Tan Q, Carney LH. (2006). Predictions of formant-frequency discrimination in noise based on model auditory-nerve responses. The Journal of the Acoustical Society of America. 120 [PubMed]

See more from authors: Tan Q · Carney LH

References and models cited by this paper

Colburn HS. (1969). Some physiological limitations on binaural performance. doctoral dissertation.

Colburn HS. (1977). Theory of binaural interaction based on auditory-nerve data. II. Detection of tones in noise. The Journal of the Acoustical Society of America. 61 [PubMed]

Colburn HS, Carney LH, Heinz MG. (2003). Quantifying the information in auditory-nerve responses for level discrimination. Journal of the Association for Research in Otolaryngology : JARO. 4 [PubMed]

Colburn HS, Carney LH, Heinz MG, Evilsizer ME, Gilkey RH. (2002). Auditory Phase Opponency: A Temporal Model for Masked Detection at Low Frequencies Acta Acustica united with Acustica. 88

Dau T, Kollmeier B, Kohlrausch A. (1997). Modeling auditory processing of amplitude modulation. I. Detection and masking with narrow-band carriers. The Journal of the Acoustical Society of America. 102 [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]

Flanagan JL. (1955). A difference limen for vowel formant frequency J Acoust Soc Am. 27

Hawks JW. (1994). Difference limens for formant patterns of vowel sounds. The Journal of the Acoustical Society of America. 95 [PubMed]

Heinz MG. (2000). Quantifying the effects of the cochlear amplifier on temporal and average-rate information in the auditory nerve. PhD thesis.

Heinz MG, Colburn HS, Carney LH. (2001). Evaluating auditory performance limits: i. one-parameter discrimination using a computational model for the auditory nerve. Neural computation. 13 [PubMed]

Heinz MG, Colburn HS, Carney LH. (2001). Rate and timing cues associated with the cochlear amplifier: level discrimination based on monaural cross-frequency coincidence detection. The Journal of the Acoustical Society of America. 110 [PubMed]

Heinz MG, Colburn HS, Carney LH. (2002). Quantifying the implications of nonlinear cochlear tuning for auditory-filter estimates. The Journal of the Acoustical Society of America. 111 [PubMed]

Hienz RD, Aleszczyk CM, May BJ. (1996). Vowel discrimination in cats: acquisition, effects of stimulus level, and performance in noise. The Journal of the Acoustical Society of America. 99 [PubMed]

Hienz RD, Stiles P, May BJ. (1998). Effects of bilateral olivocochlear lesions on vowel formant discrimination in cats. Hearing research. 116 [PubMed]

Horst JW, Lyzenga J. (1995). . Frequency discrimination of bandlimited harmonic complexes related to vowel formants J Acoust Soc Am. 98

Johnson DH. (1980). The relationship between spike rate and synchrony in responses of auditory-nerve fibers to single tones. The Journal of the Acoustical Society of America. 68 [PubMed]

Joris PX, Yin TC. (1992). Responses to amplitude-modulated tones in the auditory nerve of the cat. The Journal of the Acoustical Society of America. 91 [PubMed]

Keithley EM, Schreiber RC. (1987). Frequency map of the spiral ganglion in the cat. The Journal of the Acoustical Society of America. 81 [PubMed]

Kewley-Port D, Li X, Zheng Y, Neel AT. (1996). Fundamental frequency effects on thresholds for vowel formant discrimination. The Journal of the Acoustical Society of America. 100 [PubMed]

Kewley-Port D, Watson CS. (1994). Formant-frequency discrimination for isolated English vowels. The Journal of the Acoustical Society of America. 95 [PubMed]

Kiang NYS, Delgutte B. (1984). Speech coding in the auditory nerve: I. Vowel-like sounds. I Vowel-like Sounds J Acoust Soc Am. 75

Klatt DH. (1980). Software for a cascade-parallel formant synthesizer J Acoust Soc Am. 67

Liberman MC. (1978). Auditory-nerve response from cats raised in a low-noise chamber. The Journal of the Acoustical Society of America. 63 [PubMed]

Liberman MC. (1982). The cochlear frequency map for the cat: labeling auditory-nerve fibers of known characteristic frequency. The Journal of the Acoustical Society of America. 72 [PubMed]

Liu C, Kewley-Port D. (2004). Formant discrimination in noise for isolated vowels. The Journal of the Acoustical Society of America. 116 [PubMed]

Mermelstein P. (1978). Difference limens for formant frequencies of steady-state and consonant-bound vowels J Acoust Soc Am. 63

Miller MI, Barta PE, Sachs MB. (1987). Strategies for the representation of a tone in background noise in the temporal aspects of the discharge patterns of auditory-nerve fibers. The Journal of the Acoustical Society of America. 81 [PubMed]

Rhode WS, Geisler CD, Kennedy DT. (1978). Auditory nerve fiber response to wide-band noise and tone combinations. Journal of neurophysiology. 41 [PubMed]

Sachs MB, Voigt HF, Young ED. (1983). Auditory nerve representation of vowels in background noise. Journal of neurophysiology. 50 [PubMed]

Sachs MB, Young ED. (1979). Encoding of steady-state vowels in the auditory nerve: representation in terms of discharge rate. The Journal of the Acoustical Society of America. 66 [PubMed]

Siebert WM. (1965). Some implications of the stochastic behavior of primary auditory neurons. Kybernetik. 2 [PubMed]

Siebert WM. (1968). Stimulus transformation in the peripheral auditory system. Recognizing patterns.

Siebert WM. (1970). Frequency discrimination in the auditory system: place or periodicity mechanisms? Proc IEEE. 58

Smith RL, Brachman ML. (1980). Response modulation of auditory-nerve fibers by AM stimuli: effects of average intensity. Hearing research. 2 [PubMed]

Srulovicz P, Goldstein JL. (1983). A central spectrum model: a synthesis of auditory-nerve timing and place cues in monaural communication of frequency spectrum. The Journal of the Acoustical Society of America. 73 [PubMed]

Tan Q. (2003). Computational and statistical analysis of auditory peripheral processing for vowel-like signals Ph.D. dissertation.

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]

Tan Q, Carney LH. (2005). Encoding of vowel-like sounds in the auditory nerve: model predictions of discrimination performance. The Journal of the Acoustical Society of America. 117 [PubMed]

Uhlenbeck GE, Lawson JL. (1950). Threshold signals.

Wier CC, Jesteadt W, Green DM. (1977). Frequency discrimination as a function of frequency and sensation level. The Journal of the Acoustical Society of America. 61 [PubMed]

Young ED, Barta PE. (1986). Rate responses of auditory nerve fibers to tones in noise near masked threshold. The Journal of the Acoustical Society of America. 79 [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]

References and models that cite this paper
This website requires cookies and limited processing of your personal data in order to function. By continuing to browse or otherwise use this site, you are agreeing to this use. See our Privacy policy and how to cite and terms of use.