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Efficient Algorithm for Expanding Theoretical Electron Densities in Canterakis-Zernike Functions

机译:高效算法扩大Cantakis-Zernike函数中的理论电子密度

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An algorithm for the efficient computation of Canterakis-Zernike moments of theoretically computed molecular electron densities and rotationally invariant Fingerprint indices derived from them is reported. The algorithm is suitable for any density expressed in terms of Gaussian- or Slater-type functions within the Linear Combination of Atomic Orbitals framework at any level of computation. Electron density is expressed as a one-center expansion of real regular spherical harmonics times radial factors by means of translation techniques, which facilitates the efficient computation of the moments in terms of a single one-dimension numerical integration. The performance of the algorithm is analyzed showing that the computation of radial factors in the quadrature points is responsible for almost all computational time. The procedure is applicable to any density obtained with standard packages for molecular structure calculations. (C) 2018 Wiley Periodicals, Inc.
机译:报道了理论上计算的分子电子密度的坎塔克斯 - Zernike矩的有效计算算法,并逐渐衍生的旋转不变的指纹指标。 该算法适用于在任何计算水平的原子轨道框架的线性组合内以高斯或滑动型功能表达的任何密度。 电子密度通过翻译技术表示为真正的正则球形谐波时间径向因子的一个中心扩展,这促进了在单个一维数值积分方面的有效计算。 分析了算法的性能,表明正交点中的径向因子的计算对几乎所有计算时间负责。 该方法适用于用标准包装获得的任何密度,用于分子结构计算。 (c)2018 Wiley期刊,Inc。

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