DocumentCode :
3725312
Title :
Recommender system with web usage mining based on fuzzy c means and neural networks
Author :
Hitesh Hasija;Deepak Chaurasia
Author_Institution :
Computer Science & Engineering, Delhi Technological University, India
fYear :
2015
Firstpage :
768
Lastpage :
772
Abstract :
To provide consumers with a choice of using a web content recommender system that generates personalized recommendations in a timely manner based on a model of their own habits and behaviors´. Initially, data cleaning is performed and then semantically enhanced web usage logs are prepared. Then, web access activities are identified according to periodic and resource attributes. Fuzzy c means clustering algorithm has been applied and based on support and confidence values, periodic pattern are obtained crossing a particular threshold. Drawbacks are then overcome by using neural networks based recommender systems, in order to provide recommendations for every possible case of periodic and resource attributes.
Keywords :
"Neurons","Neural networks","Recommender systems","Clustering algorithms","Data mining","Next generation networking"
Publisher :
ieee
Conference_Titel :
Next Generation Computing Technologies (NGCT), 2015 1st International Conference on
Type :
conf
DOI :
10.1109/NGCT.2015.7375224
Filename :
7375224
Link To Document :
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