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Maximum Size Matching Method Realized by Hopfield Neural Network for ATM cell scheduling

机译:Hopfield神经网络实现ATM信元调度的最大尺寸匹配方法

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maximum size matching (MSM) cell scheduling in the ATM Switching Fabrics (ASF) with virtual output queuing (VOQ) is complied by a new Hopfield neural network (HNN). A new energy function of HNN is proposed to correspond to the cell scheduling rules of MSM. The new HNN scheduling algorithm employs all cells updated synchronously and realizes the MSM of the cells with global optimal between input queues and output queues in a single time slot. This difference from the iSLIP and FIRM algorithms makes it have better performances. The simulation results of 8*8 and 16*16' ASF, compared with iSLIP and FIRM methods, demonstrate that the proposed algorithm has faster convergence speed and reduces the mean delay greatly without the throughput degradation.
机译:通过新的Hopfield神经网络(HNN)来实现具有虚拟输出排队(VOQ)的ATM交换结构(ASF)中的最大大小匹配(MSM)信元调度。提出了一种新的HNN能量函数,以对应MSM的小区调度规则。新的HNN调度算法采用同步更新的所有信元,并在单个时隙中的输入队列和输出队列之间实现全局最优的信元MSM。与iSLIP和FIRM算法的区别使它具有更好的性能。与iSLIP和FIRM方法相比,8 * 8和16 * 16'ASF的仿真结果表明,该算法收敛速度较快,并且平均延迟大大降低,且不降低吞吐量。

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