A neural network algorithm for solving the traffic control problem in multistage interconnection networks

K. T. Sun, H. Fu
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引用次数: 5

Abstract

The authors propose a neural network algorithm for the traffic control problem (an NP-complete problem) in multistage interconnection networks. The traffic control problem can be represented by an energy function, and the state of the energy function is iteratively updated by the authors' parallel algorithm. When the energy function reaches a stable state, the state represents a solution of the problem. Empirical results show the effectiveness of the proposed algorithm, and the time complexity with n/sup 2/ neurons is O(n log n). Simulation results show that both the throughput and iteration steps are much better than in the linear approach. Furthermore, since the traffic control problem can be reduced to the traveling salesman problem. the proposed algorithm can also be applied to other optimization problems.<>
一种求解多级互联网络流量控制问题的神经网络算法
针对多级互联网络中的流量控制问题(np完全问题),提出了一种神经网络算法。交通控制问题可以用能量函数表示,并通过并行算法迭代更新能量函数的状态。当能量函数达到稳定状态时,该状态表示问题的解。实验结果表明了该算法的有效性,n/sup 2/个神经元的时间复杂度为O(n log n),仿真结果表明,该算法的吞吐量和迭代步长都大大优于线性方法。此外,由于交通控制问题可以简化为旅行商问题。该算法也可应用于其他优化问题。
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