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Evolutionary development of tensegrity structures

机译:张力结构的进化发展

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Contributions from the emerging fields of molecular genetics and evo-devo (evolutionary developmental biology) are greatly benefiting the field of evolutionary computation, initiating a promise of renewal in the traditional methodology. While direct encoding has constituted a dominant paradigm, indirect ways to encode the solutions have been reported, yet little attention has been paid to the benefits of the proposed methods to real problems. In this work, we study the biological properties that emerge by means of using indirect encodings in the context of form-finding problems. A novel indirect encoding model for artificial development has been defined and applied to an engineering structural-design problem, specifically to the discovery of tensegrity structures. This model has been compared with a direct encoding scheme. While the direct encoding performs similarly well to the proposed method, indirect-based results typically outperform the direct-based results in aspects not directly linked to the nature of the problem itself, but to the emergence of properties found in biological organisms, like organicity, generalization capacity, or modularity aspects which are highly valuable in engineering.
机译:新兴的分子遗传学和evo-devo(进化发展生物学)领域的贡献极大地促进了进化计算领域的发展,在传统方法论中开创了更新的希望。尽管直接编码已成为主要的范例,但已报道了对解决方案进行间接编码的方法,但很少有人关注所提出方法对实际问题的好处。在这项工作中,我们研究了在形式发现问题中通过使用间接编码而出现的生物学特性。已经定义了一种新的用于人工开发的间接编码模型,并将其应用于工程结构设计问题,特别是用于张力结构的发现。该模型已与直接编码方案进行了比较。尽管直接编码的性能与所提出的方法相似,但基于间接的结果在某些方面通常不比基于直接的结果好,这些方面与问题本身的性质没有直接关系,但与生物体中发现的特性(例如有机性)的出现直接相关,泛化能力或模块化方面,这些方面在工程上非常有价值。

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