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首页> 外文期刊>The Journal of Chemical Physics >Comparison and combination of 'direct' and fragment based local correlation methods: Cluster in molecules and domain based local pair natural orbital perturbation and coupled cluster theories
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Comparison and combination of 'direct' and fragment based local correlation methods: Cluster in molecules and domain based local pair natural orbital perturbation and coupled cluster theories

机译:基于“直接”和局部局部相关方法的比较与组合:簇在分子中的基于域的局部对自然轨道扰动和耦合簇理论

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Local correlation theories have been developed in two main flavors: (1) "direct" local correlation methods apply local approximation to the canonical equations and (2) fragment based methods reconstruct the correlation energy from a series of smaller calculations on subsystems. The present work serves two purposes. First, we investigate the relative efficiencies of the two approaches using the domain-based local pair natural orbital (DLPNO) approach as the "direct" method and the cluster in molecule (CIM) approach as the fragment based approach. Both approaches are applied in conjunction with second-order many-body perturbation theory (MP2) as well as coupled-cluster theory with single-, double- and perturbative triple excitations [CCSD(T)]. Second, we have investigated the possible merits of combining the two approaches by performing CIM calculations with DLPNO methods serving as the method of choice for performing the subsystem calculations. Our cluster-in-molecule approach is closely related to but slightly deviates from approaches in the literature since we have avoided real space cutoffs. Moreover, the neglected distant pair correlations in the previous CIM approach are considered approximately. Six very large molecules (503-2380 atoms) were studied. At both MP2 and CCSD(T) levels of theory, the CIM and DLPNO methods show similar efficiency. However, DLPNO methods are more accurate for 3-dimensional systems. While we have found only little incentive for the combination of CIM with DLPNO-MP2, the situation is different for CIM-DLPNO-CCSD(T). This combination is attractive because (1) the better parallelization opportunities offered by CIM; (2) the methodology is less memory intensive than the genuine DLPNO-CCSD(T) method and, hence, allows for large calculations on more modest hardware; and (3) the methodology is applicable and efficient in the frequently met cases, where the largest subsystem calculation is too large for the canonical CCSD(T) method. Published
机译:局部相关理论已在两个主要的味道中开发:(1)“直接”局部相关方法将局部近似应用于规范方程,(2)基于片段的方法从子系统的一系列较小计算重建相关能量。目前的工作有两个目的。首先,我们研究了使用基于域的本地对自然轨道(DLPNO)方法作为“直接”方法和分子(CIM)方法中的群体作为基于片段的方法的相对效率。两种方法都与二阶许多身体扰动理论(MP2)以及耦合簇理论一起应用,具有单,双和扰动三重激励[CCSD(T)]。其次,我们已经调查了通过使用用作执行子系统计算的选择方法的DLPNO方法来组合两种方法的可能优点。我们的集群分子方法与我们避免真正的空间截止值密切相关,但略有偏离文献中的方法。此外,大约考虑了先前CIM方法中的被忽略的远处对相关性。研究了六种非常大的分子(503-2380原子)。在MP2和CCSD(T)的理论水平,CIM和DLPNO方法呈现出类似的效率。然而,DLPNO方法对于三维系统更准确。虽然我们发现CIM与DLPNO-MP2的组合的速度很少,但CIM-DLPNO-CCSD(T)的情况不同。这种组合很有吸引力,因为(1)CIM提供的更好的并行化机会; (2)该方法较少的内存密集型,而不是真正的DLPNO-CCSD(T)方法,因此允许对更适度的硬件进行大型计算; (3)方法技术在频繁达到的情况下适用和高效,其中最大的子系统计算对于规范CCSD(T)方法太大。发表

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