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Effectiveness of Content-Based Image Clustering Algorithms
Details
To be able to retrieve a set of image documents, the images must be clustered according to semantic similarity. The image clusters are utilized by content-based image retrieval and querying systems that require effective query matching in large image databases. This book describes the clustering process, focusing on clustering algorithms and ways to measure the quality of the created clusters. Four common image clustering algorithms are evaluated: k-means clustering and three versions of hierarchical clustering, using average-linkage, complete-linkage, and Ward''s method. In the experimental section of the book, the algorithms are compared using two similarity measures: color-based similarity utilizing MPEG-7 color descriptors only, and total similarity as a weighted sum of features for both color, texture and shape. The experiments show average-linkage hierarchical clustering performing best according to both similarity measures. Notably, though, the addition of texture and shape features degraded the cluster quality of all the three hierarchical methods tested, but improved the quality of k-means clustering.
Autorentext
Mesfin Sileshi Ambaye: MSc. Senior Expert in Information Communication Technology projects. College instructor in Computer Science, Addis Ababa. Björn Gambäck: PhD. Professor in Language Technology at the Norwegian University of Science and Technology, Trondheim. Expert Researcher at Swedish Institute of Computer Science, Stockholm.
Weitere Informationen
- Allgemeine Informationen
- GTIN 09783639191752
- Sprache Englisch
- Größe H220mm x B220mm
- Jahr 2009
- EAN 9783639191752
- Format Kartonierter Einband (Kt)
- ISBN 978-3-639-19175-2
- Titel Effectiveness of Content-Based Image Clustering Algorithms
- Autor Mesfin Sileshi Ambaye
- Untertitel Measuring cluster quality
- Herausgeber VDM Verlag
- Anzahl Seiten 104
- Genre Informatik