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Discovering Clusters of Arbitrary Shapes and Densities in Data Streams
Details
The huge size of a continuously flowing data has put forward a number of challenges in data stream analysis. Exploration of the structure of streamed data represented a major challenge that resulted in introducing various clustering algorithms. However, current clustering algorithms still lack the ability to efficiently discover clusters of arbitrary densities in data streams. In this thesis, a new grid-based and density-based algorithm is proposed for clustering data streams. It addresses drawbacks of recent algorithms in discovering clusters of arbitrary densities. The algorithm uses an online component to map the input data to grid cells. An offline component is then used to cluster the grid cells based on density information. Relative density relatedness measures and a dynamic range neighborhood are proposed to differentiate clusters of arbitrary densities. The experimental evaluation shows considerable improvements upon the state-of-the-art algorithms in both clustering quality and scalability with different stream sizes and with higher dimensions. In addition, the output quality of the proposed algorithm is less sensitive to parameter selection errors.
Autorentext
Amr Magdy has finished his M.Sc. degree in Computer and System Engineering in Alexandria University, Egypt under supervision of Prof. Dr. Nagwa M. El-Makky and Assistant Prof. Noha A. Yousri. Their research interests includes Data Mining, Data Streams Management Systems, Machine Intelligence, Recommendation Systems and related areas.
Weitere Informationen
- Allgemeine Informationen
- GTIN 09783846524343
- Sprache Englisch
- Auflage Aufl.
- Größe H220mm x B150mm x T8mm
- Jahr 2011
- EAN 9783846524343
- Format Kartonierter Einband
- ISBN 3846524344
- Veröffentlichung 03.11.2011
- Titel Discovering Clusters of Arbitrary Shapes and Densities in Data Streams
- Autor Amr Magdy , Nagwa M. El-Makky , Noha A. Yousri
- Untertitel A density-based and grid-based approach to discover clusters in data streams
- Gewicht 191g
- Herausgeber LAP LAMBERT Academic Publishing
- Anzahl Seiten 116
- Genre Informatik