نتایج جستجو برای: nearest neighbor sampling method

تعداد نتایج: 1803146  

Journal: :INFORMS Journal on Computing 2007
Emilio Carrizosa Belen Martin-Barragan Frank Plastria Dolores Romero Morales

T nearest-neighbor classifier has been shown to be a powerful tool for multiclass classification. We explore both theoretical properties and empirical behavior of a variant method, in which the nearest-neighbor rule is applied to a reduced set of prototypes. This set is selected a priori by fixing its cardinality and minimizing the empirical misclassification cost. In this way we alleviate the ...

2002
Carlotta Domeniconi Jing Peng Dimitrios Gunopulos

Nearest neighbor classiication assumes locally constant class conditional probabilities. This assumption becomes invalid in high dimensions with nite samples due to the curse of dimensionality. Severe bias can be introduced under these conditions when using the nearest neighbor rule. We propose a locally adaptive nearest neighbor classiication method to try to minimize bias. We use a Chi-square...

2000
Carlotta Domeniconi Dimitrios Gunopulos Jing Peng

Nearest neighbor classification assumes locally constant class conditional probabilities. This assumption becomes invalid in high dimensions with finite samples due to the curse of dimensionality. Severe bias can be introduced under these conditions when using the nearest neighbor rule. We propose a locally adaptive nearest neighbor classification method to try to minimize bias. We use a Chisqu...

2000
Carlotta Domeniconi Jing Peng Dimitrios Gunopulos

Nearest neighbor classification assumes locally constant class conditional probabilities. This assumption becomes invalid in high dimensions with finite samples due to the curse of dimensionality. Severe bias can be introduced under these conditions when using the nearest neighbor rule. We propose a locally adaptive nearest neighbor classification method to try to minimize bias. We use a Chi-sq...

Journal: :Eastern-European Journal of Enterprise Technologies 2015

2004
Jian-Hung Chen Hung-Ming Chen Shinn-Ying Ho

The goal of designing optimal nearest neighbor classifiers is to maximize classification accuracy while minimizing the sizes of both reference and feature sets. A usual way is to adaptively weight the three objectives as an objective function and then use a single-objective optimization method for achieving this goal. This paper proposes a multi-objective approach to cope with the weight tuning...

Journal: :Pattern Recognition 2005
Mehul P. Sampat Alan C. Bovik Jake K. Aggarwal Kenneth R. Castleman

This paper describes a fully automatic chromosome classification algorithm for Multiplex Fluorescence In-Situ Hybridization(M-FISH) images using supervised parametric and non-parametric techniques. M-FISH is a recently developed chromosome imaging method in which each chromosome is labelled with 5 fluors (dyes) and a DNA stain. The classification problem is modelled as a 25-class 6-feature pixe...

Journal: :Journal of Japan Society of Hydrology and Water Resources 2002

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