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  5. Classification using distance nearest neighbours
 
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Classification using distance nearest neighbours

Author(s)
Friel, Nial  
Pettitt, Anthony  
Uri
http://hdl.handle.net/10197/2456
Date Issued
2010
Date Available
2010-09-03T14:04:50Z
Abstract
This paper proposes a new probabilistic classification algorithm using a Markov random field approach. The joint distribution of class labels is explicitly modelled using the distances between feature vectors. Intuitively, a class label should depend more on class labels which are
closer in the feature space, than those which are further away. Our approach builds on previous work by Holmes and Adams (2002, 2003) and Cucala et al. (2009). Our work shares many of the advantages of these approaches in providing a probabilistic basis for the statistical inference. In comparison to previous work, we present
a more efficient computational algorithm to overcome the intractability of the Markov random field model. The results of our algorithm are encouraging in comparison to the k-nearest neighbour algorithm.
Sponsorship
Science Foundation Ireland
Type of Material
Journal Article
Publisher
Springer
Journal
Statistics and Computing
Volume
21
Issue
3
Start Page
431
End Page
437
Copyright (Published Version)
Springer, 2010
Subjects

Classification

Markov chain Monte Ca...

Subject – LCSH
Classification
Monte Carlo method
Nearest neighbor analysis (Statistics)
DOI
10.1007/s11222-010-9179-y
Web versions
The final publication is available at springerlink.com
http://dx.doi.org/10.1007/s11222-010-9179-y
Language
English
Status of Item
Peer reviewed
ISSN
0960-3174 (Print)
1573-1375 (Online)
This item is made available under a Creative Commons License
https://creativecommons.org/licenses/by-nc-sa/1.0/
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c82a77ac164d37e822265a5b06135383

Owning collection
Mathematics and Statistics Research Collection

Item descriptive metadata is released under a CC-0 (public domain) license: https://creativecommons.org/public-domain/cc0/.
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