基于实时情绪分析的音乐推荐系统

Binbin Zhai, Baihui Tang, Sanxing Cao
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引用次数: 1

摘要

随着越来越多的人喜欢听音乐,音乐与人的情感表达的关系越来越紧密,音乐推荐平台可以帮助热爱音乐的人从大量的音乐作品中筛选出符合人们心理需求的部分。传统的音乐推荐平台往往只依靠对音乐作品的简单分类和对用户历史上听过的音乐信息的处理,而不能根据用户实时情绪状态的变化来调整推荐的音乐类别,以满足用户不断变化的需求。为了满足这一需求,本文旨在设计一个基于实时情感分析的音乐推荐系统,让受众获得更满意的用户体验。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Music Recommendation System Based on Real-Time Emotion Analysis
As more and more people like listening to music, the relationship between music and people’s emotional expression becomes closer and closer, and the music recommendation platform can help those who love music to screen out the parts that can meet people’s psychological demands from a large number of music works. Traditional music recommendation platforms often only rely on the simple classification of music works and the processing of music information listened to by users in history, but they can not adjust the recommended music categories according to the changes of users’ real-time emotional state to meet the changing needs of users. To meet this demand, this paper aims to design a music recommendation system based on real-time emotional analysis, so that the audience can get a more satisfactory user experience.
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