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Semiempirical Quantum Chemical Calculations Accelerated on a Hybrid Multicore CPU-GPU Computing Platform

机译:在混合多核CPU-GPU计算平台上加速半经验量子化学计算

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In this work, we demonstrate that semiempirical quantum chemical calculations can be accelerated significantly by leveraging the graphics processing unit (GPU) as a coprocessor on a hybrid multicore CPU—GPU computing platform. Semiempirical calculations using the MNDO, AMI, PM3, OM1, OM2, and OM3 model Hamiltonians were systematically profiled for three types of test systems (fullerenes, water clusters, and solvated crambin) to identify the most time-consuming sections of the code. The corresponding routines were ported to the GPU and optimized employing both existing library functions and a GPU kernel that carries out a sequence of noniterative Jacobi transformations during pseudodiagonalization. The overall computation times for single-point energy calculations and geometry optimizations of large molecules were reduced by one order of magnitude for all methods, as compared to runs on a single CPU core.
机译:在这项工作中,我们证明了通过利用图形处理单元(GPU)作为混合多核CPU-GPU计算平台上的协处理器,可以大大加快半经验量子化学计算。使用MNDO,AMI,PM3,OM1,OM2和OM3模型的汉密尔顿半经验计算系统地分析了三种类型的测试系统(富勒烯,水团簇和溶剂化蛤ram),以确定代码中最耗时的部分。相应的例程已移植到GPU,并使用现有库函数和GPU内核进行了优化,该GPU内核在伪对角化过程中执行一系列非迭代Jacobi变换。与在单个CPU内核上运行相比,所有方法的大分子单点能量计算和几何优化的总计算时间减少了一个数量级。

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