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Analyzing the Perceptual Salience of Audio Features for Musical Emotion Recognition

机译:分析音乐情绪识别音频特征的感知显着性

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While the organization of music in terms of emotional affect is a natural process for humans, quantifying it empirically proves to be a very difficult task. Consequently, no acoustic feature (or combination thereof) has emerged as the optimal representation for musical emotion recognition. Due to the subjective nature of emotion, determining whether an acoustic feature domain is informative requires evaluation by human subjects. In this work, we seek to perceptually evaluate two of the most commonly used features in music information retrieval: mel-frequency cepstral coefficients and chroma. Furthermore, to identify emotion-informative feature domains, we explore which musical features are most relevant in determining emotion perceptually, and which acoustic feature domains are most variant or invariant to those changes. Finally, given our collected perceptual data, we conduct an extensive computational experiment for emotion prediction accuracy on a large number of acoustic feature domains, investigating pairwise prediction both in the context of a general corpus as well as in the context of a corpus that is constrained to contain only specific musical feature transformations.
机译:虽然音乐组织在情绪影响方面是人类的自然过程,但量化它经验证明是一项非常艰巨的任务。因此,没有声学特征(或其组合)被出现为音乐情绪识别的最佳表示。由于情绪的主观性质,确定声学特征域是否提供信息,需要通过人类受试者进行评估。在这项工作中,我们寻求感知音乐信息检索中的两个最常用的特征:熔融频率谱系数和色度。此外,为了识别情感信息域,我们探讨了在感知上确定情绪中最相关的音乐特征,以及哪些声学特征域是最变体或不变的变化。最后,由于我们收集感知数据,我们对大量的声学特征域进行了情感预测精度广泛的计算实验,调查成对预测都在一般性语料库的背景下,以及在被限制的语料库的情况下仅包含特定的音乐功能转换。

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