Analysis and Design of a Personalized Recommendation System Based on a Dynamic User Interest Model

October 13, 2024 Β· Declared Dead Β· πŸ› Advances in Computer Signals and Systems

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Authors Chunyan Mao, Shuaishuai Huang, Mingxiu Sui, Haowei Yang, Xueshe Wang arXiv ID 2410.09923 Category cs.IR: Information Retrieval Cross-listed cs.AI Citations 9 Venue Advances in Computer Signals and Systems Last Checked 4 months ago
Abstract
With the rapid development of the internet and the explosion of information, providing users with accurate personalized recommendations has become an important research topic. This paper designs and analyzes a personalized recommendation system based on a dynamic user interest model. The system captures user behavior data, constructs a dynamic user interest model, and combines multiple recommendation algorithms to provide personalized content to users. The research results show that this system significantly improves recommendation accuracy and user satisfaction. This paper discusses the system's architecture design, algorithm implementation, and experimental results in detail and explores future research directions.
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