An improved chain of spheres for exchange algorithm

Улучшенный алгоритм «цепочки сфер» для обменного оператора
Frank Neese, Bernardo de Souza, Róbert Izsák, Benjamin Helmich‐Paris
2021-09-13

RIJCOSXchain-of-spheres algorithm (COSX)global optimization grids for numerical integrationpartially contracted basis intermediate exchange computationrolled-out Dupuis–Rys–King and Head–Gordon–Pople algorithms
In the present work, we describe a more accurate and efficient variant of the chain-of-spheres algorithm (COSX) for exchange matrix computations. Higher accuracy for the numerical integration is obtained with new grids that were developed using global optimization techniques. With our new default grids, the average absolute energy errors are much lower than 0.1 kcal/mol, which is desirable to achieve "chemical accuracy." Although the size of the new grids is increased by roughly a factor of 2.5, the excellent efficiency of the original COSX implementation is still further improved in most cases. The evaluation of the analytic electrostatic potential integrals was significantly accelerated by a new implementation of rolled-out versions of the Dupuis-Rys-King and Head-Gordon-Pople algorithms. Compared to our earlier implementation, a twofold speedup is obtained for the frequently used triple-ζ basis sets, while up to a 16-fold speedup is observed for quadruple-ζ basis sets. These large gains are a consequence of both the more efficient integral evaluation and the intermediate exchange matrix computation in a partially contracted basis when generally contracted shells occur. With our new RIJCOSX implementation, we facilitate accurate self-consistent field (SCF) binding energy calculations on a large supra-molecular complex composed of 320 atoms. The binding-energy errors with respect to the fully analytic results are well below 0.1 kcal/mol for the cc-pV(T/Q)Z basis sets and even smaller than for RIJ with fully analytic exchange. At the same time, our RIJCOSX SCF calculation even with the cc-pVQZ basis and the finest grid is 21 times faster than the fully analytic calculation.
1
Compared to earlier implementation, achieved ~2× speedup for triple-ζ basis sets and up to 16× speedup for quadruple-ζ basis sets.
2
Developed a more accurate and efficient variant of the chain-of-spheres (COSX) algorithm for exchange matrix computations.
3
New grids, optimized via global optimization, reduce average absolute energy errors to much lower than 0.1 kcal/mol, achieving chemical accuracy.
4
New rolled-out implementations of Dupuis-Rys-King and Head-Gordon-Pople integral algorithms significantly accelerate analytic electrostatic potential integrals.
5
RIJCOSX enables accurate SCF binding-energy calculations on a 320-atom supramolecular complex with binding-energy errors well below 0.1 kcal/mol and is 21× faster than fully analytic calculation with cc-pVQZ and finest grid.

Improved chain-of-spheres for exchange (COSX / RIJCOSX) algorithm and its implementation for exchange matrix and SCF binding-energy computations

Accuracy and efficiency (numerical integration grids, integral evaluation speedups, intermediate partially contracted exchange computation, and resulting binding-energy errors and overall speedup) of the improved COSX/RIJCOSX implementation for exchange matrix and SCF calculations

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Publication Date
2021-09-13
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Authors
Frank Neese
Bernardo de Souza
Róbert Izsák
Benjamin Helmich‐Paris
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