Delays of stimulus-frequency otoacoustic emissions and cochlear vibrations contradict the theory of coherent reflection filtering.
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Alberto Recio-Spinoso | Mario A Ruggero | M. Ruggero | J. Siegel | A. Temchin | Alberto Recio-Spinoso | P. van Dijk | Jonathan H Siegel | Pim van Dijk | Andrei N Temchin | Amanda J Cerka
[1] John J. Guinan,et al. FREQUENCY DEPENDENCE OF STIMULUS-FREQUENCY-EMISSION PHASE: IMPLICATIONS FOR COCHLEAR MECHANICS , 2000 .
[2] M. Ruggero,et al. Furosemide alters organ of corti mechanics: evidence for feedback of outer hair cells upon the basilar membrane , 1991, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[3] M. Ruggero. Systematic errors in indirect estimates of basilar membrane travel times. , 1980, The Journal of the Acoustical Society of America.
[4] J. P. Wilson,et al. Model for cochlear echoes and tinnitus based on an observed electrical correlate , 1980, Hearing Research.
[5] M. Ruggero,et al. Mechanical bases of frequency tuning and neural excitation at the base of the cochlea: comparison of basilar-membrane vibrations and auditory-nerve-fiber responses in chinchilla. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[6] N. Cooper,et al. Vibration of beads placed on the basilar membrane in the basal turn of the cochlea. , 1999, The Journal of the Acoustical Society of America.
[7] Christopher A. Shera,et al. The origin of SFOAE microstructure in the guinea pig , 2003, Hearing Research.
[8] M. Ruggero,et al. Frequency tuning of basilar membrane and auditory nerve fibers in the same cochleae. , 1998, Science.
[9] B. Kollmeier,et al. Evidence for the distortion product frequency place as a source of distortion product otoacoustic emission (DPOAE) fine structure in humans. II. Fine structure for different shapes of cochlear hearing loss. , 1999, The Journal of the Acoustical Society of America.
[10] A. Hudspeth,et al. Mechanical amplification of stimuli by hair cells , 1997, Current Opinion in Neurobiology.
[11] Watjana Lilaonitkul,et al. Medial Olivocochlear Efferent Reflex in Humans: Otoacoustic Emission (OAE) Measurement Issues and the Advantages of Stimulus Frequency OAEs , 2003, Journal of the Association for Research in Otolaryngology.
[12] L. Robles,et al. Two-tone distortion on the basilar membrane of the chinchilla cochlea. , 1997, Journal of neurophysiology.
[13] Christopher A Shera,et al. Stimulus-frequency-emission group delay: a test of coherent reflection filtering and a window on cochlear tuning. , 2003, The Journal of the Acoustical Society of America.
[14] L. S. Frishkopf,et al. The inner ear of the bullfrog , 1964, Journal of morphology.
[15] Anthony W. Gummer,et al. Evidence for active, nonlinear, negative feedback in the vibration response of the apical region of the in-vivo guinea-pig cochlea , 2000, Hearing Research.
[16] Robert H Withnell,et al. Cochlear delays measured with amplitude-modulated tone-burst-evoked OAEs , 2004, Hearing Research.
[17] G. Manley,et al. Evidence for an active process and a cochlear amplifier in nonmammals. , 2001, Journal of neurophysiology.
[18] C. Talmadge,et al. Interrelations among distortion-product phase-gradient delays: their connection to scaling symmetry and its breaking. , 2000, The Journal of the Acoustical Society of America.
[19] G. K. Martin,et al. Spontaneous otoacoustic emissions in a nonhuman primate. I. Basic features and relations to other emissions , 1988, Hearing Research.
[20] D. Kemp,et al. Suppression of stimulus frequency otoacoustic emissions. , 1993, The Journal of the Acoustical Society of America.
[21] M. Ruggero,et al. Timing of spike initiation in cochlear afferents: dependence on site of innervation. , 1987, Journal of neurophysiology.
[22] Mario A. Ruggero,et al. Basilar-membrane mechanics at the hook region of the chinchilla cochlea , 2000 .
[23] C. Talmadge,et al. Modeling the temporal behavior of distortion product otoacoustic emissions. , 2000, The Journal of the Acoustical Society of America.
[24] W. L. C. Rutten. Latencies of Stimulated Acoustic Emissions in Normal Human Ears , 1980 .
[25] Christopher A Shera,et al. Revised estimates of human cochlear tuning from otoacoustic and behavioral measurements , 2002, Proceedings of the National Academy of Sciences of the United States of America.
[26] Renato Nobili,et al. Otoacoustic Emissions from Residual Oscillations of the Cochlear Basilar Membrane in a Human Ear Model , 2003, Journal of the Association for Research in Otolaryngology.
[27] M. Ruggero,et al. Cochlear delays and traveling waves: comments on 'Experimental look at cochlear mechanics'. , 1994, Audiology : official organ of the International Society of Audiology.
[28] D. T. Kemp,et al. Observations on the Generator Mechanism of Stimulus Frequency Acoustic Emissions — Two Tone Suppression , 1980 .
[29] P. Joris,et al. The speed of auditory low-side suppression. , 2005, Journal of neurophysiology.
[30] G. Manley,et al. Distortion product otoacoustic emissions in the tree frog Hyla cinerea , 2001, Hearing Research.
[31] W. S. Rhode,et al. Basilar membrane responses to broadband stimuli. , 2000, The Journal of the Acoustical Society of America.
[32] W. S. Rhode,et al. Study of mechanical motions in the basal region of the chinchilla cochlea. , 2000, The Journal of the Acoustical Society of America.
[33] D. D. Greenwood. A cochlear frequency-position function for several species--29 years later. , 1990, The Journal of the Acoustical Society of America.
[34] D. Kemp. Stimulated acoustic emissions from within the human auditory system. , 1978, The Journal of the Acoustical Society of America.
[35] J. Guinan,et al. Evoked otoacoustic emissions arise by two fundamentally different mechanisms: a taxonomy for mammalian OAEs. , 1999, The Journal of the Acoustical Society of America.
[36] D T Kemp,et al. Wave and place fixed DPOAE maps of the human ear. , 2001, The Journal of the Acoustical Society of America.
[37] G. Long,et al. Modeling otoacoustic emission and hearing threshold fine structures. , 1998, The Journal of the Acoustical Society of America.
[38] M. Lutman,et al. The effect of suppression on the periodicity of stimulus frequency otoacoustic emissions: experimental data. , 2003, The Journal of the Acoustical Society of America.
[39] L. Robles,et al. Basilar-membrane responses to tones at the base of the chinchilla cochlea. , 1997, The Journal of the Acoustical Society of America.
[40] E. Olson,et al. Observing middle and inner ear mechanics with novel intracochlear pressure sensors. , 1998, The Journal of the Acoustical Society of America.
[41] M. Ruggero,et al. Wiener-kernel analysis of responses to noise of chinchilla auditory-nerve fibers. , 2005, Journal of neurophysiology.
[42] M. Ruggero,et al. Wiener kernels of chinchilla auditory-nerve fibers: verification using responses to tones, clicks, and noise and comparison with basilar-membrane vibrations. , 2005, Journal of neurophysiology.
[43] J. Guinan. Changes in Stimulus Frequency Otoacoustic Emissions Produced by Two-Tone Suppression and Efferent Stimulation in Cats , 1990 .
[44] Mario A Ruggero,et al. Comparison of group delays of 2f(1)-f(2) distortion product otoacoustic emissions and cochlear travel times. , 2004, Acoustics research letters online : ARLO.
[45] The effects of cochlear hypothermia on compound action potential tuning. , 1985, The Journal of the Acoustical Society of America.
[46] A. Nuttall,et al. Steady-state sinusoidal velocity responses of the basilar membrane in guinea pig. , 1996, The Journal of the Acoustical Society of America.
[47] P. Dallos. The active cochlea , 1992, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[48] W. S. Rhode,et al. Basilar membrane mechanics in the hook region of cat and guinea-pig cochleae: Sharp tuning and nonlinearity in the absence of baseline position shifts , 1992, Hearing Research.
[49] Tianying Ren,et al. Reverse propagation of sound in the gerbil cochlea , 2004, Nature Neuroscience.
[50] Arnold Tubis,et al. Do Forward- and Backward-Traveling Waves Occur Within the Cochlea? Countering the Critique of Nobili et al. , 2004, Journal of the Association for Research in Otolaryngology.
[51] Philip X Joris,et al. Cochlear Phase and Amplitude Retrieved from the Auditory Nerve at Arbitrary Frequencies , 2003, The Journal of Neuroscience.
[52] L. Carney,et al. Temporal coding of resonances by low-frequency auditory nerve fibers: single-fiber responses and a population model. , 1988, Journal of neurophysiology.
[53] G. Zweig,et al. The origin of periodicity in the spectrum of evoked otoacoustic emissions. , 1995, The Journal of the Acoustical Society of America.
[54] A. Nuttall,et al. Anesthesia and surgical traum: their influence on the guinea pig compound action potential , 1983, Hearing Research.
[55] Dawn Konrad-Martin,et al. Time-frequency analyses of transient-evoked stimulus-frequency and distortion-product otoacoustic emissions: testing cochlear model predictions. , 2003, The Journal of the Acoustical Society of America.