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- W2771864488 abstract "Music emotions recognition (MER) is a challenging field of studies addressed in multiple disciplines such as musicology, cognitive science, physiology, psychology, arts and affective computing. In this article, music emotions are classified into four types known as those of pleasing, angry, sad and relaxing. MER is formulated as a classification problem in cognitive computing where 548 dimensions of music features are extracted and modeled. A set of classifications and machine learning algorithms are explored and comparatively studied for MER, which includes Support Vector Machine (SVM), k-Nearest Neighbors (KNN), Neuro-Fuzzy Networks Classification (NFNC), Fuzzy KNN (FKNN), Bayes classifier and Linear Discriminant Analysis (LDA). Experimental results show that the SVM, FKNN and LDA algorithms are the most effective methodologies that obtain more than 80% accuracy for MER." @default.
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- W2771864488 date "2017-10-01" @default.
- W2771864488 modified "2023-09-23" @default.
- W2771864488 title "Music Emotions Recognition by Machine Learning With Cognitive Classification Methodologies" @default.
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- W2771864488 doi "https://doi.org/10.4018/ijcini.2017100105" @default.
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