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Application of high-performance computing to numerical simulation of human movement

机译:高性能计算在人体运动数值模拟中的应用

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We have examined the feasibility of using massively-parallel and vector-processing supercomputers to solve large-scale optimization problems for human movement. Specifically, we compared the computational expense of determining the optimalcontrols for the single support phase of gait using a conventional serial machine (SGI Iris 4D25), a MIMD parallel machine (Intel iPSC/860), and a parallel- vector-processing machine (Cray Y-MP 8/864). With the human body modeled as a 14 degree-of-freedom linkage actuated by 46 musculotendinous units, computation of the optimal controls for gait could take up to 3 months of CPU time on the Iris. Both the Cray and the Intel are able to reduce this time to practical levels. The optimal solution for gait canbe found with about 77 hours of CPU on the Cray and with about 88 hours of CPU on the Intel. Although the overall speeds of the Cray and the Intel were found to be similar, the unique capabilities of each machine are better suited to different portions of the computational algorithm used. The Intel was best suited to computing the derivatives of the performance criterion and the constraints whereas the Cray was best suited to parameter optimization of the controls. These results suggest that the idealcomputer architecture for solving very large-scale optimal control problems is a hybrid system in which a vector-processing machine is integrated into the communication network of a MIMD parallel machine.
机译:我们已经研究了使用大规模并行和矢量处理超级计算机解决大规模人体移动优化问题的可行性。具体来说,我们比较了使用传统的串行计算机(SGI Iris 4D25),MIMD并行计算机(Intel iPSC / 860)和并行矢量处理计算机(Cray)为步态的单一支持阶段确定最佳控制的计算费用Y-MP 8/864)。将人体建模为由46个肌腱单元驱动的14个自由度链接,计算步态的最佳控制方法可能需要在虹膜上花费3个月的CPU时间。 Cray和Intel都可以将此时间减少到实际水平。步态的最佳解决方案可以在Cray上使用约77小时的CPU,在Intel上使用约88小时的CPU。尽管发现Cray和Intel的总体速度相似,但每台计算机的独特功能都更适合于所用计算算法的不同部分。英特尔最适合计算性能标准和约束条件的派生,而Cray最适合控制参数的优化。这些结果表明,用于解决超大规模最优控制问题的理想计算机体系结构是一种混合系统,其中将矢量处理机集成到MIMD并行机的通信网络中。

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