A new methodology for creating highly accurate, static nonlinear maps from scattered, multivariate data is presented. This new methodology uses the B-form polynomials of multivariate simplex splines in a new linear regression scheme. This allows the use of standard parameter estimation techniques for estimating the B-coefficients of the multivariate simplex splines. We present a generalized least squares estimator for the B-coefficients, and show how the estimated B-coefficient variances lead to a new model quality assessment measure in the form of the B-coefficient variance surface. The new modeling methodology is demonstrated on a nonlinear scattered bivariate dataset
this paper provides the mechanism for including cubic smoothing splines in models for the analysis o...
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In the literature, much effort has been put into modeling dependence among variables and their inter...
A new methodology for creating highly accurate, static nonlinear maps from scattered, multivariate d...
The validation of aerodynamic models created using flight test data is a time consuming and often co...
At present, model based control systems play an essential role in many aspects of modern society. Ap...
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Abstract: A flexible nonparametric regression model is considered in which the response de-pends lin...
In applications like model identification accurate methods for data approximation are required. Mult...
In this paper, we propose a method to select the better of two types of models: a polynomial with lo...
Various computational tools are available for modeling highly nonlinear structural engineering probl...
B-splines constitute an appealing method for the nonparametric estimation of a range of statis-tical...
this paper provides the mechanism for including cubic smoothing splines in models for the analysis o...
Spline functions provide a useful and flexible basis for modeling relationships with continuous pred...
In the literature, much effort has been put into modeling dependence among variables and their inter...
A new methodology for creating highly accurate, static nonlinear maps from scattered, multivariate d...
The validation of aerodynamic models created using flight test data is a time consuming and often co...
At present, model based control systems play an essential role in many aspects of modern society. Ap...
Abstract: Nonparametric response transformations for regression models are of great interest and use...
In this article, regression splines are used inside linear mixed models to explore nonlinear longitu...
The package bspline, downloadable from Statistical Software Components, now has three commands. The ...
Splines are an attractive way of flexibly modeling a regression curve since their basis functions ca...
Abstract: A flexible nonparametric regression model is considered in which the response de-pends lin...
In applications like model identification accurate methods for data approximation are required. Mult...
In this paper, we propose a method to select the better of two types of models: a polynomial with lo...
Various computational tools are available for modeling highly nonlinear structural engineering probl...
B-splines constitute an appealing method for the nonparametric estimation of a range of statis-tical...
this paper provides the mechanism for including cubic smoothing splines in models for the analysis o...
Spline functions provide a useful and flexible basis for modeling relationships with continuous pred...
In the literature, much effort has been put into modeling dependence among variables and their inter...