Literature DB >> 24415909

Multicategory Large-Margin Unified Machines.

Chong Zhang1, Yufeng Liu2.   

Abstract

Hard and soft classifiers are two important groups of techniques for classification problems. Logistic regression and Support Vector Machines are typical examples of soft and hard classifiers respectively. The essential difference between these two groups is whether one needs to estimate the class conditional probability for the classification task or not. In particular, soft classifiers predict the label based on the obtained class conditional probabilities, while hard classifiers bypass the estimation of probabilities and focus on the decision boundary. In practice, for the goal of accurate classification, it is unclear which one to use in a given situation. To tackle this problem, the Large-margin Unified Machine (LUM) was recently proposed as a unified family to embrace both groups. The LUM family enables one to study the behavior change from soft to hard binary classifiers. For multicategory cases, however, the concept of soft and hard classification becomes less clear. In that case, class probability estimation becomes more involved as it requires estimation of a probability vector. In this paper, we propose a new Multicategory LUM (MLUM) framework to investigate the behavior of soft versus hard classification under multicategory settings. Our theoretical and numerical results help to shed some light on the nature of multicategory classification and its transition behavior from soft to hard classifiers. The numerical results suggest that the proposed tuned MLUM yields very competitive performance.

Entities:  

Keywords:  hard classification; large-margin; soft classification; support vector machine

Year:  2013        PMID: 24415909      PMCID: PMC3885348     

Source DB:  PubMed          Journal:  J Mach Learn Res        ISSN: 1532-4435            Impact factor:   3.654


  6 in total

1.  Soft and hard classification by reproducing kernel Hilbert space methods.

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Journal:  Proc Natl Acad Sci U S A       Date:  2002-12-11       Impact factor: 11.205

2.  Hard or Soft Classification? Large-margin Unified Machines.

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Journal:  J Am Stat Assoc       Date:  2011-03-01       Impact factor: 5.033

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Authors:  Roel G W Verhaak; Katherine A Hoadley; Elizabeth Purdom; Victoria Wang; Yuan Qi; Matthew D Wilkerson; C Ryan Miller; Li Ding; Todd Golub; Jill P Mesirov; Gabriele Alexe; Michael Lawrence; Michael O'Kelly; Pablo Tamayo; Barbara A Weir; Stacey Gabriel; Wendy Winckler; Supriya Gupta; Lakshmi Jakkula; Heidi S Feiler; J Graeme Hodgson; C David James; Jann N Sarkaria; Cameron Brennan; Ari Kahn; Paul T Spellman; Richard K Wilson; Terence P Speed; Joe W Gray; Matthew Meyerson; Gad Getz; Charles M Perou; D Neil Hayes
Journal:  Cancer Cell       Date:  2010-01-19       Impact factor: 31.743

  6 in total
  6 in total

1.  Graph-based sparse linear discriminant analysis for high-dimensional classification.

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2.  Composite large margin classifiers with latent subclasses for heterogeneous biomedical data.

Authors:  Guanhua Chen; Yufeng Liu; Dinggang Shen; Michael R Kosorok
Journal:  Stat Anal Data Min       Date:  2016-01-08       Impact factor: 1.051

3.  Reinforced Angle-based Multicategory Support Vector Machines.

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Journal:  Biometrika       Date:  2014-07-23       Impact factor: 2.445

6.  Double Sparsity Kernel Learning with Automatic Variable Selection and Data Extraction.

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Journal:  Stat Interface       Date:  2018       Impact factor: 0.582

  6 in total

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