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Optimizing the diagnostic power of o...
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Moleti, Arturo.
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Optimizing the diagnostic power of otoacoustic emissions using theoretical cochlear mechanics
Record Type:
Electronic resources : Monograph/item
Title/Author:
Optimizing the diagnostic power of otoacoustic emissions using theoretical cochlear mechanics/ by Arturo Moleti, Renata Sisto.
Author:
Moleti, Arturo.
other author:
Sisto, Renata.
Published:
Cham :Springer Nature Switzerland : : 2025.,
Description:
xvi, 182 p. :ill. (some col.), digital ;24 cm.
[NT 15003449]:
1 Hearing function and hearing physiology -- 2 Phenomenology of hearing -- 3 Mathematical models of the physiology of hearing -- 4 Generation of otoacoustic emissions -- 5 Measurement of otoacoustic emissions -- 6 Otoacoustic emission signal analysis -- 7 Diagnostic use of otoacoustic emissions.
Contained By:
Springer Nature eBook
Subject:
Otoacoustic emissions. -
Online resource:
https://doi.org/10.1007/978-3-031-90514-8
ISBN:
9783031905148
Optimizing the diagnostic power of otoacoustic emissions using theoretical cochlear mechanics
Moleti, Arturo.
Optimizing the diagnostic power of otoacoustic emissions using theoretical cochlear mechanics
[electronic resource] /by Arturo Moleti, Renata Sisto. - Cham :Springer Nature Switzerland :2025. - xvi, 182 p. :ill. (some col.), digital ;24 cm. - Springer-AAS acoustics series,2948-2070. - Springer-AAS acoustics series..
1 Hearing function and hearing physiology -- 2 Phenomenology of hearing -- 3 Mathematical models of the physiology of hearing -- 4 Generation of otoacoustic emissions -- 5 Measurement of otoacoustic emissions -- 6 Otoacoustic emission signal analysis -- 7 Diagnostic use of otoacoustic emissions.
This book examines the diagnostic usefulness of otoacoustic emissions (OAEs) in the context of theoretical cochlear mechanics. OAEs have proven to be immensely useful for diagnostic purposes. The phenomenology of hearing physiology, and OAEs in particular, is briefly summarized, providing the necessary references to the literature. State-of-the-art linear and nonlinear mathematical models of the cochlea are discussed, using fundamental concepts of fluid dynamics and mechanics of vibrating systems, often exploiting the formal analogy between mechanical and electric linear systems. In particular, it is explained how the theoretical predictions about the OAE level, phase, and nonlinear I/O functions allow one to design advanced acquisition and analysis tools that significantly improve the specificity and sensitivity of OAEs to hearing dysfunction and other important physiological effects. Examples of diagnostic applications of OAEs in audiology, neurology, and space physiology are discussed, with all of the information needed to develop an OAE experiment provided, from instrument and acquisition setup to signal analysis and theoretical interpretation. The book is targeted at graduate students and researchers in hearing science with at least a basic knowledge of classical physics, calculus, Fourier analysis and signal analysis.
ISBN: 9783031905148
Standard No.: 10.1007/978-3-031-90514-8doiSubjects--Topical Terms:
3790460
Otoacoustic emissions.
LC Class. No.: RF294.5.O76
Dewey Class. No.: 617.8075
Optimizing the diagnostic power of otoacoustic emissions using theoretical cochlear mechanics
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1 Hearing function and hearing physiology -- 2 Phenomenology of hearing -- 3 Mathematical models of the physiology of hearing -- 4 Generation of otoacoustic emissions -- 5 Measurement of otoacoustic emissions -- 6 Otoacoustic emission signal analysis -- 7 Diagnostic use of otoacoustic emissions.
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This book examines the diagnostic usefulness of otoacoustic emissions (OAEs) in the context of theoretical cochlear mechanics. OAEs have proven to be immensely useful for diagnostic purposes. The phenomenology of hearing physiology, and OAEs in particular, is briefly summarized, providing the necessary references to the literature. State-of-the-art linear and nonlinear mathematical models of the cochlea are discussed, using fundamental concepts of fluid dynamics and mechanics of vibrating systems, often exploiting the formal analogy between mechanical and electric linear systems. In particular, it is explained how the theoretical predictions about the OAE level, phase, and nonlinear I/O functions allow one to design advanced acquisition and analysis tools that significantly improve the specificity and sensitivity of OAEs to hearing dysfunction and other important physiological effects. Examples of diagnostic applications of OAEs in audiology, neurology, and space physiology are discussed, with all of the information needed to develop an OAE experiment provided, from instrument and acquisition setup to signal analysis and theoretical interpretation. The book is targeted at graduate students and researchers in hearing science with at least a basic knowledge of classical physics, calculus, Fourier analysis and signal analysis.
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