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A personalized music recommender service based on Fuzzy Inference System

机译:基于模糊推理系统的个性化音乐推荐服务

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In this paper, we are proposing a personalized music recommender service based on Mamdani Fuzzy Interference System (M-FIS). Collection of playlist is used for gathering users' choice and mood while listening to songs. Similarity between audio files is calculated based on Mel Frequency Cepstral Coefficients (MFCC). We have developed a recommender model based on M-FIS with the aforementioned similarities and playlists. We were able to gain an acceptable accuracy rate using FIS compared to other method reported in literature.
机译:在本文中,我们提出了一种基于Mamdani模糊干扰系统(M-FIS)的个性化音乐推荐服务。播放列表的收集用于收集用户在听歌时的选择和心情。音频文件之间的相似度是根据梅尔频率倒谱系数(MFCC)计算的。我们已经基于M-FIS开发了带有上述相似性和播放列表的推荐器模型。与文献报道的其他方法相比,使用FIS能够获得可接受的准确率。

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