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Algorithm XXX: SHEPPACK: Modified Shepard Algorithm for Interpolation of Scattered Multivariate Data

机译:算法XXX:SHEPPACK:修正的Shepard算法,用于对分散的多元数据进行插值

摘要

Scattered data interpolation problems arise in many applications. Shepard’s method for constructing a global interpolant by blending local interpolants using local-support weight functions usually creates reasonable approximations. SHEPPACK is a Fortran 95 package containing five versions of the modified Shepard algorithm: quadratic (Fortran 95 translations of Algorithms 660, 661, and 798), cubic (Fortran 95 translation of Algorithm 791), and linear variations of the original Shepard algorithm. An option to the linear Shepard code is a statistically robust fit, intended to be used when the data is known to contain outliers. SHEPPACK also includes a hybrid robust piecewise linear estimation algorithm RIPPLE (residual initiated polynomial-time piecewise linear estimation) intended for data from piecewise linear functions in arbitrary dimension m. The main goal of SHEPPACK is to provide users with a single consistent package containing most existing polynomial variations of Shepard’s algorithm. The algorithms target data of different dimensions. The linear Shepard algorithm, robust linear Shepard algorithm, and RIPPLE are the only algorithms in the package that are applicable to arbitrary dimensional data.
机译:在许多应用中会出现分散的数据插值问题。 Shepard通过使用局部支持权函数混合局部插值来构造全局插值的方法通常会产生合理的近似值。 SHEPPACK是一个Fortran 95软件包,其中包含修改后的Shepard算法的五个版本:二次方(算法660、661和798的Fortran 95翻译),三次方(算法791的Fortran 95翻译)以及原始Shepard算法的线性变化。线性Shepard码的一个选项是统计稳健的拟合,打算在已知数据包含异常值时使用。 SHEPPACK还包括一种混合鲁棒分段线性估计算法RIPPLE(残差启动多项式时间分段线性估计),用于来自任意维m中的分段线性函数的数据。 SHEPPACK的主要目标是为用户提供一个一致的软件包,其中包含Shepard算法的大多数现有多项式变体。该算法针对不同维度的数据。线性Shepard算法,鲁棒线性Shepard算法和RIPPLE是程序包中唯一适用于任意维数据的算法。

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