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Parallel and Low-Order Scaling Implementation of Hartree-Fock Exchange Using Local Density Fitting

机译:使用局部密度拟合的Hartree-Fock交换并行和低阶缩放实现

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Calculations using modern linear-scaling electron-correlation methods are often much faster than the necessary reference HartreeFock (HF) calculations. We report a newly implemented HF program that speeds up the most time-consuming step, namely, the evaluation of the exchange contributions to the Fock matrix. Using localized orbitals and their sparsity, local density fitting (LDF), and atomic orbital domains, we demonstrate that the calculation of the exchange matrix scales asymptotically linearly with molecular size. The remaining parts of the HF calculation scale cubically but become dominant only for very large molecular sizes or with many processing cores. The method is well parallelized, and the speedup scales well with up to about 100 CPU cores on multiple compute nodes. The effect of the local approximations on the accuracy of computed HF and local second-order MollerPlesset perturbation theory energies is systematically investigated, and default values are established for the parameters that determine the domain sizes. Using these values, calculations for molecules with hundreds of atoms in combination with triple-zeta basis sets can be carried out in less than 1 h, with just a few compute nodes. The method can also be used to speed up density functional theory calculations with hybrid functionals that contain HF exchange.
机译:使用现代的线性比例电子相关方法进行的计算通常比必要的参考HartreeFock(HF)计算要快得多。我们报告了一个新实施的HF程序,该程序可以加快最耗时的步骤,即评估对Fock矩阵的交换贡献。使用局部轨道及其稀疏性,局部密度拟合(LDF)和原子轨道域,我们证明了交换矩阵的计算与分子大小呈线性渐近关系。 HF计算的其余部分按立方缩放,但仅在非常大的分子大小或具有许多处理核心的情况下才占主导地位。该方法具有很好的并行性,并且可以在多个计算节点上最多支持约100个CPU内核的情况下很好地进行扩展。系统地研究了局部近似对计算的HF和局部二阶MollerPlesset摄动理论能量的准确性的影响,并为确定域大小的参数建立了默认值。使用这些值,仅需几个计算节点,就可以在不到1小时的时间内完成具有数百个原子与三重Zeta基集组合的分子的计算。该方法还可以用于通过包含HF交换的混合函数加快密度泛函理论的计算。

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