Movie Recommendation System (MRS Prime)

Authors

  • Amit Ahirwar Department of Computer Science and Engineering, Tulsiramji Gaikwad Patil College of Engineering & Technology, Nagpur, India
  • Milyani Patil Department of Computer Science and Engineering, Tulsiramji Gaikwad Patil College of Engineering & Technology, Nagpur, India
  • Shantanu Dhote Department of Computer Science and Engineering, Tulsiramji Gaikwad Patil College of Engineering & Technology, Nagpur, India
  • Nitesh N. Gopnarayan Department of Computer Science and Engineering, Tulsiramji Gaikwad Patil College of Engineering & Technology, Nagpur, India
  • Khushbu Wase Department of Computer Science and Engineering, Tulsiramji Gaikwad Patil College of Engineering & Technology, Nagpur, India
  • Ritik Kumbhare Department of Computer Science and Engineering, Tulsiramji Gaikwad Patil College of Engineering & Technology, Nagpur, India

Keywords:

movie recommendation, rating, genre, recommender system, hybrid filtering

Abstract

Now-a-days, the recommendation system has made finding the things easy that we need. Movie recommendation systems aim at helping movie enthusiasts by suggesting what movie to watch without having to go through the long process of choosing from a large set of movies which go up to thousands and millions that is time consuming and confusing. In this article, our aim is to reduce the human effort by suggesting movies based on the user’s interests. To handle such problems, we introduced a model combining both content-based and collaborative approach. It will give progressively explicit outcomes compared to different systems that are based on content-based approach. Content-based recommendation systems are constrained to people; these systems don’t prescribe things out of the box, thus limiting your choice to explore more. Hence, we have focused on a system that resolves these issues.

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Published

15-05-2022

Issue

Section

Articles

How to Cite

[1]
A. Ahirwar, M. Patil, S. Dhote, N. N. Gopnarayan, K. Wase, and R. Kumbhare, “Movie Recommendation System (MRS Prime)”, IJRESM, vol. 5, no. 5, pp. 81–83, May 2022, Accessed: Dec. 21, 2024. [Online]. Available: https://journal.ijresm.com/index.php/ijresm/article/view/2036