Parallelizable asychronous by blocks algorithms for neural computing

O. Mahamoudou, P. Bourret
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引用次数: 0

Abstract

We deal with neural computing parallel algorithms suitable for parallel processing machines and apply them to solve combinatorial optimization problems. Problems are mapped onto a spin glass model then we utilize simulated annealing and mean field theory (MFT) approximation method. It is well known that the main problem of the synchronous algorithms is to be trapped in limit cycles thus we propose an extension of the MFT approximation method of (Boisson, 1993). Though we reduced parallelism, the algorithms proposed are efficient enough to avoid the limit cycles. We obtained good results in solving our NP-hard target problem, the maximum independent set graph problem.
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神经计算中可并行异步的块算法
研究了适用于并行加工机器的神经计算并行算法,并将其应用于组合优化问题的求解。将问题映射到自旋玻璃模型上,然后利用模拟退火和平均场理论(MFT)逼近方法。众所周知,同步算法的主要问题是被困在极限环中,因此我们提出了(Boisson, 1993)的MFT近似方法的扩展。虽然我们降低了并行度,但所提出的算法足够有效地避免了极限环。我们在求解np -硬目标问题,即最大独立集图问题上取得了很好的结果。
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