2015
DOI: 10.1016/j.csl.2013.10.002
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Comparing the acoustic expression of emotion in the speaking and the singing voice

Abstract: We examine the similarities and differences in the expression of emotion in the singing and the speaking voice. Three internationally renowned opera singers produced "vocalises" (using a schwa vowel) and short nonsense phrases in different interpretations for 10 emotions. Acoustic analyses of emotional expression in the singing samples show significant differences between the emotions. In addition to the obvious effects of loudness and tempo, spectral balance and perturbation make significant contributions (hi… Show more

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Cited by 57 publications
(41 citation statements)
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References 27 publications
(41 reference statements)
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“…There are a few existing studies that deal with enthusiasm in karaoke singing [15,16], which is close to the emotional dimension of arousal, or target vocal tutoring systems [17]. Previous findings in [18] suggest that the expression of emotions in speaking and singing voice are related. Further, [12] concludes that similar methods and acoustic features can be used to automatically classify emotions in speech, polyphonic music, as well as emotions perceived by listeners in or associated by them with other, general sounds.…”
Section: Related Workmentioning
confidence: 99%
See 4 more Smart Citations
“…There are a few existing studies that deal with enthusiasm in karaoke singing [15,16], which is close to the emotional dimension of arousal, or target vocal tutoring systems [17]. Previous findings in [18] suggest that the expression of emotions in speaking and singing voice are related. Further, [12] concludes that similar methods and acoustic features can be used to automatically classify emotions in speech, polyphonic music, as well as emotions perceived by listeners in or associated by them with other, general sounds.…”
Section: Related Workmentioning
confidence: 99%
“…This suggests that the methods for speech emotion recognition can be transferred to singing emotion recognition. Therefore, this paper investigates the performance of state-of-theart speech emotion recognition methods on a data set of singing voice recordings and compares this to the performance of a newly designed acoustic feature set, which is based on findings in [18].…”
Section: Related Workmentioning
confidence: 99%
See 3 more Smart Citations