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A Practical Implementation of Parallel Dynamic Load Balancing for Adaptive Computing in VLSI Device Simulation

机译:VLSI器件仿真中自适应计算并行动态负载均衡的实用实现

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We present a new parallel semiconductor device simulation using the dynamic load balancing approach. This semiconductor device simulation based on the adaptive finite volume method with a posteriori error estimation has been developed and successfully implemented on a 16-PC Linux cluster with a message passing interface library, A constructive monotone iterative technique is also applied for solution of the system of nonlinear algebraic equations. Two different parallel versions of the algorithm to perform a complete device simulation are proposed. The first is a dynamic parallel domain decomposition approach, and the second is a parallel current-voltage characteristic points simulation. This implementation shows that a well-designed load balancing simulation can significantly reduce the execution time up to an order of magnitude. Compared with the measured data, numerical results on various submicron VLSI devices are presented, to show the accuracy and efficiency of the method.
机译:我们提出了一种使用动态负载平衡方法的新型并行半导体器件仿真。已经开发了这种基于自适应有限体积方法并具有后验误差估计的半导体器件仿真,并成功地在带有消息传递接口库的16-PC Linux集群上实现了该仿真,并且将一种构造性单调迭代技术应用于该系统的解决方案。非线性代数方程。提出了用于执行完整设备仿真的算法的两种不同并行版本。第一种是动态并行域分解方法,第二种是并行电流-电压特征点仿真。此实现表明,精心设计的负载平衡仿真可以将执行时间显着减少一个数量级。与测量数据进行比较,给出了在各种亚微米VLSI器件上的数值结果,以证明该方法的准确性和效率。

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