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Restaurant Recommendation System Based on User Ratings with Collaborative Filtering
Author(s) -
Achmad Arif Munaji,
Andi Wahju Rahardjo Emanuel
Publication year - 2021
Publication title -
iop conference series materials science and engineering
Language(s) - English
Resource type - Journals
eISSN - 1757-899X
pISSN - 1757-8981
DOI - 10.1088/1757-899x/1077/1/012026
Subject(s) - collaborative filtering , recommender system , pearson product moment correlation coefficient , computer science , similarity (geometry) , product (mathematics) , information retrieval , function (biology) , data mining , artificial intelligence , statistics , mathematics , image (mathematics) , geometry , evolutionary biology , biology
Recommendation systems are widely used as a reference in marketing products or businesses. The number of choices given sometimes makes a person confused in making choices. The recommendation system provides a solution in overcoming this. Collaborative filtering is a fairly popular algorithm used in recommendation systems that are based on references and information obtained from users. User rating is a variable that is widely used as a reference in establishing a recommendation system. User rating can influence other users in making their choice of the same product. The purpose of this study is to conduct an experiment in the application of a collaborative filtering algorithm and use the Pearson correlation function as a method used to see the level of user similarity in making a restaurant recommendation system. The methods used in this research are: (1) datasets preparation, (2) datasets filtering, (3) collaborative filtering, (4) pearson correlation, (5) recommendations, and (6) evaluation. Collaborative filtering combined with the Pearson correlation produces recommendations that are suitable for users based on characteristics or the same level of interest between users, making it easier for users to make choices. This is also indicated by a small error rate based on the RMSE results.

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