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A novel approach for neuro-fuzzy system-based multi-objective optimization to capture inherent fuzziness in engineering processes

机译:基于神经模糊系统的多目标优化的一种新方法,以捕获工程过程中固有的模糊性

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We deal with multi-objective optimization problems in various fields and in some of them, the objectives are found to be conflicting in nature. We obtain multiple optimal or near-optimal solutions of the problem using a multi-objective evolutionary algorithm (MOEA). In this study, an approach is proposed for enhancing the use of MOEA to establish important input-output relationships of some manufacturing processes. In the proposed approach, after getting an initial set of Pareto-front data points through MOEA, the trade-off solutions are used to train a neuro-fuzzy system (NFS) utilizing an EOA. This trained NFS is then used to get a modified Pareto-front and the modified trade-off solutions are clustered using different clustering algorithms. These clustered solutions are then analyzed to establish the relationships among decision variables and objectives. These principles will surely enrich the knowledge of designers and inspire them to apply this approach for a broad range of practical problems. The data related to two different engineering problems are used to show the applicability of the proposed approach. (C) 2019 Elsevier B.V. All rights reserved.
机译:我们处理各个领域的多目标优化问题,并在其中一些领域,目的被发现在自然界中相互冲突。我们使用多目标进化算法(MOEA)获得问题的多个最佳或接近最佳解决方案。在这项研究中,提出了一种方法来提高MOEA的使用,建立一些制造过程的重要输入产出关系。在提出的方法中,通过MoEa获得初始映射数据点之后,折衷解决方案用于利用EOA训练神经模糊系统(NFS)。然后使用此培训的NFS来获得修改的映射 - 前部,并使用不同的聚类算法群集修改的折衷解决方案。然后分析这些聚类解决方案以建立决策变量和目标之间的关系。这些原则肯定会丰富设计师的知识,并激励他们应用这种方法,以实现广泛的实际问题。与两个不同的工程问题相关的数据用于显示所提出的方法的适用性。 (c)2019 Elsevier B.v.保留所有权利。

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