In this work, growth-rate curves of the 2 f(1)-f(2) distortion product otoacoustic emission (DPOAE) are analyzed in a population of 30 noise exposed subjects, including both normal-hearing and hearing impaired subjects. A particular embedded limit-cycle oscillator equation is used to model the cochlear resonant response at the cochlear places of the primary and secondary tone frequencies (f(2) and 2 f(1)-f(2)). The parameters of the oscillator equation can be directly interpreted in terms of effectiveness of the cochlear feedback mechanisms associated with the active filter amplification. A two-sources paradigm is included in the model, in agreement with experimental evidence and with the assumptions of more detailed full cochlear models based on the transmission line formalism. According to this paradigm, DPOAEs are nonlinearly generated at the cochlear place that is resonant at frequency f(2), and coherently reflected at the 2 f(1)-f(2) place. The analysis shows that the model, which had been previously used to describe the relaxation dynamics of transient evoked otoacoustic emissions (TEOAEs), also correctly predicts the observed growth rate of the DPOAE response as a function of the primary tones amplitude. A significant difference is observed between normal and impaired ears. The comparison between the growth rate curves at different frequencies provides information about the dependence of cochlear tuning on frequency. (C) 2004 Acoustical Society of America.

Sisto, R., Moleti, A. (2004). Modeling the growth rate of distortion product otoacoustic emissions by active nonlinear oscillators. THE JOURNAL OF THE ACOUSTICAL SOCIETY OF AMERICA, 116(3), 1632-1638 [10.1121/1.1775278].

Modeling the growth rate of distortion product otoacoustic emissions by active nonlinear oscillators

MOLETI, ARTURO
2004-01-01

Abstract

In this work, growth-rate curves of the 2 f(1)-f(2) distortion product otoacoustic emission (DPOAE) are analyzed in a population of 30 noise exposed subjects, including both normal-hearing and hearing impaired subjects. A particular embedded limit-cycle oscillator equation is used to model the cochlear resonant response at the cochlear places of the primary and secondary tone frequencies (f(2) and 2 f(1)-f(2)). The parameters of the oscillator equation can be directly interpreted in terms of effectiveness of the cochlear feedback mechanisms associated with the active filter amplification. A two-sources paradigm is included in the model, in agreement with experimental evidence and with the assumptions of more detailed full cochlear models based on the transmission line formalism. According to this paradigm, DPOAEs are nonlinearly generated at the cochlear place that is resonant at frequency f(2), and coherently reflected at the 2 f(1)-f(2) place. The analysis shows that the model, which had been previously used to describe the relaxation dynamics of transient evoked otoacoustic emissions (TEOAEs), also correctly predicts the observed growth rate of the DPOAE response as a function of the primary tones amplitude. A significant difference is observed between normal and impaired ears. The comparison between the growth rate curves at different frequencies provides information about the dependence of cochlear tuning on frequency. (C) 2004 Acoustical Society of America.
2004
Pubblicato
Rilevanza internazionale
Articolo
Sì, ma tipo non specificato
Settore FIS/07 - FISICA APPLICATA (A BENI CULTURALI, AMBIENTALI, BIOLOGIA E MEDICINA)
English
Con Impact Factor ISI
Acoustic fields; Acoustic noise; Computer simulation; Natural frequencies; Tuning; Distortion product; Growth rates; Otoacoustic emission; Acoustic emissions; adult; article; clinical article; cochlea; controlled study; distortion product otoacoustic emission; evoked otoacoustic emission; feedback system; growth rate; hearing; hearing impairment; human; male; mathematical analysis; noise; nonlinear system; oscillator; priority journal; Adult; Hearing Loss, Noise-Induced; Humans; Male; Models, Biological; Noise; Occupational Diseases; Otoacoustic Emissions, Spontaneous
Sisto, R., Moleti, A. (2004). Modeling the growth rate of distortion product otoacoustic emissions by active nonlinear oscillators. THE JOURNAL OF THE ACOUSTICAL SOCIETY OF AMERICA, 116(3), 1632-1638 [10.1121/1.1775278].
Sisto, R; Moleti, A
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/2108/31306
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