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PARETO SIMULATED ANNEALING (SA)-BASED MULTI-OBJECTIVE OPTIMIZATION FOR MEMS DESIGN AND APPLICATION

机译:基于帕累托模拟退火(SA)的多目标优化,用于MEMS设计和应用

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摘要

In this paper we present a global optimization method for multiple objective functions using the Pareto Simulated Annealing (SA). This novel optimization method is very useful and promising for design and application in the field of Micro-Electro-Mechanical Systems (MEMS). Previously published global optimization method has been reported by us for only single objective function. The proposed method automatically assigns different objective weights to each objective functions so that it can generate multiple solutions simultaneously. It also offers the trade-off between the objective functions so that we will be able to select the most suitable solution for MEMS design and applications. Based on the global Pareto ranking of the solutions, the optimization method can provide the best solution (the first Pareto ranking) as well.
机译:在本文中,我们提出了使用帕累托模拟退火(SA)的多目标函数的全局优化方法。这种新颖的优化方法对于微机电系统(MEMS)领域的设计和应用非常有用且很有希望。我们仅针对单个目标函数报告了以前发布的全局优化方法。所提出的方法自动为每个目标函数分配不同的目标权重,以便它可以同时生成多个解。它还提供了目标功能之间的折衷,因此我们将能够为MEMS设计和应用选择最合适的解决方案。基于解决方案的全局Pareto排名,优化方法也可以提供最佳解决方案(第一个Pareto排名)。

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