Zilany MS, Bruce IC. (2007). Representation of the vowel /epsilon/ in normal and impaired auditory nerve fibers: model predictions of responses in cats. The Journal of the Acoustical Society of America. 122 [PubMed]

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References and models cited by this paper

Becker S, Haykin S, Bondy J, Bruce I, Trainor L. (2004). A novel signal-processing strategy for hearing-aid design: Neurocompensation Signal Processing. 84

Brown GJ, Cooke MP. (1994). Computational auditory scene analysis Computer Speech And Language. 8

Bruce IC. (2004). Physiological assessment of contrast-enhancing frequency shaping and multiband compression in hearing aids. Physiological measurement. 25 [PubMed]

Bruce IC, Sachs MB, Young ED. (2003). An auditory-periphery model of the effects of acoustic trauma on auditory nerve responses. The Journal of the Acoustical Society of America. 113 [PubMed]

Bruce IC, Zilany MSA. (2007). Predictions of speech intelligibility with a model of the normal and impaired auditory-periphery Proceedings of 3rd International IEEE EMBS Conference on Neural Engineeering.

Carney LH, McDuffy MJ, Shekhter I. (1999). Frequency glides in the impulse responses of auditory-nerve fibers. The Journal of the Acoustical Society of America. 105 [PubMed]

Cheatham MA, Dallos P. (1998). The level dependence of response phase: observations from cochlear hair cells. The Journal of the Acoustical Society of America. 104 [PubMed]

Cooper NP, Rhode WS. (1995). Nonlinear mechanics at the apex of the guinea-pig cochlea. Hearing research. 82 [PubMed]

Cooper NP, Rhode WS. (1997). Mechanical responses to two-tone distortion products in the apical and basal turns of the mammalian cochlea. Journal of neurophysiology. 78 [PubMed]

Delgutte B. (1980). Representation of speech-like sounds in the discharge patterns of auditory-nerve fibers. The Journal of the Acoustical Society of America. 68 [PubMed]

Delgutte B, Kiang NY. (1984). Speech coding in the auditory nerve: V. Vowels in background noise. The Journal of the Acoustical Society of America. 75 [PubMed]

Deng L, Geisler CD. (1987). A composite auditory model for processing speech sounds. The Journal of the Acoustical Society of America. 82 [PubMed]

Deng L, Geisler CD. (1987). Responses of auditory-nerve fibers to nasal consonant-vowel syllables. The Journal of the Acoustical Society of America. 82 [PubMed]

Geisler CD. (1989). The responses of models of "high-spontaneous" auditory-nerve fibers in a damaged cochlea to speech syllables in noise. J Acoust Soc Am. 86

Ghitza O. (1988). Temporal non-place information in the auditory-nerve firing patterns as a front-end for speech recognition in a noisy environment. J Phonetics. 16

Glasberg BR, Moore BC. (1986). Auditory filter shapes in subjects with unilateral and bilateral cochlear impairments. The Journal of the Acoustical Society of America. 79 [PubMed]

Goldstein JL. (1990). Modeling rapid waveform compression on the basilar membrane as multiple-bandpass-nonlinearity filtering. Hearing research. 49 [PubMed]

Goldstein JL. (1995). Relations among compression, suppression, and combination tones in mechanical responses of the basilar membrane: data and MBPNL model. Hearing research. 89 [PubMed]

Hewitt MJ, Meddis R. (1993). Regularity of cochlear nucleus stellate cells: a computational modeling study. The Journal of the Acoustical Society of America. 93 [PubMed]

Holmes SD, Sumner CJ, O'Mard LP, Meddis R. (2004). The temporal representation of speech in a nonlinear model of the guinea pig cochlea. The Journal of the Acoustical Society of America. 116 [PubMed]

Jenison RL, Greenberg S, Kluender KR, Rhode WS. (1991). A composite model of the auditory periphery for the processing of speech based on the filter response functions of single auditory-nerve fibers. The Journal of the Acoustical Society of America. 90 [PubMed]

Khanna SM, Hao LF. (1999). Reticular lamina vibrations in the apical turn of a living guinea pig cochlea. Hearing research. 132 [PubMed]

Kiang NY. (1990). Curious oddments of auditory-nerve studies. Hearing research. 49 [PubMed]

Liberman MC. (1984). Single-neuron labeling and chronic cochlear pathology. I. Threshold shift and characteristic-frequency shift. Hearing research. 16 [PubMed]

Liberman MC, Dodds LW. (1984). Single-neuron labeling and chronic cochlear pathology. III. Stereocilia damage and alterations of threshold tuning curves. Hearing research. 16 [PubMed]

Liberman MC, Kiang NY. (1984). Single-neuron labeling and chronic cochlear pathology. IV. Stereocilia damage and alterations in rate- and phase-level functions. Hearing research. 16 [PubMed]

Lin T, Goldstein JL. (1995). Quantifying 2-factor phase relations in non-linear responses from low characteristic-frequency auditory-nerve fibers. Hearing research. 90 [PubMed]

Lopez-Poveda EA, Plack CJ, Meddis R. (2003). Cochlear nonlinearity between 500 and 8000 Hz in listeners with normal hearing. The Journal of the Acoustical Society of America. 113 [PubMed]

Meddis R, O'Mard LP, Lopez-Poveda EA. (2001). A computational algorithm for computing nonlinear auditory frequency selectivity. The Journal of the Acoustical Society of America. 109 [PubMed]

Miller RL, Calhoun BM, Young ED. (1999). Contrast enhancement improves the representation of /epsilon/-like vowels in the hearing-impaired auditory nerve. The Journal of the Acoustical Society of America. 106 [PubMed]

Miller RL, Calhoun BM, Young ED. (1999). Discriminability of vowel representations in cat auditory-nerve fibers after acoustic trauma. The Journal of the Acoustical Society of America. 105 [PubMed]

Miller RL, Schilling JR, Franck KR, Young ED. (1997). Effects of acoustic trauma on the representation of the vowel "eh" in cat auditory nerve fibers. The Journal of the Acoustical Society of America. 101 [PubMed]

Nuttall AL, Dolan DF. (1996). Steady-state sinusoidal velocity responses of the basilar membrane in guinea pig. The Journal of the Acoustical Society of America. 99 [PubMed]

Oxenham AJ, Plack CJ. (1997). A behavioral measure of basilar-membrane nonlinearity in listeners with normal and impaired hearing. The Journal of the Acoustical Society of America. 101 [PubMed]

Palmer AR. (1990). The representation of the spectra and fundamental frequencies of steady-state single- and double-vowel sounds in the temporal discharge patterns of guinea pig cochlear-nerve fibers. The Journal of the Acoustical Society of America. 88 [PubMed]

Palmer AR, Winter IM, Darwin CJ. (1986). The representation of steady-state vowel sounds in the temporal discharge patterns of the guinea pig cochlear nerve and primarylike cochlear nucleus neurons. The Journal of the Acoustical Society of America. 79 [PubMed]

Plack CJ, Oxenham AJ. (2000). Basilar-membrane nonlinearity estimated by pulsation threshold. The Journal of the Acoustical Society of America. 107 [PubMed]

Robles L, Ruggero MA. (2001). Mechanics of the mammalian cochlea. Physiological reviews. 81 [PubMed]

Ruggero MA, Rich NC, Recio A, Narayan SS, Robles L. (1997). Basilar-membrane responses to tones at the base of the chinchilla cochlea. The Journal of the Acoustical Society of America. 101 [PubMed]

Sachs MB, Bruce IC, Miller RL, Young ED. (2002). Biological basis of hearing-aid design. Annals of biomedical engineering. 30 [PubMed]

Schilling JR, Miller RL, Sachs MB, Young ED. (1998). Frequency-shaped amplification changes the neural representation of speech with noise-induced hearing loss. Hearing research. 117 [PubMed]

Sinex DG, Geisler CD. (1983). Responses of auditory-nerve fibers to consonant-vowel syllables. The Journal of the Acoustical Society of America. 73 [PubMed]

Stelmachowicz PG, Jesteadt W, Gorga MP, Mott J. (1985). Speech perception ability and psychophysical tuning curves in hearing-impaired listeners. The Journal of the Acoustical Society of America. 77 [PubMed]

Sumner CJ, O'Mard LP, Lopez-Poveda EA, Meddis R. (2003). A nonlinear filter-bank model of the guinea-pig cochlear nerve: rate responses. The Journal of the Acoustical Society of America. 113 [PubMed]

Tan Q, Carney LH. (2003). A phenomenological model for the responses of auditory-nerve fibers. II. Nonlinear tuning with a frequency glide. The Journal of the Acoustical Society of America. 114 [PubMed]

Tchorz J, Kollmeier B. (1999). A model of auditory perception as front end for automatic speech recognition. The Journal of the Acoustical Society of America. 106 [PubMed]

Wiener FM, Ross DA. (1946). The pressure distribution in the auditory canal in a progressive sound field J Acoust Soc Am. 18

Wilson BS et al. (2005). Two new directions in speech processor design for cochlear implants. Ear and hearing. 26 [PubMed]

Wong JC, Miller RL, Calhoun BM, Sachs MB, Young ED. (1998). Effects of high sound levels on responses to the vowel "eh" in cat auditory nerve. Hearing research. 123 [PubMed]

Young ED, Sachs MB. (1979). Representation of steady-state vowels in the temporal aspects of the discharge patterns of populations of auditory-nerve fibers. The Journal of the Acoustical Society of America. 66 [PubMed]

Zhang X, Heinz MG, Bruce IC, Carney LH. (2001). A phenomenological model for the responses of auditory-nerve fibers: I. Nonlinear tuning with compression and suppression. The Journal of the Acoustical Society of America. 109 [PubMed]

Zilany MS, Bruce IC. (2006). Modeling auditory-nerve responses for high sound pressure levels in the normal and impaired auditory periphery. The Journal of the Acoustical Society of America. 120 [PubMed]

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