Distortion product otoacoustic emissions (DPOAEs) are sounds generated by the cochlea in response to a stimulus that consists of two primary tones. DPOAEs consist of a mixture of emissions arising from two different mechanisms: nonlinear distortion and coherent reflection. Stimulus Frequency Otoacoustic Emissions (SFOAEs) are sounds generated by the cochlea in response to a pure tone; SFOAEs are commonly hypothesized to be generated due to coherent reflection. Nonlinearity of the outer hair cells (OHCs) provides nonlinear amplification to the traveling wave while reflections occur due to pre-existing micromechanical impedance perturbations. In this work, DPOAEs are obtained from a time domain computational model coupling a lumped parameter middle ear model with a multiphysics mechanical-electrical-acoustical model of cochlea. Cochlear roughness is intro-duced by perturbing the value of the OHC electromechanical coupling coefficient to account for the putative inhomogeneities inside the cochlea. The DPOAEs emitted in the ear canal are decomposed into distortion source and reflection source components. The reflection source component of DPOAEs is compared to SFOAEs obtained using a frequency-domain implementation of the model, to help us understand how distortion source and reflection source contributes to total DPOAEs. Moreover, the group delays of reflection sources OAEs are compared to group delays in the basilar membrane velocity to clarify the relationship between basilar membrane and OAE group delays.

1.
R.
Kalluri
and
C.A.
Shera
.
Distortion-product source unmixing: A test of the two-mechanism model for DPOAE generation
.
The Journal of the Acoustical Society of America
,
109
(
2
):
622
637
,
2001
.
2.
C.A.
Shera
and
J.J.
Guinan
 Jr
.
Stimulus-frequency-emission group delay: A test of coherent reflection filtering and a window on cochlear tuning
.
The Journal of the Acoustical Society of America
,
113
(
5
):
2762
2772
,
2003
.
3.
T.
Bowling
. Computational modeling of the generation and propagation of distortion products.
AIP Conference Proceesing, Mechanics of Hearing workshop
,
2017
.
4.
J.
Meaud
and
C.
Lemons
.
Nonlinear response to a click in a time-domain model of the mammalian ear
.
The Journal of the Acoustical Society of America
,
138
(
1
):
193
207
,
2015
.
5.
W.S.
Cleveland
.
Visualizing data
.
Hobart Press
,
1993
.
6.
E.H.
Overstreet
,
A.N.
Temchin
, and
M.A.
Ruggero
.
Basilar membrane vibrations near the round window of the gerbil cochlea
.
JARO-Journal of the Association for Research in Otolaryngology
,
3
(
3
):
351
361
,
2002
.
7.
T.
Ren
and
A.L.
Nuttall
.
Basilar membrane vibration in the basal turn of the sensitive gerbil cochlea
.
Hearing research
,
151
(
1
):
48
60
,
2001
.
8.
C.A.
Shera
,
A.
Tubis
, and
C.L.
Talmadge
.
Testing coherent reflection in chinchilla: Auditory-nerve responses predict stimulus-frequency emissions
.
The Journal of the Acoustical Society of America
,
124
(
1
):
381
395
,
2008
.
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