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3-center and 4-center 2-particle Gaussian AO integrals on modern accelerated processors

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arxiv 2405.01834 v2 pith:YJ3AWV3C submitted 2024-05-03 physics.comp-ph cond-mat.mtrl-scics.DCphysics.chem-ph

classification physics.comp-phcond-mat.mtrl-scics.DCphysics.chem-ph
keywords centerintegralsalgorithmgaussianimplementationparticleangularhigh
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abstract

We report an implementation of the McMurchie-Davidson (MD) algorithm for 3-center and 4-center 2-particle integrals over Gaussian atomic orbitals (AOs) with low and high angular momenta $l$ and varying degrees of contraction for graphical processing units (GPUs). This work builds upon our recent implementation of a matrix form of the MD algorithm that is efficient for GPU evaluation of 4-center 2-particle integrals over Gaussian AOs of high angular momenta ($l\geq 4$) [$\mathit{J. Phys. Chem. A}\ \mathbf{127}$, 10889 (2023)]. The use of unconventional data layouts and three variants of the MD algorithm allow to evaluate integrals in double precision with sustained performance between 25% and 70% of the theoretical hardware peak. Performance assessment includes integrals over AOs with $l\leq 6$ (higher $l$ is supported). Preliminary implementation of the Hartree-Fock exchange operator is presented and assessed for computations with up to quadruple-zeta basis and more than 20,000 AOs. The corresponding C++ code is a part of the experimental open-source $\mathtt{LibintX}$ library available at $\mathbf{github.com:ValeevGroup/LibintX}$.

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Cited by 1 Pith paper

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  1. Matryoshka: Optimization of Dynamic Diverse Quantum Chemistry Systems via Elastic Parallelism Transformation

    cs.DC 2024-12 conditional novelty 4.0 of 10

    Matryoshka reorganizes electron repulsion integral computations along reorderable contraction axes, achieving up to 13.86x speedups in quantum chemistry simulations on GPUs.

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