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A New Multilabel System for Automatic Music Emotion Recognition

机译:一种新的自动音乐情感认可系统

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Achieving advancements in automatic recognition of emotions that music can induce require considering multiplicity and simultaneity of emotions. Comparison of different machine learning algorithms performing multilabel and multiclass classification is the core of our work. The study analyzes the implementation of the Geneva Emotional Music Scale 9 in the Emotify music dataset and investigate its adoption from a machine-learning perspective. We approach the scenario of emotions expression/induction through music as a multilabel and multiclass problem, where multiple emotion labels can be adopted for the same music track by each annotator (multilabel), and each emotion can be identified or not in the music (multiclass). The aim is the automatic recognition of induced emotions through music.
机译:在自动识别音乐可以诱导的情况下实现促进的进步,考虑到情绪的多重和同时性。 不同机器学习算法的比较执行Multilabel和多字母分类是我们工作的核心。 该研究分析了在情感音乐数据集中的日内瓦情绪音符9的实施,并调查了从机器学习的角度的采用。 我们通过音乐作为一个多歹徒和多字符问题来接近情绪表达/诱导的情景,其中每个注释器(Multilabel)可以采用多种情感标签,并且可以在音乐中识别或者每个情绪 )。 目的是通过音乐自动识别诱导的情绪。

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