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Structural parameter estimation combining domain decomposition techniques with immune algorithm

机译:结合区域分解技术和免疫算法的结构参数估计

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摘要

Structural system identification (SSI) is an inverse problem of difficult solution. Currently, difficulties lie in the development of algorithms which can cater to large size problems. In this paper, a parameter estimation technique based on evolutionary strategy is presented to overcome some of the difficulties encountered in using the traditional system identification methods in terms of convergence. In this paper, a non-traditional form of system identification technique employing evolutionary algorithms is proposed. In order to improve the convergence characteristics, it is proposed to employ immune algorithms which are proved to be built with superior diversification mechanism than the conventional evolutionary algorithms and are being used for several practical complex optimisation problems. In order to reduce the number of design variables, domain decomposition methods are used, where the identification process of the entire structure is carried out in multiple stages rather than in single step. The domain decomposition based methods also help in limiting the number of sensors to be employed during dynamic testing of the structure to be identified, as the process of system identification is carried out in multiple stages. A fifteen storey framed structure, truss bridge and 40 m tall microwave tower are considered as a numerical examples to demonstrate the effectiveness of the domain decomposition based structural system identification technique using immune algorithm.
机译:结构系统识别(SSI)是困难解决的反问题。当前,难于解决可解决大尺寸问题的算法。本文提出了一种基于进化策略的参数估计技术,以克服传统系统识别方法在收敛性上遇到的一些困难。本文提出了一种采用进化算法的非传统形式的系统识别技术。为了提高收敛性,提出采用免疫算法,该算法被证明具有比传统进化算法优越的多样化机制,并被用于一些实际的复杂优化问题。为了减少设计变量的数量,使用了区域分解方法,其中整个结构的识别过程是分多个阶段进行的,而不是一步一步进行的。基于域分解的方法还有助于限制在对要识别的结构进行动态测试期间要使用的传感器数量,因为系统识别的过程要分多个阶段进行。以十五层框架结构,桁架桥和40 m高的微波塔为例,通过免疫算法证明了基于域分解的结构系统识别技术的有效性。

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