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A bidirectional graph neural network for traveling salesman problems on arbitrary symmetric graphs

机译:用于任意对称图的推销员问题的双向图形神经网络

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摘要

Deep learning has recently been shown to provide great achievement to the traveling salesman problem (TSP) on the Euclidean graphs. These methods usually fully represent the graph by a set of coordinates, and then captures graph information from the coordinates to generate the solution. The TSP on arbitrary symmetric graphs models more realistic applications where the working graphs maybe sparse, or the distance between points on the graphs may not satisfy the triangle inequality. When prior learning-based methods being applied to the TSP on arbitrary symmetric graphs, they are not capable to capture graph features that are beneficial to produce near-optimal solutions. Moreover, they suffer from serious exploration problems. This paper proposes a bidirectional graph neural network (BGNN) for the arbitrary symmetric TSP. The network learns to produce the next city to visit sequentially by imitation learning. The bidirectional message passing layer is designed as the most important component of BGNN. It is able to encode graphs based on edges and partial solutions. By this way, the proposed approach is much possible to construct near-optimal solutions for the TSP on arbitrary symmetric graphs, and it is able to be combined with informed search to further improve performance.
机译:最近已被证明深入学习为欧几里德图中的旅行推销员问题(TSP)提供了巨大成就。这些方法通常通过一组坐标完全表示图形,然后从坐标捕获图形信息以生成解决方案。任意对称图中的TSP模拟了更现实的应用程序,其中工作图可能稀疏,或图中的点之间的距离可能不满足三角不等式。当基于学习的基于学习的方法在任意对称图上应用于TSP时,它们无法捕获有利于产生近最佳解决方案的图表特征。此外,他们患有严重的探索问题。本文提出了用于任意对称TSP的双向图形神经网络(BGNN)。网络学会通过模仿学习来生产下一个城市来顺序访问。双向消息传递层被设计为BGNN最重要的组件。它能够根据边缘和部分解决方案编码图形。通过这种方式,所提出的方法很大程度上可以在任意对称图中构建TSP的近最优解,并且能够与知识搜索结合以进一步提高性能。

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