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首页> 外文期刊>Mechanics Based Design of Structures and Machines >Modified sub-population teaching-learning-based optimization for design of truss structures with natural frequency constraints
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Modified sub-population teaching-learning-based optimization for design of truss structures with natural frequency constraints

机译:基于固有频率约束的桁架结构设计的改进的基于子种群教学的优化

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In this paper, a modified sub-population teaching-learning-based optimization (MS-TLBO) algorithm is proposed to improve the exploration and exploitation capacities by including the concept of number of teachers, adaptive teaching factor, learning through tutorial, and self-motivated learning in the basic TLBO algorithm. The multiple frequency responses to the structural optimization problems are challenging due to its search space, which is implicit, nonconvex, nonlinear, and often leading to divergence. The viability and efficiency of the proposed method are tested by five structural benchmark problems of shape and size optimization with multiple natural frequency constraints on the planar and space trusses. The results reveal that MS-TLBO is more effective as compared to the original TLBO and other state-of-the-art algorithms.
机译:本文提出了一种改进的基于子群体的基于教学的学习优化(MS-TLBO)算法,通过包括教师人数,自适应教学因素,通过教程学习和自我学习等概念来提高探索和开发能力。基本TLBO算法中的动机学习。由于结构的搜索空间是隐性,非凸性,非线性的,并且经常导致发散,因此对结构优化问题的多频响应具有挑战性。通过在平面和空间桁架上具有多个固有频率约束的形状和尺寸优化的五个结构基准问题,测试了该方法的可行性和效率。结果表明,与原始TLBO和其他最新算法相比,MS-TLBO更有效。

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