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A methodology to identify consensus classes from clustering algorithms applied to immunohistochemical data from breast cancer patients

Articolo
Data di Pubblicazione:
2010
Citazione:
A methodology to identify consensus classes from clustering algorithms applied to immunohistochemical data from breast cancer patients / D. Soria, J.M. Garibaldi, F. Ambrogi, A.R. Green, D. Powe, E. Rakha, R.D. Macmillan, R.W. Blamey, G. Ball, P.J. Lisboa, T.A. Etchells, P. Boracchi, E. Biganzoli, I.O. Ellis. - In: COMPUTERS IN BIOLOGY AND MEDICINE. - ISSN 0010-4825. - 40:3(2010), pp. 318-330. [10.1016/j.compbiomed.2010.01.003]
Abstract:
Single clustering methods have often been used to elucidate clusters in high dimensional medical data, even though reliance on a single algorithm is known to be problematic. In this paper, we present a methodology to determine a set of 'core classes' by using a range of techniques to reach consensus across several different clustering algorithms, and to ascertain the key characteristics of these classes. We apply the methodology to immunohistochemical data from breast cancer patients. In doing so, we identify six core classes, of which several may be novel sub-groups not previously emphasised in literature.
Tipologia IRIS:
01 - Articolo su periodico
Keywords:
Breast cancer; Clustering methods; Consensus clustering; Molecular classification; Validity indices
Elenco autori:
D. Soria, J.M. Garibaldi, F. Ambrogi, A.R. Green, D. Powe, E. Rakha, R.D. Macmillan, R.W. Blamey, G. Ball, P.J. Lisboa, T.A. Etchells, P. Boracchi, E. Biganzoli, I.O. Ellis
Autori di Ateneo:
AMBROGI FEDERICO ( autore )
BIGANZOLI ELIA ( autore )
BORACCHI PATRIZIA ( autore )
Link alla scheda completa:
https://air.unimi.it/handle/2434/147349
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Settore INF/01 - Informatica

Settore MED/01 - Statistica Medica
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