Prototype-based Models for the Supervised Learning of Classification Schemes

Biehl M, Hammer B, Villmann T (2016)
Proceedings of the International Astronomical Union 12(S325): 129-138.

Zeitschriftenaufsatz | Veröffentlicht | Englisch
 
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Autor*in
Biehl, Michael; Hammer, BarbaraUniBi ; Villmann, Thomas
Abstract / Bemerkung
An introduction is given to the use of prototype-based models in supervised machine learning. The main concept of the framework is to represent previously observed data in terms of so-called prototypes, which reflect typical properties of the data. Together with a suitable, discriminative distance or dissimilarity measure, prototypes can be used for the classification of complex, possibly high-dimensional data. We illustrate the framework in terms of the popular Learning Vector Quantization (LVQ). Most frequently, standard Euclidean distance is employed as a distance measure. We discuss how LVQ can be equipped with more general dissimilarites. Moreover, we introduce relevance learning as a tool for the data-driven optimization of parameterized distances.
Erscheinungsjahr
2016
Zeitschriftentitel
Proceedings of the International Astronomical Union
Band
12
Ausgabe
S325
Seite(n)
129-138
ISSN
1743-9213
eISSN
1743-9221
Page URI
https://pub.uni-bielefeld.de/record/2982097

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Biehl M, Hammer B, Villmann T. Prototype-based Models for the Supervised Learning of Classification Schemes. Proceedings of the International Astronomical Union. 2016;12(S325):129-138.
Biehl, M., Hammer, B., & Villmann, T. (2016). Prototype-based Models for the Supervised Learning of Classification Schemes. Proceedings of the International Astronomical Union, 12(S325), 129-138. https://doi.org/10.1017/S1743921316012928
Biehl, Michael, Hammer, Barbara, and Villmann, Thomas. 2016. “Prototype-based Models for the Supervised Learning of Classification Schemes”. Proceedings of the International Astronomical Union 12 (S325): 129-138.
Biehl, M., Hammer, B., and Villmann, T. (2016). Prototype-based Models for the Supervised Learning of Classification Schemes. Proceedings of the International Astronomical Union 12, 129-138.
Biehl, M., Hammer, B., & Villmann, T., 2016. Prototype-based Models for the Supervised Learning of Classification Schemes. Proceedings of the International Astronomical Union, 12(S325), p 129-138.
M. Biehl, B. Hammer, and T. Villmann, “Prototype-based Models for the Supervised Learning of Classification Schemes”, Proceedings of the International Astronomical Union, vol. 12, 2016, pp. 129-138.
Biehl, M., Hammer, B., Villmann, T.: Prototype-based Models for the Supervised Learning of Classification Schemes. Proceedings of the International Astronomical Union. 12, 129-138 (2016).
Biehl, Michael, Hammer, Barbara, and Villmann, Thomas. “Prototype-based Models for the Supervised Learning of Classification Schemes”. Proceedings of the International Astronomical Union 12.S325 (2016): 129-138.
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