نتایج جستجو برای: multivariate adaptive regression spline mars

تعداد نتایج: 613406  

Journal: :Environmental Modelling and Software 2013
Che-sheng Zhan Xiao-meng Song Jun Xia Charles Tong

Efficient sensitivity analysis, particularly for the global sensitivity analysis (GSA) to identify the most important or sensitive parameters, is crucial for understanding complex hydrological models, e.g., distributed hydrological models. In this paper, we propose an efficient integrated approach that integrates a qualitative screening method (the Morris method) with a quantitative analysis me...

2015
JIANHUA Z. HUANG NAN ZHANG J. Z. HUANG N. ZHANG

Smoothing splines provide flexible nonparametric regression estimators. However, the high computational cost of smoothing splines for large datasets has hindered their wide application. In this article, we develop a new method, named adaptive basis sampling, for efficient computation of smoothing splines in super-large samples. Except for the univariate case where the Reinsch algorithm is appli...

Journal: :Remote Sensing 2015
Said Nawar Henning Buddenbaum Joachim Hill

Modeling and mapping of soil properties has been identified as key for effective land degradation management and mitigation. The ability to model and map soil properties at sufficient accuracy for a large agriculture area is demonstrated using Advanced Spaceborne Thermal Emission and Reflection Radiometer (ASTER) imagery. Soil samples were collected in the El-Tina Plain, Sinai, Egypt, concurren...

Journal: :Natural Hazards 2021

Due to a wide range of socio-economic losses caused by drought over the past decades, having reliable insight properties plays key role in monitoring and forecasting situations, finally generating robust methodologies for adapting various vulnerability situations. The most important factor causing is rainfall, but increasing or decreasing temperature consequently, evapotranspiration can intensi...

Journal: :Remote Sensing 2017
Xuanyu Wang Yunjun Yao Shaohua Zhao Kun Jia Xiaotong Zhang Yuhu Zhang Lilin Zhang Jia Xu Xiaowei Chen

Terrestrial latent heat flux (LE) is a key component of the global terrestrial water, energy, and carbon exchanges. Accurate estimation of LE from moderate resolution imaging spectroradiometer (MODIS) data remains a major challenge. In this study, we estimated the daily LE for different plant functional types (PFTs) across North America using three machine learning algorithms: artificial neural...

Journal: :Optics express 2010
Dani Guzmán Francisco Javier de Cos Juez Fernando Sánchez Lasheras Richard Myers Laura Young

Open-loop adaptive optics is a technique in which the turbulent wavefront is measured before it hits the deformable mirror for correction. We present a technique to model a deformable mirror working in open-loop based on multivariate adaptive regression splines (MARS), a non-parametric regression technique. The model's input is the wavefront correction to apply to the mirror and its output is t...

2017
Devin Francom Bruno Sansó

We present the R package BASS as a tool for nonparametric regression. The primary focus of the package is fitting fully Bayesian adaptive spline surface (BASS) models and performing global sensitivity analyses of these models. The BASS framework is similar to that of Bayesian multivariate adaptive regression splines (BMARS) from Denison, Mallick, and Smith (1998), but with many added features. ...

Journal: :Energies 2023

Recently, biomass has become an increasingly widely used energy resource. The problem with the use of is its variable composition. most important property that determines content and thus performance fuels such as heating value (HHV). This paper focuses on selecting optimal number input variables using linear regression (LR) multivariate adaptive splines approach (MARS) to create artificial neu...

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