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  • Search: isPartOf:"Advances in Data Analysis and Classification"
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Clustering 17 Model-based clustering 9 Robustness 8 Mixture models 7 Classification 6 Dimension reduction 5 EM algorithm 5 Functional data 5 Mixture model 5 Principal component analysis 5 Trimming 5 Data streams 3 Feature selection 3 Forward search 3 Fuzzy clustering 3 Interval-valued data 3 Logistic regression 3 Markov chain Monte Carlo 3 Model selection 3 Time series 3 Bootstrap 2 Cluster analysis 2 Cohen’s kappa 2 Constrained optimisation 2 DC programming 2 Functional data analysis 2 Functional principal component analysis 2 Gene expression data 2 Kernel methods 2 Maximum likelihood estimation 2 Missing values 2 Multivariate outlier detection 2 Outlier detection 2 Partitions 2 Random walks 2 Regression 2 Robust clustering 2 Robust statistics 2 Simulation 2 Skewness 2
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Undetermined 141
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Article 141
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Undetermined 141
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Bock, Hans-Hermann 12 Gaul, Wolfgang 9 Vichi, Maurizio 8 Okada, Akinori 7 McNicholas, Paul 5 Warrens, Matthijs 4 Hwang, Heungsun 3 Iannario, Maria 3 Weihs, Claus 3 Baier, Daniel 2 Batagelj, Vladimir 2 Bouveyron, Charles 2 Cerioli, Andrea 2 Diday, Edwin 2 Dinh, Tao Pham 2 Filzmoser, Peter 2 García-Escudero, L. 2 Gordaliza, A. 2 Guénoche, Alain 2 Hand, David 2 Hennig, Christian 2 Jacques, Julien 2 Mayo-Iscar, A. 2 Morlini, Isabella 2 Perrotta, Domenico 2 Piccolo, Domenico 2 Riani, Marco 2 Ritter, Gunter 2 Scrucca, Luca 2 Subedi, Sanjeena 2 Suk, Hye 2 Takane, Yoshio 2 Templ, Matthias 2 Thi, Hoai Le 2 Zuccolotto, Paola 2 Adachi, Kohei 1 Adams, Niall 1 Aelst, Stefan Van 1 Afonso, Filipe 1 Aknin, Patrice 1
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Advances in Data Analysis and Classification 141
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RePEc 141
Showing 21 - 30 of 141
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A constrained robust proposal for mixture modeling avoiding spurious solutions
García-Escudero, L.; Gordaliza, A.; Mayo-Iscar, A. - In: Advances in Data Analysis and Classification 8 (2014) 1, pp. 27-43
The high prevalence of spurious solutions and the disturbing effect of outlying observations in mixture modeling are well known problems that pose serious difficulties for non-expert practitioners of this kind of models in different applied areas. An approach which combines the use of Trimmed...
Persistent link: https://www.econbiz.de/10010995269
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Principal differential analysis of the Aneurisk65 data set
Rosa, Matilde Dalla; Sangalli, Laura; Vantini, Simone - In: Advances in Data Analysis and Classification 8 (2014) 3, pp. 287-302
We explore the use of principal differential analysis as a tool for performing dimensional reduction of functional data sets. In particular, we compare the results provided by principal differential analysis and by functional principal component analysis in the dimensional reduction of three...
Persistent link: https://www.econbiz.de/10010995273
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Latent class CUB models
Grilli, Leonardo; Iannario, Maria; Piccolo, Domenico; … - In: Advances in Data Analysis and Classification 8 (2014) 1, pp. 105-119
The paper proposes a latent class version of Combination of Uniform and (shifted) Binomial random variables ( <Emphasis FontCategory="NonProportional">CUB ) models for ordinal data to account for unobserved heterogeneity. The extension, called  <Emphasis FontCategory="NonProportional">LC-CUB , is useful when the heterogeneity is originated by clusters of respondents not...</emphasis></emphasis>
Persistent link: https://www.econbiz.de/10010995282
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Classification of brain activation via spatial Bayesian variable selection in fMRI regression
Kalus, Stefanie; Sämann, Philipp; Fahrmeir, Ludwig - In: Advances in Data Analysis and Classification 8 (2014) 1, pp. 63-83
Functional magnetic resonance imaging (fMRI) is the most popular technique in human brain mapping, with statistical parametric mapping (SPM) as a classical benchmark tool for detecting brain activity. Smith and Fahrmeir (J Am Stat Assoc 102(478):417–431, <CitationRef CitationID="CR22">2007</CitationRef>) proposed a competing method based...</citationref>
Persistent link: https://www.econbiz.de/10010995286
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Simplicial band depth for multivariate functional data
López-Pintado, Sara; Sun, Ying; Lin, Juan; Genton, Marc - In: Advances in Data Analysis and Classification 8 (2014) 3, pp. 321-338
We propose notions of simplicial band depth for multivariate functional data that extend the univariate functional band depth. The proposed simplicial band depths provide simple and natural criteria to measure the centrality of a trajectory within a sample of curves. Based on these depths, a...
Persistent link: https://www.econbiz.de/10010995288
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Robust clustering around regression lines with high density regions
Cerioli, Andrea; Perrotta, Domenico - In: Advances in Data Analysis and Classification 8 (2014) 1, pp. 5-26
Robust methods are needed to fit regression lines when outliers are present. In a clustering framework, outliers can be extreme observations, high leverage points, but also data points which lie among the groups. Outliers are also of paramount importance in the analysis of international trade...
Persistent link: https://www.econbiz.de/10010758714
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Mixtures of biased sentiment analysers
Salter-Townshend, Michael; Murphy, Thomas - In: Advances in Data Analysis and Classification 8 (2014) 1, pp. 85-103
Modelling bias is an important consideration when dealing with inexpert annotations. We are concerned with training a classifier to perform sentiment analysis on news media articles, some of which have been manually annotated by volunteers. The classifier is trained on the words in the articles...
Persistent link: https://www.econbiz.de/10010758715
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Multinomial logit models with implicit variable selection
Zahid, Faisal; Tutz, Gerhard - In: Advances in Data Analysis and Classification 7 (2013) 4, pp. 393-416
The multinomial logit model is the most widely used model for the unordered multi-category responses. However, applications are typically restricted to the use of few predictors because in the high-dimensional case maximum likelihood estimates frequently do not exist. In this paper we are...
Persistent link: https://www.econbiz.de/10010728111
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Regularized logistic discrimination with basis expansions for the early detection of Alzheimer’s disease based on three-dimensional MRI data
Araki, Yuko; Kawaguchi, Atsushi; Yamashita, Fumio - In: Advances in Data Analysis and Classification 7 (2013) 1, pp. 109-119
In recent years, evidence has emerged indicating that magnetic resonance imaging (MRI) brain scans provide valuable diagnostic information about Alzheimer’s disease. It has been shown that MRI brain scans are capable of both diagnosing Alzheimer’s disease itself at an early stage and...
Persistent link: https://www.econbiz.de/10010846122
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Lagrangian relaxation and pegging test for the clique partitioning problem
Sukegawa, Noriyoshi; Yamamoto, Yoshitsugu; Zhang, Liyuan - In: Advances in Data Analysis and Classification 7 (2013) 4, pp. 363-391
The clique partitioning problem is an NP-hard combinatorial optimization problem with applications to data analysis such as clustering. Though a binary integer linear programming formulation has been known for years, one needs to deal with a huge number of variables and constraints when solving...
Persistent link: https://www.econbiz.de/10010846128
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