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  1. Clustering Based Algorithms in Recommendation System

    Jun 19, 2024 · In recommendation systems, clustering is used to segment users or items into distinct groups based on their behaviour, preferences, or characteristics. Here's a step-by-step …

  2. [2109.12839] Review of Clustering-Based Recommender Systems

    Sep 27, 2021 · Using clustering can address several known issues in recommendation systems, including increasing the diversity, consistency, and reliability of recommendations; the data …

  3. Review of Clustering-Based Recommender Systems

    Sep 28, 2021 · Using clustering can address several known issues in recommendation systems, including increasing the diversity, consistency, and reliability of recommendations; the data …

  4. Using Clustering Algorithms for Enhanced Recommendation

    By grouping similar data points into clusters, companies can enhance the accuracy of their recommendations and better meet customer needs. This article will delve into clustering …

  5. Clustering-based recommender system using principles of …

    In this paper, we present a Recommender System based on data clustering techniques to deal with the scalability problem associated with the recommendation task. We use different voting …

  6. A study on a recommendation algorithm based on spectral clustering

    Feb 16, 2024 · This paper proposes a recommendation system optimization method based on Spectral Clustering (SC) and Gated Recurrent Unit (GRU), namely the GRU-KSC algorithm. …

  7. Design and Implementation of a Product Recommendation System

    Jan 1, 2023 · They suggest customer products purchase by investigating users' click patterns. The focus of this paper is to design and implement a hybrid-based recommendation system …

  8. Clustering Based Algorithms in Recommendation System

    Feb 5, 2023 · In recommendation systems, clustering algorithms can be used to group similar users together based on their preferences and behaviors. This information can then be used to …

  9. In this paper, we propose CoCl, a novel Context Clustering-based recommender system. We introduce two approaches which utilize the contextual information and KMeans clustering algo …

  10. Using clustering can address several known issues in recommendation systems, including increasing the diversity, consistency, and reliability of recommendations; the data sparsity of …

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