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Authors: Parvesh Kumar and Siri Krishan Wasan

Affiliation: Jamia Milia Islamia, India

Keyword(s): Data mining, Clustering, k-means, PAM.

Related Ontology Subjects/Areas/Topics: Business Analytics ; Communication and Software Technologies and Architectures ; Data Engineering ; Data Warehouses and Data Mining ; e-Business ; Enterprise Information Systems

Abstract: Data mining is a search for relationship and patterns that exist in large database. Clustering is an important datamining technique . Because of the complexity and the high dimensionality of gene expression data, classification of a disease samples remains a challenge. Hierarchical clustering and partitioning clustering is used to identify patterns of gene expression useful for classification of samples. In this paper, we make a comparative study of two partitioning methods namely k-means and PAM to classify the cancer dataset.

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Paper citation in several formats:
Kumar, P. and Krishan Wasan, S. (2008). COMPARISION OF K-MEANS AND PAM ALGORITHMS USING CANCER DATASETS. In Proceedings of the Third International Conference on Software and Data Technologies - Volume 2: ICSOFT; ISBN 978-989-8111-53-1; ISSN 2184-2833, SciTePress, pages 255-258. DOI: 10.5220/0001868602550258

@conference{icsoft08,
author={Parvesh Kumar. and Siri {Krishan Wasan}.},
title={COMPARISION OF K-MEANS AND PAM ALGORITHMS USING CANCER DATASETS},
booktitle={Proceedings of the Third International Conference on Software and Data Technologies - Volume 2: ICSOFT},
year={2008},
pages={255-258},
publisher={SciTePress},
organization={INSTICC},
doi={10.5220/0001868602550258},
isbn={978-989-8111-53-1},
issn={2184-2833},
}

TY - CONF

JO - Proceedings of the Third International Conference on Software and Data Technologies - Volume 2: ICSOFT
TI - COMPARISION OF K-MEANS AND PAM ALGORITHMS USING CANCER DATASETS
SN - 978-989-8111-53-1
IS - 2184-2833
AU - Kumar, P.
AU - Krishan Wasan, S.
PY - 2008
SP - 255
EP - 258
DO - 10.5220/0001868602550258
PB - SciTePress