Аннотация к книге "Hyperlink Recommender Systems Design. A Research Study on Tools and Techniques"
The information age is characterized by an overabundance of information but few tools to help users of information spaces get just the right information as they navigate these spaces. Current research thus aims to design tools like recommender systems to personalize the user experience in large information spaces. This book explores factors involved in hyperlink recommender systems design with a view to improving on them or proposing new solutions. The work makes the following contributions in...
The information age is characterized by an overabundance of information but few tools to help users of information spaces get just the right information as they navigate these spaces. Current research thus aims to design tools like recommender systems to personalize the user experience in large information spaces. This book explores factors involved in hyperlink recommender systems design with a view to improving on them or proposing new solutions. The work makes the following contributions in the area of data mining. Web Page Classification: a new classification metric is developed; Association rule mining: a new apriori algorithm is developed; Prediction model for user interests: methodology for extracting from web server logs, association rules that show correlations between user navigation patterns and interesting web pages, and transformation of the rules into collaborative filtering data, widely used in recommender systems; Clustering: a comparative study of the CLARANS, PAM, and CLARA algorithms in high dimensional space is presented. The work should therefore be of interest to anyone involved in personalization systems and data mining research.
Данное издание не является оригинальным. Книга печатается по технологии принт-он-деманд после получения заказа.
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