:
Paperback or Softback (Trade Paperback (Us))
Content Language:
French
More Product Details
Page Count:
168
Carton Quantity:
48
Product Dimensions:
6.00 x 0.39 x 9.00 inches
Weight:
0.56 pound(s)
Country of Origin:
FR
Subject Information
BISAC Categories
Science | Life Sciences - Ecology
Science | General
Descriptions, Reviews, Etc.
publisher marketing
With concerns such as sustainable development or climat changes, controling and understanding plant growth has become important society matters. Computer models that uses plant architecture, called "functional-structural plant models" (FSPMs), have become more and more widespread. Contrariwise to agronomic models based on the relations between few parameters, FSPMs allow to assess the relation between the three-dimensional structure of plants and the physical and ecophysiological processes that drive their development. However, plant architecture, and particularly its geometry, is rather complex and can be described at different detail levels. In this thesis we wanted to characterize the complex multiscale geometry of plants with few descriptors in order to be able to acknowledge the structure in simple models of light interception.
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