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首页> 外文期刊>Journal of heuristics >Tabu Machine: A New Neural Network Solution Approach for Combinatorial Optimization Problems
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Tabu Machine: A New Neural Network Solution Approach for Combinatorial Optimization Problems

机译:禁忌机:解决组合优化问题的一种新的神经网络解决方案

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A new artificial neural network solution approach is proposed to solve combinatorial optimization problems. The artificial neural network is called the Tabu Machine because it has the same structure as the Boltzmann Machine does but uses tabu search to govern its state transition mechanism. Similar to the Boltzmann Machine, the Tabu Machine consists of a set of binary state nodes connected with bidirectional arcs. Ruled by the transition mechanism, the nodes adjust their states in order to search for a global minimum energy state. Two combinatorial optimization problems, the maximum cut problem and the independent set problem, are used as examples to conduct a computational experiment. Without using overly sophisticated tabu search techniques, the Tabu Machine outperforms the Boltzmann Machine in terms of both solution quality and computation time.
机译:提出了一种新的人工神经网络解决方案来解决组合优化问题。人工神经网络称为禁忌机器,因为它的结构与玻耳兹曼机器相同,但是使用禁忌搜索来控制其状态转换机制。与玻尔兹曼机相似,禁忌机由一组与双向弧连接的二进制状态节点组成。由过渡机制决定,节点调整其状态以搜索全局最小能量状态。以两个组合优化问题(最大割问题和独立集问题)为例进行计算实验。在不使用过于复杂的禁忌搜索技术的情况下,禁忌机器在解决方案质量和计算时间方面均优于玻尔兹曼机器。

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