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Double Fourier analysis for Emotion Identification in Voiced Speech
Author(s) -
Daniel Sierra-Sosa,
Manuela Bastidas,
David Ortiz-Puerta,
Olga Lucía Quintero Montoya
Publication year - 2016
Publication title -
journal of physics conference series
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.21
H-Index - 85
eISSN - 1742-6596
pISSN - 1742-6588
DOI - 10.1088/1742-6596/705/1/012035
Subject(s) - spectrogram , short time fourier transform , fourier transform , speech recognition , fourier analysis , spectral density , signal (programming language) , computer science , acoustics , spectral density estimation , time–frequency analysis , artificial intelligence , mathematics , physics , computer vision , telecommunications , filter (signal processing) , mathematical analysis , programming language
We propose a novel analysis alternative, based on two Fourier Transforms for emotion recognition from speech -- Fourier analysis allows for display and synthesizes different signals, in terms of power spectral density distributions -- A spectrogram of the voice signal is obtained performing a short time Fourier Transform with Gaussian windows, this spectrogram portraits frequency related features, such as vocal tract resonances and quasi-periodic excitations during voiced sounds -- Emotions induce such characteristics in speech, which become apparent in spectrogram time-frequency distributions -- Later, the signal time-frequency representation from spectrogram is considered an image, and processed through a 2-dimensional Fourier Transform in order to perform the spatial Fourier analysis from it -- Finally features related with emotions in voiced speech are extracted and presented20th Argentinean Bioengineering Society Congress, SABI 2015 (XX Congreso Argentino de Bioingeniería y IX Jornadas de Ingeniería Clínica)28–30 October 2015, San Nicolás de los Arroyos, Argentin

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