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Parameter acquirement methods for rule-based model of virtual plant based on optimal algorithms

机译:基于最优算法的虚拟工厂基于规则基于规则的参数获取方法

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Rule-based model is an effective technique to dynamically simulate the morphological development of a plant. It is thus used widely in the field of plant modeling and visualization. Before a virtual plant model with high quality performance is established, it is a key step to provide suitable parameters for the rule-based model. There are several disadvantages in the traditional/manual ways to design the model, e.g. with low efficiency. Therefore, how to obtain appropriate parameters for the rule-based model has attracted many researchers devoting themselves to this area. In the past twenty years, Genetic Algorithm and Gene Expression Programming have been used to optimize the production rules of Do L-system and Parametric Do L-system. Due to the complexity of the structure of a plant, researches' attentions are mostly paid in the narrow area of simple plant morphology restrictively. In this study, the parameter-acquired methods for rule-based model, which is based on Genetic Algorithm and Gene Expression Programming, are summarized. And the relative techniques and the possible development in the future are discussed as well.
机译:基于规则的模型是动态模拟植物的形态学发展的有效技术。因此,它在植物建模和可视化领域中广泛使用。在建立高质量性能的虚拟工厂模型之前,它是为基于规则的模型提供合适的参数是一个关键步骤。传统/手动方式设计模型有几个缺点,例如,效率低。因此,如何获得基于规则的模型的适当参数吸引了许多研究人员,将自己致力于该领域。在过去的二十年中,遗传算法和基因表达编程已被用于优化DO L-System和参数DO L系统的生产规则。由于植物结构的复杂性,研究的注意力主要在严格的简单植物形态的狭窄区域上报酬。在本研究中,总结了基于遗传算法和基因表达编程的基于规则的基于规则的参数获取方法。还讨论了未来的相对技术和可能的发展。

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