Papers › A User's Guide to CARSKit

A User's Guide to CARSKit

12 Nov 2015arXiv:1511.03780links table onlyarchive 2025-07-28

Yong Zheng

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Context-aware recommender systems extend traditional recommenders by adapting their suggestions to users' contextual situations. CARSKit is a Java-based open-source library specifically designed for the context-aware recommendation, where the state-of-the-art context-aware recommendation algorithms have been implemented. This report provides the basic user's guide to CARSKit, including how to prepare the data set, how to configure the experimental settings, and how to evaluate the algorithms, as well as interpreting the outputs. The instructions in this guide are applicable for CARSKit v0.3.5 and above.

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irecsys/CARSKit officialmentioned in papermentioned on GitHubtf report
abnersuniga/CARSKit-pibic mentioned on GitHubtf report
boninggong/CARSKitModified mentioned on GitHub report
boninggong/Re-rankSystem mentioned on GitHub report
sihcpro/TravelRecommendation mentioned on GitHubtf report

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