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A survey of deep learning-based movie recommendation systems

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[Fall2022] [CSE573] [Group Project] Semantic Web Mining

[Group:22][Project#4] - A Review of Deep Learning-Based Movie Recommendation Systems

Group Members

  • Chinmay Bhale
  • Truxten Cook
  • Kritshekhar Jha
  • Kumarage Tharindu Kumarage
  • Kyle Otstot
  • Paras Sheth

Problem Definition

  • Recommender systems have proven to be a successful method of reducing information overload in light of the increasing volume of online information.
  • In recent years, research on recommender systems and information retrieval has shown that deep learning has a wide-ranging impact. However, they still have issues when working with extremely sparse data or other problems like cold start
  • The purpose of this review paper is to provide a comprehensive and systematic analysis of current research projects on recommender systems based on deep learning
  • We will provide a detailed taxonomy along with summaries for state-of-the-art algorithms.
  • We also plan to provide a perspective on the future trends and research challenges of deep learning in recommender systems

Reviewed SOTA's

Project Plan: Tasks, Deadlines, Division of Work

# Task Description Task Owner Deadline Status
1 Background Study & Literature Survey Everyone 25-Oct Completed
2 Project Proposal Everyone 12-Oct Completed
3 Brainstorm the taxonomy for the survey Everyone 25-Oct Completed
4 Understanding of the selected SOTA for Supervised Learning Chinmay Bhale 25-Oct Completed
5 Implement the selected SOTA for Supervised Learning Chinmay Bhale 15-Nov Completed
6 Understanding of the selected SOTA for Supervised Learning Kritshekhar Jha 25-Oct Completed
7 Implement the selected SOTA for Supervised Learning Kritshekhar Jha 15-Nov Completed
8 Understanding of the selected SOTA for Self Supervised Learning Paras Sheth 25-Oct Completed
9 Implement the selected SOTA for Self Supervised Learning Paras Sheth 15-Nov Completed
10 Understanding of the selected SOTA for Semi Supervised Learning Tharindu Kumarage 25-Oct Completed
11 Implement the selected SOTA for Semi Supervised Learning Tharindu Kumarage 15-Nov Completed
12 Understanding of the selected SOTA for Unsupervised Learning Truxten Cook 25-Oct Completed
13 Implement the selected SOTA for Unsupervised Learning Truxten Cook 15-Nov Completed
14 Understanding of the selected SOTA for Unsupervised Learning Kyle Otsot 25-Oct Completed
15 Implement the selected SOTA for Unsupervised Learning Kyle Otsot 15-Nov Completed
16 Comparative analysis & discussion Everyone 20-Nov Completed
17 Project Presentation Everyone 14-Nov Completed
18 Group Demo Everyone 30-Nov Completed
19 Final Report Everyone 2-Dec Completed

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