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Evaluation of Clustering Techniques for News Recommendation
Details
The information overloading is one of the most significant issues nowadays. It can be seen in different domains, consisting of business, particularly in news. This is more important in link to news websites and web, where the news websites reliability is typically determined by quantity of news added to the portal. Then the most popular news websites include numerous of news articles daily. The classical solution generally used to address the information overloading is a recommendation. In this book we evaluate the MapReduce k-means and fuzzy k-means clustering for a content-based recommendation for news articles, based on Euclidian distance and cosine similarity search. This approach consists of two phases of operation.
Autorentext
Ranjith Kumar Gatla is working as an Associate Professor in the CSE (Data Science) Department at the Institute of Aeronautical Engineering, Hyderabad.Anitha Gatla is working as an Assistant Professor in the Information Technology Department at the Institute of Aeronautical Engineering, Hyderabad.
Weitere Informationen
- Allgemeine Informationen
- GTIN 09786208442439
- Herausgeber LAP LAMBERT Academic Publishing
- Anzahl Seiten 60
- Genre IT Encyclopedias
- Gewicht 107g
- Untertitel DE
- Größe H220mm x B150mm x T4mm
- Jahr 2025
- EAN 9786208442439
- Format Kartonierter Einband
- ISBN 6208442435
- Veröffentlichung 16.04.2025
- Titel Evaluation of Clustering Techniques for News Recommendation
- Autor Ranjith Kumar Gatla , Anitha Gatla
- Sprache Englisch