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Solving heat exchanger network synthesis problems with Tabu Search

机译:用禁忌搜索解决换热网络综合问题

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摘要

This paper describes the implementation of a meta-heuristic optimization approach, Tabu Search (TS), for heat exchanger networks (HEN) synthesis and compares this approach to others presented in the literature. TS is a stochastic optimization approach that makes use of adaptive memory in the form of Tabu lists. Both recency- and frequency-based Tabu lists are used to provide short- and long-term knowledge of search history. TS is shown to locate the global optima with a high probability and low computation times, demonstrating the algorithm's potential for solving a variety of other mixed integer nonlinear programming (MINLP) problems.
机译:本文介绍了用于换热网络(HEN)综合的元启发式优化方法Tabu Search(TS)的实现,并将此方法与文献中介绍的其他方法进行了比较。 TS是一种随机优化方法,它使用禁忌列表形式的自适应内存。基于新近度和频率的禁忌列表均用于提供搜索历史的短期和长期知识。 TS被证明以高概率和低计算时间来定位全局最优值,证明了该算法具有解决多种其他混合整数非线性规划(MINLP)问题的潜力。

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