Prototype-Based Classification of Dissimilarity Data

Hammer B, Mokbel B, Schleif F-M, Zhu X (2011)
In: Advances in Intelligent Data Analysis X. Gama J, Bradley E, Hollmén J (Eds); Lecture Notes in Computer Science. Berlin, Heidelberg: Springer Berlin Heidelberg: 185-197.

Sammelwerksbeitrag | Veröffentlicht | Englisch
 
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Herausgeber*in
Gama, João; Bradley, Elizabeth; Hollmén, Jaakko
Abstract / Bemerkung
Unlike many black-box algorithms in machine learning, prototype-based models offer an intuitive interface to given data sets, since prototypes can directly be inspected by experts in the field. Most techniques rely on Euclidean vectors such that their suitability for complex scenarios is limited. Recently, several unsupervised approaches have successfully been extended to general, possibly non-Euclidean data characterized by pairwise dissimilarities. In this paper, we shortly review a general approach to extend unsupervised prototype-based techniques to dissimilarities, and we transfer this approach to supervised prototype-based classification for general dissimilarity data. In particular, a new supervised prototype-based classification technique for dissimilarity data is proposed.
Erscheinungsjahr
2011
Buchtitel
Advances in Intelligent Data Analysis X
Serientitel
Lecture Notes in Computer Science
Seite(n)
185-197
ISBN
978-3-642-24799-6
eISBN
978-3-642-24800-9
ISSN
0302-9743
eISSN
1611-3349
Page URI
https://pub.uni-bielefeld.de/record/2982111

Zitieren

Hammer B, Mokbel B, Schleif F-M, Zhu X. Prototype-Based Classification of Dissimilarity Data. In: Gama J, Bradley E, Hollmén J, eds. Advances in Intelligent Data Analysis X. Lecture Notes in Computer Science. Berlin, Heidelberg: Springer Berlin Heidelberg; 2011: 185-197.
Hammer, B., Mokbel, B., Schleif, F. - M., & Zhu, X. (2011). Prototype-Based Classification of Dissimilarity Data. In J. Gama, E. Bradley, & J. Hollmén (Eds.), Lecture Notes in Computer Science. Advances in Intelligent Data Analysis X (pp. 185-197). Berlin, Heidelberg: Springer Berlin Heidelberg. https://doi.org/10.1007/978-3-642-24800-9_19
Hammer, Barbara, Mokbel, Bassam, Schleif, Frank-Michael, and Zhu, Xibin. 2011. “Prototype-Based Classification of Dissimilarity Data”. In Advances in Intelligent Data Analysis X, ed. João Gama, Elizabeth Bradley, and Jaakko Hollmén, 185-197. Lecture Notes in Computer Science. Berlin, Heidelberg: Springer Berlin Heidelberg.
Hammer, B., Mokbel, B., Schleif, F. - M., and Zhu, X. (2011). “Prototype-Based Classification of Dissimilarity Data” in Advances in Intelligent Data Analysis X, Gama, J., Bradley, E., and Hollmén, J. eds. Lecture Notes in Computer Science (Berlin, Heidelberg: Springer Berlin Heidelberg), 185-197.
Hammer, B., et al., 2011. Prototype-Based Classification of Dissimilarity Data. In J. Gama, E. Bradley, & J. Hollmén, eds. Advances in Intelligent Data Analysis X. Lecture Notes in Computer Science. Berlin, Heidelberg: Springer Berlin Heidelberg, pp. 185-197.
B. Hammer, et al., “Prototype-Based Classification of Dissimilarity Data”, Advances in Intelligent Data Analysis X, J. Gama, E. Bradley, and J. Hollmén, eds., Lecture Notes in Computer Science, Berlin, Heidelberg: Springer Berlin Heidelberg, 2011, pp.185-197.
Hammer, B., Mokbel, B., Schleif, F.-M., Zhu, X.: Prototype-Based Classification of Dissimilarity Data. In: Gama, J., Bradley, E., and Hollmén, J. (eds.) Advances in Intelligent Data Analysis X. Lecture Notes in Computer Science. p. 185-197. Springer Berlin Heidelberg, Berlin, Heidelberg (2011).
Hammer, Barbara, Mokbel, Bassam, Schleif, Frank-Michael, and Zhu, Xibin. “Prototype-Based Classification of Dissimilarity Data”. Advances in Intelligent Data Analysis X. Ed. João Gama, Elizabeth Bradley, and Jaakko Hollmén. Berlin, Heidelberg: Springer Berlin Heidelberg, 2011. Lecture Notes in Computer Science. 185-197.
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