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Simulation and Visualisation of Functional Landscapes:Effects of the Water Resource Competition Between Plants 被引量:2

Simulation and Visualisation of Functional Landscapes:Effects of the Water Resource Competition Between Plants
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摘要 Vegetation ecosystem simulation and visualisation are challenging topics involving multidisciplinary aspects. In this paper, we present a new generic frame for the simulation of natural phenomena through manageable and interacting models. It focuses on the functional growth of large vegetal ecosystems, showing coherence for scales ranging from the individual plant to communities and with a particular attention to the effects of water resource competition between plants. The proposed approach is based on a model of plant growth in interaction with the environmental conditions. These are deduced from the climatic data (light, temperature, rainfall) and a model of soil hydrological budget. A set of layers is used to store the water resources and to build the interfaces between the environmental data and landscape components: temperature, rain, light, altitude, lakes, plant positions, biomass, cycles, etc. At the plant level, the simulation is performed for each individual by a structural-functional growth model, interacting with the plant's environment. Temperature is spatialised, changing according to altitude, and thus locally controls plant growth speed. The competition for water is based on a soil hydrological model taking into account rainfalls, water runoff, absorption, diffusion, percolation in soil. So far, the incoming light radiation is not studied in detail and is supposed constant. However, competition for light between plants is directly taken into account in the plant growth model. In our implementation, we propose a simple architecture for such a simulator and a simulation scheme to synchronise the water resource updating (on a temporal basis) and the plant growth cycles (determined by the sum of daily temperatures). The visualisation techniques are based on sets of layers, allowing both morphological and functional landscape views and providing interesting tools for ecosystem management. The implementation of the proposed frame leads to encouraging results that are presented and illus Vegetation ecosystem simulation and visualisation are challenging topics involving multidisciplinary aspects. In this paper, we present a new generic frame for the simulation of natural phenomena through manageable and interacting models. It focuses on the functional growth of large vegetal ecosystems, showing coherence for scales ranging from the individual plant to communities and with a particular attention to the effects of water resource competition between plants. The proposed approach is based on a model of plant growth in interaction with the environmental conditions. These are deduced from the climatic data (light, temperature, rainfall) and a model of soil hydrological budget. A set of layers is used to store the water resources and to build the interfaces between the environmental data and landscape components: temperature, rain, light, altitude, lakes, plant positions, biomass, cycles, etc. At the plant level, the simulation is performed for each individual by a structural-functional growth model, interacting with the plant's environment. Temperature is spatialised, changing according to altitude, and thus locally controls plant growth speed. The competition for water is based on a soil hydrological model taking into account rainfalls, water runoff, absorption, diffusion, percolation in soil. So far, the incoming light radiation is not studied in detail and is supposed constant. However, competition for light between plants is directly taken into account in the plant growth model. In our implementation, we propose a simple architecture for such a simulator and a simulation scheme to synchronise the water resource updating (on a temporal basis) and the plant growth cycles (determined by the sum of daily temperatures). The visualisation techniques are based on sets of layers, allowing both morphological and functional landscape views and providing interesting tools for ecosystem management. The implementation of the proposed frame leads to encouraging results that are presented and illus
出处 《Journal of Computer Science & Technology》 SCIE EI CSCD 2007年第6期835-845,共11页 计算机科学技术学报(英文版)
基金 This work is supported by the National Natural Science Foundation of China under Grant No.60473110 and by LIAMAGREENLAB Project.
关键词 landscape visualisation plant growth models natural phenomena simulation water cycle models landscape visualisation, plant growth models, natural phenomena simulation, water cycle models
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  • 1De Reffye P, Hu B G. Relevant choices in botany and mathematics for building efficient dynamic plant growth models: GreenLab case. In Proc. PMA03, Beijing, 2003, pp.87-107. 被引量:1
  • 2Cournede P H. Kang M Z, Mathieu A, Barczi J F, Yan H P, Hu B G, de Reffye P. Structural factorization of plants to compute their functional and architectural growth. Simulation, 2006, 82(7): 427-438. 被引量:1
  • 3Hammes J. Modeling of ecosystems as a data source for real-time terrain rendering. In Proc. Digital Earth Moving First International Symposium, DEM 2001, Springer Verlag, LNCS 2181, 2001, pp.98-105. 被引量:1
  • 4Fournier A, Fussell D, Carpenter L. Computer rendering of stochastic models. Commun. ACM, 1982, 25(6): 371-384. 被引量:1
  • 5Musgrave F K, Kolb C E, Mace R S. The synthesis and rendering of eroded fractal terrains. Computer Graphics, 1989, 23(3): 41-50. 被引量:1
  • 6Chiba N, Muraoka K, Fujita K. An erosion model based on velocity fields for the visual simulation of mountain scenery. The Journal of Visualization and Computer Animations 1998, 9(6): 185-194. 被引量:1
  • 7Neidhold B, Wacker M, Deussen O. Interactive physically based fluid and erosion simulation. In Proc. Eurographics Workshop on Natural Phenomena, Dublin, 2005, pp.25-32. 被引量:1
  • 8Schneider J, Boldte T, Westermann R. Real-time editing, synthesis, and rendering of infinite landscapes on GPUs. In Proc. Vision, Modeling and Visualization, IOS Press Proceedings, Aachen, Germany, Nov. 22-24, 2006. 被引量:1
  • 9Dachsbacher C. Interactive terrain rendering: Towards realism with procedural models and graphics hardware [Dissertation]. University Erlangen-Niirnberg, Computer Sciences Institute, 2006, p.162. 被引量:1
  • 10Greene N. Voxel space automata: Modeling with stochastic growth processes in voxel space. In Proc. SIGGRAPH'89, New York, USA, 1989, pp.175-184. 被引量:1

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