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  • Search: subject:"kernel methods"
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Year of publication
Subject
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kernel methods 24 Kernel methods 22 High dimensionality 7 Prognoseverfahren 7 nonlinear forecasting 7 Forecasting model 5 Schätztheorie 5 ridge regression 5 Classification 4 Estimation theory 3 Kernel Methods 3 Nichtlineare Regression 3 Nonlinear forecasting 3 Nonlinear regression 3 Regression 3 Theorie 3 Theory 3 bandwidth 3 high dimensionality 3 prediction 3 quantile estimation 3 shrinkage estimation 3 support vector machines 3 time series analysis 3 Absolutely regular 2 Algorithm 2 Algorithmus 2 Artificial intelligence 2 CAPM 2 Clustering 2 Discounting 2 Diskontierung 2 Gaussian Process 2 Künstliche Intelligenz 2 Monte Carlo simulation 2 Monte-Carlo-Simulation 2 Nichtlineares Verfahren 2 Nonparametric estimation 2 Regression analysis 2 Regressionsanalyse 2
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Online availability
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Free 29 Undetermined 18
Type of publication
All
Book / Working Paper 27 Article 22 Other 1
Type of publication (narrower categories)
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Working Paper 12 Arbeitspapier 5 Article in journal 5 Aufsatz in Zeitschrift 5 Graue Literatur 5 Non-commercial literature 5 Article 1 Conference paper 1 Konferenzbeitrag 1
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Language
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Undetermined 28 English 22
Author
All
Exterkate, Peter 10 Heij, Christiaan 6 Dijk, Dick van 5 Hall, Peter 5 Groenen, Patrick J.F. 4 Chernozhukov, Victor 3 Galichon, Alfred 3 Yao, Qiwei 3 Fernández-Val, Iván 2 Groenen, Patrick J. F. 2 Horowitz, Joel 2 Kelly, Bryan T. 2 Malamud, Semyon 2 Spokoiny, Vladimir 2 Adrianto, Indra 1 Anderson, R. 1 Ang, Andrew 1 Astorino, A. 1 Aytug, Haldun 1 Bachoc, Francois 1 Bandi, Federico M. 1 Binner, J.M. 1 Bioch, Bioch, J.C. 1 Bioch, J.C. 1 Bouikhalene, Belaid 1 Boutalline, Mohammed 1 Cecchini, Mark 1 Chalup, Stephan 1 Chen, Zhen-Yu 1 Chen, Zhimin 1 De Baets, Bernard 1 Debruyne, Michiel 1 Eskin, Eleazar 1 Fan, Jonathan 1 Fan, Zhi-Ping 1 Fernandez-Val, Ivan 1 Fletcher, Tristan 1 Gaudioso, M. 1 Gnecco, Giorgio 1 Gonzalez, Javier 1
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Institution
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School of Economics and Management, University of Aarhus 3 Departamento de Estadistica, Universidad Carlos III de Madrid 2 Tinbergen Instituut 2 Department of Economics, Boston University 1 Erasmus University Rotterdam, Econometric Institute 1 Faculteit der Economische Wetenschappen, Erasmus Universiteit Rotterdam 1 Institute of Economic Research, Hitotsubashi University 1 London School of Economics (LSE) 1 School of Economics and Finance, Business School 1 Society for Computational Economics - SCE 1 Tinbergen Institute 1
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Published in...
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CREATES Research Papers 3 Tinbergen Institute Discussion Papers 3 cemmap working paper 3 Advances in Data Analysis and Classification 2 Computational Management Science 2 Computational Optimization and Applications 2 Computational Statistics & Data Analysis 2 Discussion paper / Tinbergen Institute 2 IRTG 1792 Discussion Paper 2 Physica A: Statistical Mechanics and its Applications 2 Research paper series / Swiss Finance Institute 2 Statistics and Econometrics Working Papers 2 Tinbergen Institute Discussion Paper 2 Annals of the Institute of Statistical Mathematics 1 Boston University - Department of Economics - Working Papers Series 1 CEMMAP working papers / Centre for Microdata Methods and Practice 1 Computational Economics 1 Computational Statistics 1 Computing in Economics and Finance 2006 1 Dynamic games and applications : DGA 1 Econometric Institute Report 1 Econometric Institute Research Papers 1 European journal of operational research : EJOR 1 Global COE Hi-Stat Discussion Paper Series 1 International Journal of Information Technology & Decision Making (IJITDM) 1 International journal of forecasting 1 Journal of electronic commerce in organizations : the international journal of electronic commerce in modern organizations ; an official publication of the Information Resources Management Association 1 LSE Research Online Documents on Economics 1 Management Science 1 Operations research 1 School of Economics and Finance Discussion Papers and Working Papers Series 1
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Source
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RePEc 29 ECONIS (ZBW) 10 EconStor 8 BASE 3
Showing 11 - 20 of 50
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A simple bootstrap method for constructing nonparametric confidence bands for functions
Hall, Peter; Horowitz, Joel - 2012
Standard approaches to constructing nonparametric confidence bands for functions are frustrated by the impact of bias, which generally is not estimated consistently when using the bootstrap and conventionally smoothed function estimators. To overcome this problem it is common practice to either...
Persistent link: https://www.econbiz.de/10009554351
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Model Selection in Kernel Ridge Regression
Exterkate, Peter - School of Economics and Management, University of Aarhus - 2012
Kernel ridge regression is gaining popularity as a data-rich nonlinear forecasting tool, which is applicable in many different contexts. This paper investigates the influence of the choice of kernel and the setting of tuning parameters on forecast accuracy. We review several popular kernels,...
Persistent link: https://www.econbiz.de/10010851278
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Nonlinear forecasting with many predictors using Kernel ridge regression
Exterkate, Peter; Groenen, Patrick J. F.; Heij, Christiaan - 2011
This paper puts forward kernel ridge regression as an approach for forecasting with many predictors that are related nonlinearly to the target variable. In kernel ridge regression, the observed predictor variables are mapped nonlinearly into a high-dimensional space, where estimation of the...
Persistent link: https://www.econbiz.de/10011382698
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Nonlinear Forecasting with Many Predictors using Kernel Ridge Regression
Exterkate, Peter; Groenen, Patrick J.F.; Heij, Christiaan; … - Tinbergen Institute - 2011
This paper puts forward kernel ridge regression as an approach for forecasting with many predictors that are related nonlinearly to the target variable. In kernel ridge regression, the observed predictor variables are mapped nonlinearly into a high-dimensional space, where estimation of the...
Persistent link: https://www.econbiz.de/10008838536
Saved in:
Cover Image
Nonlinear Forecasting with Many Predictors using Kernel Ridge Regression
Exterkate, Peter; Groenen, Patrick J.F.; Heij, Christiaan; … - 2011
This paper puts forward kernel ridge regression as an approach for forecasting with many predictors that are related nonlinearly to the target variable. In kernel ridge regression, the observed predictor variables are mapped nonlinearly into a high-dimensional space, where estimation of the...
Persistent link: https://www.econbiz.de/10010325897
Saved in:
Cover Image
Modelling Issues in Kernel Ridge Regression
Exterkate, Peter - 2011
Kernel ridge regression is gaining popularity as a data-rich nonlinear forecasting tool, which is applicable in many different contexts. This paper investigates the influence of the choice of kernel and the setting of tuning parameters on forecast accuracy. We review several popular kernels,...
Persistent link: https://www.econbiz.de/10010326392
Saved in:
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Kernel Methods for Classification with Irregularly Sampled and Contaminated Data.
Kim, Joo Seuk - 2011
design a classifier. In this thesis, we present kernel methods for classification with irregularly sampled and contaminated …-operative patient with possible sepsis. The experimental results show that the proposed features, when paired with kernel methods, have …
Persistent link: https://www.econbiz.de/10009482954
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Cover Image
Modelling issues in kernel ridge regression
Exterkate, Peter - 2011
Persistent link: https://www.econbiz.de/10009720743
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Cover Image
Modelling Issues in Kernel Ridge Regression
Exterkate, Peter - Tinbergen Instituut - 2011
Kernel ridge regression is gaining popularity as a data-rich nonlinear forecasting tool, which is applicable in many different contexts. This paper investigates the influence of the choice of kernel and the setting of tuning parameters on forecast accuracy. We review several popular kernels,...
Persistent link: https://www.econbiz.de/10011255762
Saved in:
Cover Image
Nonlinear Forecasting with Many Predictors using Kernel Ridge Regression
Exterkate, Peter; Groenen, Patrick J.F.; Heij, Christiaan; … - Tinbergen Instituut - 2011
This paper puts forward kernel ridge regression as an approach for forecasting with many predictors that are related nonlinearly to the target variable. In kernel ridge regression, the observed predictor variables are mapped nonlinearly into a high-dimensional space, where estimation of the...
Persistent link: https://www.econbiz.de/10011256969
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