A phenomenological model was developed to describe responses of high-spontaneous-rate auditory-nerve (AN) fibers, including several nonlinear response properties. Level-dependent gain (compression), bandwidth, and phase properties were implemented with a control path that varied the gain and bandwidth of tuning in the signal-path filter. By making the bandwidth of the control path broad with respect to the signal path, the wide frequency range of two-tone suppression was included. By making the control-path filter level dependent and tuned to a frequency slightly higher than the signal-path filter, other properties of two-tone suppression were also included. These properties included the asymmetrical growth of suppression above and below the characteristic frequency and the frequency offset of the suppression tuning curve with respect to the excitatory tuning curve. The implementation of this model represents a relatively simple phenomenological description of a single mechanism that underlies several important nonlinear response properties of AN fibers. The model provides a tool for studying the roles of these nonlinearities in the encoding of simple and complex sounds in the responses of populations of AN fibers.

1.
Anderson
,
D. J.
,
Rose
,
J. E.
,
Hind
,
J. E.
, and
Brugge
,
J. F.
(
1971
). “
Temporal position of discharges in single auditory nerve fibers within the cycle of a sine-wave stimulus: Frequency and intensity effects
,”
J. Acoust. Soc. Am.
49
,
1131
1139
.
2.
Arthur
,
R. M.
,
Pfeiffer
,
R. R.
, and
Suga
,
N.
(
1971
). “
Properties of two-tone inhibition in primary auditory neurones
,”
J. Physiol.
212
,
593
609
.
3.
Carney
,
L. H.
(
1990
). “
Sensitivities of cells in the anteroventral cochlear nucleus of cat to spatio-temporal discharge patterns across primary afferents
,”
J. Neurophysiol.
64
,
437
456
.
4.
Carney
,
L. H.
(
1993
). “
A model for the responses of low-frequency auditory-nerve fibers in cat
,”
J. Acoust. Soc. Am.
93
,
401
417
.
5.
Carney
,
L. H.
(
1994
). “
Spatiotemporal encoding of sound level: Models for normal encoding and recruitment of loudness
,”
Hear. Res.
76
,
31
44
.
6.
Carney
,
L. H.
, and
Yin
,
T. C. T.
(
1988
). “
Temporal coding of resonances by low-frequency auditory nerve fibers: Single-fiber responses and a population model
,”
J. Neurophysiol.
60
,
1653
1677
.
7.
Carney
,
L. H.
,
McDuffy
,
M. J.
, and
Shekhter
,
I.
(
1999
). “
Frequency glides in the impulse responses of auditory-nerve fibers
,”
J. Acoust. Soc. Am.
105
,
2384
2391
.
8.
Cheatham
,
M. A.
, and
Dallos
,
P.
(
1989
). “
Two-tone suppression in inner hair cell responses
,”
Hear. Res.
40
,
187
196
.
9.
Cheatham
,
M. A.
, and
Dallos
,
P.
(
1990
). “
Comparisons of low- and high-side two-tone suppression in inner hair cell and organ of corti responses
,”
Hear. Res.
50
,
193
210
.
10.
Cheatham
,
M. A.
, and
Dallos
,
P.
(
1992
). “
Two-tone suppression in inner hair cell responses: Correlates of rate suppression in the auditory nerve
,”
Hear. Res.
60
,
1
12
.
11.
Cheatham
,
M. A.
, and
Dallos
,
P.
(
1993
). “
Longitudinal comparisons of IHC ac and dc receptor potentials recorded from the guinea pig cochlea
,”
Hear. Res.
68
,
107
114
.
12.
Cheatham
,
M. A.
, and
Dallos
,
P.
(
1998
). “
The level dependence of response phase: Observations from cochlear hair cells
,”
J. Acoust. Soc. Am.
104
,
356
369
.
13.
Cheatham
,
M. A.
, and
Dallos
,
P.
(
1999
). “
Response phase: A view from the inner hair cell
,”
J. Acoust. Soc. Am.
105
,
799
810
.
14.
Colburn, H. S., Carney, L. H., and Heinz, M. G. (2001). “Quantifying the information in auditory-nerve responses for level discrimination,” J. Assoc. Res. Otolaryngol. (submitted).
15.
Cooper
,
N. P.
(
1996
). “
Two-tone suppression in cochlear mechanics
,”
J. Acoust. Soc. Am.
99
,
3087
3098
.
16.
Cooper
,
N. P.
, and
Rhode
,
W. S.
(
1996
). “
Two-tone suppression in apical cochlear mechanics
,”
Aud. Neurosci.
3
,
123
134
.
17.
Cooper
,
N. P.
, and
Rhode
,
W. S.
(
1997
). “
Mechanical responses to two-tone distortion products in the apical and basal turns of the mammalian cochlea
,”
J. Neurophysiol.
78
,
261
270
.
18.
Costalupes
,
J. A.
,
Rich
,
N. C.
, and
Ruggero
,
M. A.
(
1987
). “
Effects of excitatory and non-excitatory suppressor tones on two-tone rate suppression in auditory nerve fibers
,”
Hear. Res.
26
,
155
164
.
19.
Dallos
,
P.
(
1985
). “
Response characteristics of mammalian cochlear hair cells
,”
J. Neurosci.
5
,
1591
1608
.
20.
de Boer
,
E.
(
1975
). “
Synthetic whole-nerve action potentials for the cat
,”
J. Acoust. Soc. Am.
58
,
1030
1045
.
21.
de Boer
,
E.
, and
Krudenier
,
C.
(
1990
). “
On ringing limits of the auditory periphery
,”
Biol. Cybern.
63
,
433
442
.
22.
de Boer
,
E.
, and
de Jongh
,
H. R.
(
1978
). “
On cochlear encoding: Potentialities and limitations of the reverse correlation technique
,”
J. Acoust. Soc. Am.
63
,
115
135
.
23.
de Boer
,
E.
, and
Nuttall
,
A. L.
(
1997
). “
The mechanical waveform of the basilar membrane. I. Frequency modulations (“glides”) in impulse responses and cross-correlation functions
,”
J. Acoust. Soc. Am.
101
,
3583
3592
.
24.
Delgutte
,
B.
(
1990
). “
Two-tone rate suppression in auditory-nerve fibers: Dependence on suppressor frequency and level
,”
Hear. Res.
49
,
225
246
.
25.
Deng
,
L.
, and
Geisler
,
C. D.
(
1985
). “
Changes in phase of excitor-tone responses in cat auditory-nerve fibers by suppressor tones and fatigue
,”
J. Acoust. Soc. Am.
78
,
1633
1643
.
26.
Deng
,
L.
, and
Geisler
,
C. D.
(
1987
). “
A composite model for processing speech sounds
,”
J. Acoust. Soc. Am.
82
,
2001
2012
.
27.
Duifhuis
,
H.
(
1976
). “
Cochlear nonlinearity and second filter: Possible mechanism and implications
,”
J. Acoust. Soc. Am.
67
,
914
927
.
28.
Evans, E. F. (1977). “Frequency selectivity at high signal levels of single units in cochlear nerve and nucleus,” in Psychophysics and Physiology of Hearing, edited by E. F. Evans and J. P. Wilson (Academic, New York), pp. 185–192.
29.
Geisler
,
C. D.
(
1990
). “
Evidence for expansive power functions in the generation of the discharges of ‘low- and medium-spontaneous’ auditory-nerve fibers
,”
Hear. Res.
44
,
1
12
.
30.
Geisler
,
C. D.
, and
Rhode
,
W. D.
(
1982
). “
The phases of basilar membrane vibrations
,”
J. Acoust. Soc. Am.
71
,
1201
1203
.
31.
Geisler
,
C. D.
, and
Sinex
,
D. G.
(
1980
). “
Responses of primary auditory fibers to combined noise and tonal stimuli
,”
Hear. Res.
3
,
317
334
.
32.
Giguere
,
C.
, and
Woodland
,
P. C.
(
1994
). “
A computational model of the auditory periphery for speech and hearing research. I. Ascending path
,”
J. Acoust. Soc. Am.
95
,
331
342
.
33.
Goblick
, Jr.,
T. J.
, and
Pfeiffer
,
R. R.
(
1969
). “
Time-domain measurements of cochlear nonlinearities using combination click stimuli
,”
J. Acoust. Soc. Am.
46
,
924
938
.
34.
Goldstein
,
J. L.
(
1990
). “
Modeling rapid waveform compression on the basilar membrane as multiple-bandpass-nonlinearity filtering
,”
Hear. Res.
49
,
39
60
.
35.
Goldstein
,
J. L.
(
1995
). “
Relations among compression, suppression, and combination tones in mechanical responses of the basilar membrane: Data and MBPNL model
,”
Hear. Res.
89
,
52
68
.
36.
Guinan, Jr., J. J. (1996). “
Physiology of olivocochlear efferents,” in The Cochlea, edited by P. Dallos, A. N. Popper, and R. R. Fay (Springer, New York), pp. 435–502.
37.
Heinz
,
M. G.
,
Colburn
,
H. S.
, and
Carney
,
L. H.
(
1999
). “
Monaural, cross-frequency coincidence detection as a mechanism for decoding perceptual cues provided by the cochlear amplifier
,” (Abstract)
J. Acoust. Soc. Am.
105
,
1023
.
38.
Heinz, M. G., Colburn, H. S., and Carney, L. H. (2001). “Monaural cross-frequency coincidence detection for level discrimination: Decoding rate and timing cues associated with the cochlear amplifier,” J. Acoust. Soc. Am. (submitted).
39.
Hewitt
,
M. J.
, and
Meddis
,
R.
(
1991
). “
An evaluation of eight computer models of mammalian inner hair-cell function
,”
J. Acoust. Soc. Am.
90
,
904
917
.
40.
Hicks
,
M. L.
, and
Bacon
,
S. P.
(
1999
). “
Psychophysical measures of auditory nonlinearities as a function of frequency in individuals with normal hearing
,”
J. Acoust. Soc. Am.
105
,
326
338
.
41.
Holley, M. C. (1996). “Outer hair cell motility,” in The Cochlea, edited by P. Dallos, A. N. Popper, and R. R. Fay (Springer-Verlag, New York), pp. 386–434.
42.
Irino
,
T.
, and
Patterson
,
R. D.
(
1997
). “
A time-domain level-dependent auditory filter: The gammachirp
,”
J. Acoust. Soc. Am.
101
,
412
419
.
43.
Javel
,
E.
,
Geisler
,
C. D.
, and
Ravindran
,
A.
(
1978
). “
Two-tone suppression in auditory nerve of the cat: Rate-intensity and temporal analyses
,”
J. Acoust. Soc. Am.
63
,
1093
1104
.
44.
Javel
,
E.
,
McGee
,
J.
,
Walsh
,
E. J.
,
Farley
,
G. R.
, and
Gorga
,
M. P.
(
1983
). “
Suppression of auditory nerve responses. II. Suppression threshold and growth, iso-suppression contours
,”
J. Acoust. Soc. Am.
74
,
801
813
.
45.
Jenison
,
R. L.
,
Greenberg
,
S.
,
Kluender
,
K. R.
, and
Rhode
,
W. S.
(
1991
). “
A composite model of the auditory periphery for the processing of speech based on the filter response functions of single auditory-nerve fibers
,”
J. Acoust. Soc. Am.
90
,
773
786
.
46.
Johannesma, P. I. M. (1972). The pre-response stimulus ensemble of neurons in the cochlear nucleus,” in Proceedings of the Symposium on Hearing Theory (IPO, Eindhoven, The Netherlands), pp. 58–69.
47.
Johnson
,
D. H.
(
1980
). “
The relationship between spike rate and synchrony in responses of auditory-nerve fibers to single tones
,”
J. Acoust. Soc. Am.
68
,
1115
1122
.
48.
Joris, P. (1999) (personal communication).
49.
Kiang, N. Y. S. (1975). “Stimulus representation in the discharge patterns of auditory neurons,” in The Nervous System, Vol. 3: Human Communication and Its Disorders, edited by D. B. Tower (Raven, New York), pp. 81–95.
50.
Kiang
,
N. Y. S.
(
1990
). “
Curious oddments of auditory-nerve studies
,”
Hear. Res.
49
,
1
16
.
51.
Kiang
,
N. Y. S.
, and
Moxon
,
E. C.
(
1974
). “
Tails of tuning curves of auditory-nerve fibers
,”
J. Acoust. Soc. Am.
55
,
620
630
.
52.
Kiang, N. Y. S., Watanabe, T., Thomas, E. C., and Clark, L. F. (1965). Discharge Patterns of Single Fibers in the Cat’s Auditory Nerve, M.I.T. Research Monograph 35 (MIT Press, Cambridge).
53.
Liberman
,
M. C.
(
1978
). “
Auditory-nerve responses from cats raised in a low-noise chamber
,”
J. Acoust. Soc. Am.
63
,
442
455
.
54.
Liberman
,
M. C.
(
1982
). “
The cochlear frequency map for the cat: Labelling auditory-nerve fibers of known characteristic frequency
,”
J. Acoust. Soc. Am.
72
,
1441
1449
.
55.
Liberman
,
M. C.
, and
Kiang
,
N. Y. S.
(
1978
). “
Acoustic trauma in cats: Cochlear pathology and auditory-nerve activity
,”
Acta Oto-Laryngol., Suppl.
358
,
1
63
.
56.
Lin
,
T.
, and
Goldstein
,
J. L.
(
1995
). “
Quantifying 2-factor phase relations in nonlinear responses from low characteristic-frequency auditory-nerve fibers
,”
Hear. Res.
90
,
126
138
.
57.
Lin
,
T.
, and
Guinan, Jr.
,
J. J.
(
2000
). “
Auditory-nerve-fiber responses to high-level clicks: Interference patterns indicate that excitation is due to the combination of multiple drives
,”
J. Acoust. Soc. Am.
107
,
2615
2630
.
58.
Lopez-Poveda, E. A., O’Mard, L. P., and Meddis, R. (1998). “
A revised computational inner hair cell model,” in Psychophysical and Physiological Advances in Hearing, edited by A. R. Palmer, A. Rees, A. Q. Summerfield, and R. Meddis (Whurr, London), pp. 112–121.
59.
May
,
B. J.
, and
Sachs
,
M. B.
(
1992
). “
Dynamic range of neural rate responses in the ventral cochlear nucleus of awake cats
,”
J. Neurophysiol.
68
,
1589
1602
.
60.
Meddis
,
R.
(
1986
). “
Simulation of mechanical to neural transduction in the auditory receptor
,”
J. Acoust. Soc. Am.
79
,
702
711
.
61.
Meddis
,
R.
(
1988
). “
Simulation of auditory-neural transduction: Further studies
,”
J. Acoust. Soc. Am.
83
,
1056
1063
.
62.
Miller
,
R. L.
,
Schilling
,
J. R.
,
Franck
,
K. R.
, and
Young
,
E. D.
(
1997
). “
Effects of acoustic trauma on the representation of the vowel /ɛ/ in cat auditory nerve fibers
,”
J. Acoust. Soc. Am.
101
,
3602
3616
.
63.
Mountain, D. C., and Hubbard, A. E. (1996). “Hair cell and auditory nerve,” in Auditory Computation, edited by H. L. Hawkins, T. A. McMullen, A. N. Popper, and R. R. Fay (Springer-Verlag, New York), pp. 121–156.
64.
Narayan
,
S. S.
,
Temchin
,
A. N.
,
Recio
,
A.
, and
Ruggero
,
M. A.
(
1998
). “
Frequency tuning of basilar membrane and auditory nerve fibers in the same cochleae
,”
Science
282
,
1882
1884
.
65.
Nomoto
,
M.
,
Suga
,
N.
, and
Katsuki
,
Y.
(
1964
). “
Discharge pattern and inhibition of primary auditory nerve fibers in the monkey
,”
J. Neurophysiol.
27
,
768
787
.
66.
Nuttall
,
A. L.
, and
Dolan
,
D. F.
(
1993
). “
Two-tone suppression of inner hair cell and basilar membrane responses in the guinea-pig
,”
J. Acoust. Soc. Am.
93
,
390
400
.
67.
Nuttall
,
A. L.
, and
Dolan
,
D. F.
(
1996
). “
Steady-state sinusoidal velocity responses of the basilar membrane in guinea pig
,”
J. Acoust. Soc. Am.
99
,
1556
1564
.
68.
Oppenheim, A. V., and Schafer, R. W. (1975). Digital Signal Processing (Prentice-Hall, Englewood Cliffs, NJ).
69.
Palmer
,
A. R.
, and
Russell
,
I. J.
(
1986
). “
Phase-locking in the cochlear nerve of the guinea-pig and its relation to the receptor potential of inner hair cell
,”
Hear. Res.
24
,
1
15
.
70.
Patterson, R. D., Nimmo-Smith, I., Holdsworth, J., and Rice, P. (1988). “Implementing a gammatone filter bank,” SVOS Final Report: The Auditory Filter Bank.
71.
Patuzzi, R. (1996). “Cochlear micromechanics and macromechanics,” in The Cochlea, edited by P. Dallos, A. N. Popper, and R. R. Fay (Springer-Verlag, New York), pp. 186–257.
72.
Patuzzi
,
R.
, and
Robertson
,
D.
(
1988
). “
Tuning in the mammalian cochlea
,”
Physiol. Rev.
68
,
1009
1082
.
73.
Pfeiffer
,
R. R.
(
1970
). “
A model for two-tone inhibition of single cochlear nerve fibers
,”
J. Acoust. Soc. Am.
48
,
1373
1378
.
74.
Prijs
,
V. F.
(
1989
). “
Lower boundaries of two-tone suppression regions in the guinea pig
,”
Hear. Res.
42
,
73
82
.
75.
Recio, A., Narayan, S. S., and Ruggero, M. A. (1996). “Wiener-kernel analysis of basilar membrane responses to noise,” in Diversity in Auditory Mechanics, edited by E. R. Lewis, G. R. Long, R. F. Lyon, P. M. Narins, C. R. Steele, and E. Hecht-Poinar (World Scientific, Singapore), pp. 325–331.
76.
Recio
,
A.
,
Rich
,
N. C.
,
Narayan
,
S. S.
, and
Ruggero
,
M. A.
(
1998
). “
Basilar-membrane responses to clicks at the base of the chinchilla cochlea
,”
J. Acoust. Soc. Am.
103
,
1972
1989
.
77.
Rhode
,
W. S.
(
1971
). “
Observations of the vibration of the basilar membrane in squirrel monkeys using the Mossbauer technique
,”
J. Acoust. Soc. Am.
49
,
1218
1231
.
78.
Rhode, W. S. (1977). “Some observations on two-tone interaction measured with the Mossbauer effect,” in Psychophysics and Physiology of Hearing, edited by E. F. Evans and J. P. Wilson (Academic, London), pp. 27–38.
79.
Rhode
,
W. S.
, and
Cooper
,
N. P.
(
1993
). “
Two-tone suppression and distortion production on the basilar membrane in the hook region of cat and guinea pig cochleae
,”
Hear. Res.
66
,
31
45
.
80.
Rhode
,
W. S.
, and
Cooper
,
N. P.
(
1996
). “
Nonlinear mechanics in the apical turn of the chinchilla
,”
Aud. Neurosci.
3
,
101
120
.
81.
Robert
,
A.
, and
Eriksson
,
J. L.
(
1999
). “
A composite model of the auditory periphery for simulating responses to complex sounds
,”
J. Acoust. Soc. Am.
106
,
1852
1864
.
82.
Robles
,
L.
,
Ruggero
,
M. A.
, and
Rich
,
N. C.
(
1991
). “
Two-tone distortion in the basilar membrane of the cochlea
,”
Nature (London)
349
,
413
414
.
83.
Rose
,
J. E.
,
Hind
,
J. E.
,
Anderson
,
D. J.
, and
Brugge
,
J. F.
(
1971
). “
Some effects of stimulus intensity on response of auditory nerve fibers in the squirrel monkey
,”
J. Neurophysiol.
34
,
685
699
.
84.
Rosowski, J. J. (1996). “Models of External- and Middle-Ear Function,” in Auditory Computation (Springer Handbook of Auditory Research, Vol. 6), edited by H. L. Hawkins, T. A. McMullen, and A. N. Popper (Springer, New York), pp. 15–61.
85.
Ruggero
,
M. A.
, and
Rich
,
N. C.
(
1987
). “
Timing of spike initiation in cochlear afferents: Dependence on site of innervation
,”
J. Neurophysiol.
58
,
379
403
.
86.
Ruggero
,
M. A.
,
Rich
,
N. C.
,
Recio
,
A.
(
1996
). “
The effects of intense acoustic stimulation on basilar-membrane vibrations
,”
Aud. Neurosci.
2
,
329
346
.
87.
Ruggero
,
M. A.
,
Rich
,
N. C.
,
Recio
,
A.
,
Narayan
,
S. S.
, and
Robles
,
L.
(
1997
). “
Basilar-membrane responses to tones at the base of the chinchilla cochlea
,”
J. Acoust. Soc. Am.
101
,
2151
2163
.
88.
Ruggero
,
M. A.
,
Robles
,
L.
, and
Rich
,
N. C.
(
1992
). “
Two-tone suppression in the basilar membrane of the cochlea: Mechanical basis of auditory-nerve rate suppression
,”
J. Neurophysiol.
68
,
1087
1099
.
89.
Russell
,
I. J.
,
Cody
,
A. R.
, and
Richardson
,
G. P.
(
1986
). “
The responses of inner and outer hair cells in the basal turn of the guinea-pig cochlea and in the mouse cochlea grown in vitro
,”
Hear. Res.
22
,
199
216
.
90.
Sachs
,
M. B.
, and
Abbas
,
P. J.
(
1974
). “
Rate versus level functions for auditory-nerve fibers in cats: Tone-burst stimuli
,”
J. Acoust. Soc. Am.
56
,
1835
1847
.
91.
Sachs
,
M. B.
, and
Abbas
,
P. J.
(
1976
). “
Phenomenological model for two-tone suppression
,”
J. Acoust. Soc. Am.
60
,
1157
1163
.
92.
Sachs
,
M. B.
, and
Kiang
,
N. Y. S.
(
1968
). “
Two-tone inhibition in auditory-nerve fibers
,”
J. Acoust. Soc. Am.
43
,
1120
1128
.
93.
Schalk
,
T. B.
, and
Sachs
,
M. B.
(
1980
). “
Nonlinearities in auditory-nerve fiber responses to bandlimited noise
,”
J. Acoust. Soc. Am.
67
,
903
913
.
94.
Schoonhoven
,
R.
,
Prijs
,
V. F.
, and
Frijns
,
J. H. M.
(
1998
). “
Transmitter release in inner hair cell synapses: A model analysis of spontaneous and driven properties of cochlear nerve fibers
,”
Hear. Res.
113
,
247
260
.
95.
Schwid
,
H. A.
, and
Geisler
,
C. D.
(
1982
). “
Multiple reservoir model of neurotransmitter release by a cochlea inner hair cell
,”
J. Acoust. Soc. Am.
72
,
1435
1440
.
96.
Shera, C. A., and Guinan, Jr., J. J. (2000). “Reflection-emission phase: A test of coherent reflection filtering and a window on cochlear-tuning,” Abstracts of the 23rd Midwinter Meeting of the Association for Research in Otolaryngology, 157.
97.
Smith, R. L. (1988). “Encoding of sound intensity by auditory neurons,” in Auditory Function: Neurobiological Bases of Hearing, edited by G. M. Edelman, W. E. Gall, and W. M. Cowan (Wiley, New York), pp. 243–274.
98.
Teich
,
M. C.
, and
Lachs
,
G.
(
1979
). “
A neural-counting model incorporating refractoriness and spread of excitation. I. Application to intensity discrimination
,”
J. Acoust. Soc. Am.
66
,
1738
1749
.
99.
Temchin
,
A. N.
,
Rich
,
N. C.
, and
Ruggero
,
M. A.
(
1997
). “
Low-frequency suppression of auditory nerve responses to characteristic frequency tones
,”
Hear. Res.
113
,
29
56
.
100.
Weiss
,
T. F.
, and
Rose
,
C.
(
1988
). “
A comparison of synchronization filters in different auditory receptor organs
,”
Hear. Res.
33
,
175
180
.
101.
Westerman
,
L. A.
, and
Smith
,
R. L.
(
1985
). “
Rapid adaptation depends on the characteristic frequency of auditory nerve fibers
,”
Hear. Res.
17
,
197
198
.
102.
Westerman
,
L. A.
, and
Smith
,
R. L.
(
1988
). “
A diffusion model of the transient response of the cochlear inner hair cell synapse
,”
J. Acoust. Soc. Am.
83
,
2266
2276
.
103.
Wiederhold, M. L. (1986). “Physiology of the olivocochlear system,” in Neurobiology of Hearing: The Cochlea, edited by R. A. Altschuler, R. P. Robbin, and D. W. Hoffman (Raven, New York), pp. 349–370.
104.
Winter
,
I. M.
, and
Palmer
,
A. R.
(
1991
). “
Intensity coding in low-frequency auditory-nerve fibers of the guinea pig
,”
J. Acoust. Soc. Am.
90
,
1958
1967
.
105.
Yates
,
G. K.
,
Johnstone
,
B. M.
,
Patuzzi
,
R. B.
, and
Robertson
,
D.
(
1992
). “
Mechanical preprocessing in the mammalian cochlea
,”
Trends Neurosci.
15
,
57
61
.
106.
Young
,
E. D.
, and
Barta
,
P. E.
(
1986
). “
Rate responses of auditory nerve fibers to tones in noise near masked threshold
,”
J. Acoust. Soc. Am.
79
,
426
442
.
107.
Zagaeski
,
M.
,
Cody
,
A. R.
,
Russell
,
I. J.
, and
Mountain
,
D. C.
(
1994
). “
Transfer characteristic of the inner hair cell synapse: Steady-state analysis
,”
J. Acoust. Soc. Am.
95
,
3430
3434
.
108.
Zhao
,
H. B.
, and
Santos-Sacchi
,
J.
(
1999
). “
Auditory collusion and a coupled couple of outer hair cells
,”
Nature (London)
399
,
359
362
.
This content is only available via PDF.
You do not currently have access to this content.