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Subject
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EM algorithm 47 Bootstrap 37 Variable selection 36 Model selection 35 Markov chain Monte Carlo 34 Maximum likelihood 25 Robustness 24 Simulation 23 Classification 22 Dynamic programming 22 Bayesian inference 19 Markov decision processes 19 Confidence interval 18 Quantile regression 18 Clustering 17 Consistency 17 Dimension reduction 17 MCMC 16 Survival analysis 15 Functional data 14 Functional data analysis 14 Generalized linear models 14 Importance sampling 14 Longitudinal data 14 Maximum likelihood estimation 14 Nonparametric regression 14 Optimal control 14 Robust estimation 14 Core 13 Linear programming 13 Logistic regression 13 Monte Carlo simulation 13 Density estimation 12 Lasso 12 Optimization 12 Random effects 12 Regularization 12 Shapley value 12 Cluster analysis 11 Gibbs sampling 11
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Undetermined 6,248 Free 5
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Article 6,272 Book / Working Paper 17
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Collection of articles of several authors 4 Sammelwerk 4 Aufsatzsammlung 2 Handbook 1 Handbuch 1
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Undetermined 6,277 English 12
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Balakrishnan, N. 40 Molenberghs, Geert 22 Tang, Man-Lai 22 Kundu, Debasis 21 Paula, Gilberto A. 16 Trenkler, Gotz 16 Lee, Sik-Yum 15 Cordeiro, Gauss M. 14 Hawkins, Douglas M. 14 Tijs, Stef 14 Tian, Guo-Liang 13 Cribari-Neto, Francisco 12 Nadarajah, Saralees 12 Tutz, Gerhard 12 Borm, Peter 11 Chen, Hubert J. 11 Hubert, Mia 11 Lee, Jae Won 11 Lemonte, Artur J. 11 Ortega, Edwin M.M. 11 Poon, Wai-Yin 11 Priebe, Carey E. 11 Rousseeuw, Peter J. 11 Bentler, Peter M. 10 Dodge, Yadolah 10 Hernández-Lerma, Onésimo 10 Agresti, Alan 9 Brown, Morton B. 9 Cavazos-Cadena, Rolando 9 Croux, Christophe 9 Gerlach, Richard 9 Lesaffre, Emmanuel 9 Liang, Hua 9 Lui, Kung-Jong 9 Shin, Dong Wan 9 Wang, Yong 9 D'Urso, Pierpaolo 8 Ferrari, Silvia L.P. 8 Fraiman, Ricardo 8 Gupta, Ramesh C. 8
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Computational Statistics & Data Analysis 4,738 Computational Statistics 1,534 Springer handbooks of computational statistics 3 Computational Statistics and Data Analysis 2 Computational Statistics and Data Analysis 143 (2020) 106843 1 Computational Statistics and Data Analysis 56 (2012) 1–14 1 Computational Statistics and Data Analysis, Forthcoming 1 Karabatsos, G. (2022). Approximate Bayesian computation using asymptotically normal point estimates. Computational Statistics, 1-38 1 Springer Handbooks of Computational Statistics 1 https://doi.org/10.1016/j.csda.2019.106843 Previous title "HOW MANY PARAMETERS DOES MY KERNEL DENSITY ESTIMATE HAVE?" 1
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RePEc 6,272 ECONIS (ZBW) 11 USB Cologne (EcoSocSci) 6
Showing 1,071 - 1,080 of 6,289
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Classification of image pixels based on minimum distance and hypothesis testing
Ghimire, Santosh; Wang, Haiyan - In: Computational Statistics & Data Analysis 56 (2012) 7, pp. 2273-2287
In this article, we introduce a new method of image pixel classification. Our method is a nonparametric classification method which uses combined evidence from the multiple hypothesis testings and minimum distance to carry out the classification. Our work is motivated by the test-based...
Persistent link: https://www.econbiz.de/10010574454
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Statistical measures of two dimensional point set uniformity
Ong, Meng Sang; Kuang, Ye Chow; Ooi, Melanie Po-Leen - In: Computational Statistics & Data Analysis 56 (2012) 6, pp. 2159-2181
Three different classes of statistical measures of uniformity, namely, discrepancy, point-to-point measures and volumetric measures, are described and compared in this paper. Correlation studies are carried out to compare their performance in discerning uniformity of random and quasi-random...
Persistent link: https://www.econbiz.de/10010574455
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Geoadditive expectile regression
Sobotka, Fabian; Kneib, Thomas - In: Computational Statistics & Data Analysis 56 (2012) 4, pp. 755-767
Quantile regression has emerged as one of the standard tools for regression analysis that enables a proper assessment of the complete conditional distribution of responses even in the presence of heteroscedastic errors. Quantile regression estimates are obtained by minimising an asymmetrically...
Persistent link: https://www.econbiz.de/10010574456
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An improved mean estimator for judgment post-stratification
Frey, Jesse; Feeman, Timothy G. - In: Computational Statistics & Data Analysis 56 (2012) 2, pp. 418-426
We prove that the standard nonparametric mean estimator for judgment post-stratification is inadmissible under squared error loss within a certain class of linear estimators. We derive alternate estimators that are admissible in this class, and we show that one of them is always better than the...
Persistent link: https://www.econbiz.de/10010574457
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Robust descriptive discriminant analysis for repeated measures data
Sajobi, Tolulope T.; Lix, Lisa M.; Dansu, Bolanle M.; … - In: Computational Statistics & Data Analysis 56 (2012) 9, pp. 2782-2794
Discriminant analysis (DA) procedures based on parsimonious mean and/or covariance structures have recently been proposed for repeated measures data. However, these procedures rest on the assumption of a multivariate normal distribution. This study examines repeated measures DA (RMDA) procedures...
Persistent link: https://www.econbiz.de/10010574458
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Analyzing short-term measurements of heart rate variability in the frequency domain using robustly estimated spectral density functions
Spangl, B.; Dutter, R. - In: Computational Statistics & Data Analysis 56 (2012) 5, pp. 1188-1199
To assess the variability of heart rate in the frequency domain, usually the spectral density function of the tachogram series is estimated. However, classical spectral density estimates are well known to be prone to outlying observations; hence, robustness is an issue. Therefore, the heart rate...
Persistent link: https://www.econbiz.de/10010574459
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Asymmetric type II compound Laplace distribution and its application to microarray gene expression
Punathumparambath, Bindu; Kulathinal, Sangita; George, … - In: Computational Statistics & Data Analysis 56 (2012) 6, pp. 1396-1404
In the present paper, the asymmetric type II compound Laplace distribution is introduced and various properties are studied. The maximum likelihood estimation procedure is employed to estimate the parameters of the proposed distribution and an algorithm in R package is developed to carry out the...
Persistent link: https://www.econbiz.de/10010574460
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Phase and amplitude-based clustering for functional data
Slaets, Leen; Claeskens, Gerda; Hubert, Mia - In: Computational Statistics & Data Analysis 56 (2012) 7, pp. 2360-2374
Functional data that are not perfectly aligned in the sense of not showing peaks and valleys at the precise same locations possess phase variation. This is commonly addressed by preprocessing the data via a warping procedure. As opposed to treating phase variation as a nuisance effect, it is...
Persistent link: https://www.econbiz.de/10010574461
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On efficient calculations for Bayesian variable selection
Ruggieri, Eric; Lawrence, Charles E. - In: Computational Statistics & Data Analysis 56 (2012) 6, pp. 1319-1332
We describe an efficient, exact Bayesian algorithm applicable to both variable selection and model averaging problems. A fully Bayesian approach provides a more complete characterization of the posterior ensemble of possible sub-models, but presents a computational challenge as the number of...
Persistent link: https://www.econbiz.de/10010574462
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Generalized Bayesian inference in a fuzzy context: From theory to a virtual reality application
Coletti, Giulianella; Gervasi, Osvaldo; Tasso, Sergio; … - In: Computational Statistics & Data Analysis 56 (2012) 4, pp. 967-980
A generalized Bayesian inference framework in order to embed fuzzy sets and partial probabilistic information is provided. The general framework of reference is that of coherent conditional probabilities, which allows giving a rigorous interpretation of membership function as a conditional...
Persistent link: https://www.econbiz.de/10010574463
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