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https://dspace.iiti.ac.in/handle/123456789/9860
Title: | KNN based Novel Recommendation System for Mobile Edge Caching |
Authors: | Mishra, Sourab Bansal, Sparsh Krishnendu, S. G. Bhatia, Vimal |
Keywords: | Learning algorithms|Motion pictures|Backhaul networks|Cache management|Caching|Edge caching|Key feature|KNN|Network traffic|Recommende system.|User's preferences|Wireless systems|Recommender systems |
Issue Date: | 2021 |
Publisher: | Institute of Electrical and Electronics Engineers Inc. |
Citation: | Mishra, S., Bansal, S., Krishnendu, S., & Bhatia, V. (2021). KNN based novel recommendation system for mobile edge caching. Paper presented at the Proceedings of the 2021 IEEE 18th India Council International Conference, INDICON 2021, doi:10.1109/INDICON52576.2021.9691767 Retrieved from www.scopus.com |
Abstract: | Edge caching is a key feature in enabling a robust wireless system to reduce the backhaul network traffic. In this article, a novel cache management based on recommendation systems is developed based on user preference. By considering user's movie consumption, we use the user's rating of the movie to maintain the cache, so as to reduce backhaul network latency. A simple unsupervised KNN based algorithm has been proposed to predict the movie ratings in a edge caching system. A strategy is proposed to maintain data in a cache in such a way that maximizes the number of times data requested by the user is present in the cache. The proposed algorithm is compared with some baseline algorithms. The simulation results show our proposed algorithm has a gain of 30.7% average cache hit compared to the baseline algorithms and an improvement of 2.3% in delay. © 2021 IEEE. |
URI: | https://dspace.iiti.ac.in/handle/123456789/9860 https://doi.org/10.1109/INDICON52576.2021.9691767 |
ISBN: | 978-1665441759 |
Type of Material: | Conference Paper |
Appears in Collections: | Department of Electrical Engineering |
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