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Erschienen in: Journal of the Association for Research in Otolaryngology 4/2018

09.05.2018 | Review Article

Supra-Threshold Hearing and Fluctuation Profiles: Implications for Sensorineural and Hidden Hearing Loss

verfasst von: Laurel H. Carney

Erschienen in: Journal of the Association for Research in Otolaryngology | Ausgabe 4/2018

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Abstract

An important topic in contemporary auditory science is supra-threshold hearing. Difficulty hearing at conversational speech levels in background noise has long been recognized as a problem of sensorineural hearing loss, including that associated with aging (presbyacusis). Such difficulty in listeners with normal thresholds has received more attention recently, especially associated with descriptions of synaptopathy, the loss of auditory nerve (AN) fibers as a result of noise exposure or aging. Synaptopathy has been reported to cause a disproportionate loss of low- and medium-spontaneous rate (L/MSR) AN fibers. Several studies of synaptopathy have assumed that the wide dynamic ranges of L/MSR AN fiber rates are critical for coding supra-threshold sounds. First, this review will present data from the literature that argues against a direct role for average discharge rates of L/MSR AN fibers in coding sounds at moderate to high sound levels. Second, the encoding of sounds at supra-threshold levels is examined. A key assumption in many studies is that saturation of AN fiber discharge rates limits neural encoding, even though the majority of AN fibers, high-spontaneous rate (HSR) fibers, have saturated average rates at conversational sound levels. It is argued here that the cross-frequency profile of low-frequency neural fluctuation amplitudes, not average rates, encodes complex sounds. As described below, this fluctuation-profile coding mechanism benefits from both saturation of inner hair cell (IHC) transduction and average rate saturation associated with the IHC-AN synapse. Third, the role of the auditory efferent system, which receives inputs from L/MSR fibers, is revisited in the context of fluctuation-profile coding. The auditory efferent system is hypothesized to maintain and enhance neural fluctuation profiles. Lastly, central mechanisms sensitive to neural fluctuations are reviewed. Low-frequency fluctuations in AN responses are accentuated by cochlear nucleus neurons which, either directly or via other brainstem nuclei, relay fluctuation profiles to the inferior colliculus (IC). IC neurons are sensitive to the frequency and amplitude of low-frequency fluctuations and convert fluctuation profiles from the periphery into a phase-locked rate profile that is robust across a wide range of sound levels and in background noise. The descending projection from the midbrain (IC) to the efferent system completes a functional loop that, combined with inputs from the L/MSR pathway, is hypothesized to maintain “sharp” supra-threshold hearing, reminiscent of visual mechanisms that regulate optical accommodation. Examples from speech coding and detection in noise are reviewed. Implications for the effects of synaptopathy on control mechanisms hypothesized to influence supra-threshold hearing are discussed. This framework for understanding neural coding and control mechanisms for supra-threshold hearing suggests strategies for the design of novel hearing aid signal-processing and electrical stimulation patterns for cochlear implants.
Literatur
Zurück zum Zitat Almishaal A, Jennings SG (2016) Effects of a precursor on amplitude modulation detection are consistent with efferent feedback. J Acoust Soc Am 139:2155–2155CrossRef Almishaal A, Jennings SG (2016) Effects of a precursor on amplitude modulation detection are consistent with efferent feedback. J Acoust Soc Am 139:2155–2155CrossRef
Zurück zum Zitat Arnott RH, Wallace MN, Shackleton TM, Palmer AR (2004) Onset neurones in the anteroventral cochlear nucleus project to the dorsal cochlear nucleus. J Assoc Res Otolaryngol 5:153–170CrossRefPubMedPubMedCentral Arnott RH, Wallace MN, Shackleton TM, Palmer AR (2004) Onset neurones in the anteroventral cochlear nucleus project to the dorsal cochlear nucleus. J Assoc Res Otolaryngol 5:153–170CrossRefPubMedPubMedCentral
Zurück zum Zitat Babalian AL, Ryugo DK, Vischer MW, Rouiller EM (1999) Inhibitory synaptic interactions between cochlear nuclei: evidence from an in vitro whole brain study. Neuroreport 10:1913–1917CrossRefPubMed Babalian AL, Ryugo DK, Vischer MW, Rouiller EM (1999) Inhibitory synaptic interactions between cochlear nuclei: evidence from an in vitro whole brain study. Neuroreport 10:1913–1917CrossRefPubMed
Zurück zum Zitat Beattie RC, Raffin MJ (1985) Reliability of threshold, slope, and PB max for monosyllabic words. J Speech Hear Disord 50:166–178CrossRefPubMed Beattie RC, Raffin MJ (1985) Reliability of threshold, slope, and PB max for monosyllabic words. J Speech Hear Disord 50:166–178CrossRefPubMed
Zurück zum Zitat Beattie RC, Edgerton BJ, Svihovec DV (1977) A comparison of the Auditec of St. Louis cassette recordings of NU-6 and CID W-22 on a normal-hearing population. J Speech Hear Disord 42:60–64CrossRefPubMed Beattie RC, Edgerton BJ, Svihovec DV (1977) A comparison of the Auditec of St. Louis cassette recordings of NU-6 and CID W-22 on a normal-hearing population. J Speech Hear Disord 42:60–64CrossRefPubMed
Zurück zum Zitat Bharadwaj HM, Verhulst S, Shaheen L, Liberman MC, Shinn-Cunningham BG (2014) Cochlear neuropathy and the coding of supra-threshold sound. Front Syst Neurosci 8:26CrossRefPubMedPubMedCentral Bharadwaj HM, Verhulst S, Shaheen L, Liberman MC, Shinn-Cunningham BG (2014) Cochlear neuropathy and the coding of supra-threshold sound. Front Syst Neurosci 8:26CrossRefPubMedPubMedCentral
Zurück zum Zitat Blackburn CC, Sachs MB (1990) The representations of the steady-state vowel sound /Ɛ/ in the discharge patterns of cat anteroventral cochlear nucleus neurons. J Neurophysiol 63:1191–1212CrossRefPubMed Blackburn CC, Sachs MB (1990) The representations of the steady-state vowel sound /Ɛ/ in the discharge patterns of cat anteroventral cochlear nucleus neurons. J Neurophysiol 63:1191–1212CrossRefPubMed
Zurück zum Zitat Cant NB (1993) The synaptic organization of the ventral cochlear nucleus of the cat: the peripheral cap of small cells. In: Merchán MA, Juiz JM, Godfrey DA, Mugnaini E (eds) The mammalian cochlear nuclei: organization and function. Springer, New York, pp 91–105CrossRef Cant NB (1993) The synaptic organization of the ventral cochlear nucleus of the cat: the peripheral cap of small cells. In: Merchán MA, Juiz JM, Godfrey DA, Mugnaini E (eds) The mammalian cochlear nuclei: organization and function. Springer, New York, pp 91–105CrossRef
Zurück zum Zitat Cant NB (2005) Projections from the cochlear nuclear complex to the inferior colliculus. In: Winer JA, Schreiner CE (eds) The inferior colliculus. Springer, New York, pp 115–131CrossRef Cant NB (2005) Projections from the cochlear nuclear complex to the inferior colliculus. In: Winer JA, Schreiner CE (eds) The inferior colliculus. Springer, New York, pp 115–131CrossRef
Zurück zum Zitat Cant NB, Benson CG (2003) Parallel auditory pathways: projection patterns of the different neuronal populations in the dorsal and ventral cochlear nuclei. Brain Res Bull 60:457–474CrossRefPubMed Cant NB, Benson CG (2003) Parallel auditory pathways: projection patterns of the different neuronal populations in the dorsal and ventral cochlear nuclei. Brain Res Bull 60:457–474CrossRefPubMed
Zurück zum Zitat Cant NB, Oliver DL (2018) Overview of the organization of the mammalian auditory pathways: projection pathways and intrinsic microcircuits. In: Oliver DL, Cant NB, Fay RR, Popper AN (eds) The mammalian auditory pathways: synaptic organization and microcircuits. Springer handbook of auditory research. Springer, New York Cant NB, Oliver DL (2018) Overview of the organization of the mammalian auditory pathways: projection pathways and intrinsic microcircuits. In: Oliver DL, Cant NB, Fay RR, Popper AN (eds) The mammalian auditory pathways: synaptic organization and microcircuits. Springer handbook of auditory research. Springer, New York
Zurück zum Zitat Carlyon RP (1987) A release from masking by continuous, random, notched noise. J Acoust Soc Am 81:418–426CrossRefPubMed Carlyon RP (1987) A release from masking by continuous, random, notched noise. J Acoust Soc Am 81:418–426CrossRefPubMed
Zurück zum Zitat Carlyon R (1989) Changes in the masked thresholds of brief tones produced by prior bursts of noise. Hear Res 41:223–235CrossRefPubMed Carlyon R (1989) Changes in the masked thresholds of brief tones produced by prior bursts of noise. Hear Res 41:223–235CrossRefPubMed
Zurück zum Zitat Carlyon RP, Moore BC (1984) Intensity discrimination: a severe departure from Weber’s law. J Acoust Soc Am 76:1369–1376CrossRefPubMed Carlyon RP, Moore BC (1984) Intensity discrimination: a severe departure from Weber’s law. J Acoust Soc Am 76:1369–1376CrossRefPubMed
Zurück zum Zitat Carney LH (2018) Fluctuation contrast and speech-on-speech masking: model midbrain responses to simultaneous speech. In: Santurette S, Dau T, Dalsgaard JC, Tranebjærg L, Andersen T, Poulsen T (eds) Adaptive Processes in Hearing, Proceedings of the International Symposium on Auditory and Audiological Research (ISAAR), vol 6. The Danavox Jubilee Foundation, Ballerup, pp 75–82 Carney LH (2018) Fluctuation contrast and speech-on-speech masking: model midbrain responses to simultaneous speech. In: Santurette S, Dau T, Dalsgaard JC, Tranebjærg L, Andersen T, Poulsen T (eds) Adaptive Processes in Hearing, Proceedings of the International Symposium on Auditory and Audiological Research (ISAAR), vol 6. The Danavox Jubilee Foundation, Ballerup, pp 75–82
Zurück zum Zitat Carney LH, Schwarz DM (2014) A Speech Enhancement Strategy based on Midbrain Response Properties, Abstract IHCON meeting. Carney LH, Schwarz DM (2014) A Speech Enhancement Strategy based on Midbrain Response Properties, Abstract IHCON meeting.
Zurück zum Zitat Carney LH, Li T, McDonough JM (2015) Speech coding in the brain: representation of vowel formants by midbrain neurons tuned to sound fluctuations. eNeuro 2 Carney LH, Li T, McDonough JM (2015) Speech coding in the brain: representation of vowel formants by midbrain neurons tuned to sound fluctuations. eNeuro 2
Zurück zum Zitat Carney LH, Kim DO, Kuwada S (2016) Speech coding in the midbrain: effects of sensorineural hearing loss. In Physiology, psychoacoustics and cognition in normal and impaired hearing, Springer. Advances in experimental medicine and biology. 894:427–435 Carney LH, Kim DO, Kuwada S (2016) Speech coding in the midbrain: effects of sensorineural hearing loss. In Physiology, psychoacoustics and cognition in normal and impaired hearing, Springer. Advances in experimental medicine and biology. 894:427–435
Zurück zum Zitat Caspary DM, Ling L, Turner JG, Hughes LF (2008) Inhibitory neurotransmission, plasticity and aging in the mammalian central auditory system. J Exp Biol 211:1781–1791CrossRefPubMedPubMedCentral Caspary DM, Ling L, Turner JG, Hughes LF (2008) Inhibitory neurotransmission, plasticity and aging in the mammalian central auditory system. J Exp Biol 211:1781–1791CrossRefPubMedPubMedCentral
Zurück zum Zitat Cheatham MA, Dallos P (2000) The dynamic range of inner hair cell and organ of Corti responses. J Acoust Soc Am 107:1508–1520CrossRefPubMed Cheatham MA, Dallos P (2000) The dynamic range of inner hair cell and organ of Corti responses. J Acoust Soc Am 107:1508–1520CrossRefPubMed
Zurück zum Zitat Colburn HS, Carney LH, Heinz MG (2003) Quantifying the information in auditory-nerve responses for level discrimination. J Assoc Res Otolaryngol 4:294–311CrossRefPubMed Colburn HS, Carney LH, Heinz MG (2003) Quantifying the information in auditory-nerve responses for level discrimination. J Assoc Res Otolaryngol 4:294–311CrossRefPubMed
Zurück zum Zitat Cooper NP, Yates GK (1994) Nonlinear input-output functions derived from the responses of guinea-pig cochlear nerve fibres: variations with characteristic frequency. Hear Res 78:221–234CrossRefPubMed Cooper NP, Yates GK (1994) Nonlinear input-output functions derived from the responses of guinea-pig cochlear nerve fibres: variations with characteristic frequency. Hear Res 78:221–234CrossRefPubMed
Zurück zum Zitat Dallos P (1985) Response characteristics of mammalian cochlear hair cells. J Neurosci 5:1591–1608CrossRefPubMed Dallos P (1985) Response characteristics of mammalian cochlear hair cells. J Neurosci 5:1591–1608CrossRefPubMed
Zurück zum Zitat Dallos P (1986) Neurobiology of cochlear inner and outer hair cells: intracellular recordings. Hear Res 22:185–198CrossRefPubMed Dallos P (1986) Neurobiology of cochlear inner and outer hair cells: intracellular recordings. Hear Res 22:185–198CrossRefPubMed
Zurück zum Zitat Dau T, Kollmeier B, Kohlrausch A (1997a) Modeling auditory processing of amplitude modulation. I. Detection and masking with narrow-band carriers. J Acoust Soc Am 102:2892–2905CrossRefPubMed Dau T, Kollmeier B, Kohlrausch A (1997a) Modeling auditory processing of amplitude modulation. I. Detection and masking with narrow-band carriers. J Acoust Soc Am 102:2892–2905CrossRefPubMed
Zurück zum Zitat Dau T, Kollmeier B, Kohlrausch A (1997b) Modeling auditory processing of amplitude modulation. II. Spectral and temporal integration. J Acoust Soc Am 102:2906–2919CrossRefPubMed Dau T, Kollmeier B, Kohlrausch A (1997b) Modeling auditory processing of amplitude modulation. II. Spectral and temporal integration. J Acoust Soc Am 102:2906–2919CrossRefPubMed
Zurück zum Zitat Davis KA, Hancock KE, Delgutte B (2010) Computational models of inferior colliculus neurons. In: Meddis R, Lopez-Poveda E, Fay RR, Popper AN (eds) Computational models of the auditory system. Springer, New York, pp 129–176CrossRef Davis KA, Hancock KE, Delgutte B (2010) Computational models of inferior colliculus neurons. In: Meddis R, Lopez-Poveda E, Fay RR, Popper AN (eds) Computational models of the auditory system. Springer, New York, pp 129–176CrossRef
Zurück zum Zitat Dean I, Harper NS, McAlpine D (2005) Neural population coding of sound level adapts to stimulus statistics. Nat Neurosci 8:1684–1689CrossRefPubMed Dean I, Harper NS, McAlpine D (2005) Neural population coding of sound level adapts to stimulus statistics. Nat Neurosci 8:1684–1689CrossRefPubMed
Zurück zum Zitat Delano PH, Elgueda D, Hamame CM, Robles L (2007) Selective attention to visual stimuli reduces cochlear sensitivity in chinchillas. J Neurosci 27:4146–4153CrossRefPubMed Delano PH, Elgueda D, Hamame CM, Robles L (2007) Selective attention to visual stimuli reduces cochlear sensitivity in chinchillas. J Neurosci 27:4146–4153CrossRefPubMed
Zurück zum Zitat Delgutte B (1987) Peripheral auditory processing of speech information: implications from a physiological study of intensity discrimination. In: Schouten ME (ed) The psychophysics of speech perception. Springer, Netherlands, pp 333–353CrossRef Delgutte B (1987) Peripheral auditory processing of speech information: implications from a physiological study of intensity discrimination. In: Schouten ME (ed) The psychophysics of speech perception. Springer, Netherlands, pp 333–353CrossRef
Zurück zum Zitat Delgutte B (1996) Physiological models for basic auditory percepts. In: Hawkins HL, McMullen TA, Fay RR (eds) Auditory computation. Springer, New York, pp 157–220CrossRef Delgutte B (1996) Physiological models for basic auditory percepts. In: Hawkins HL, McMullen TA, Fay RR (eds) Auditory computation. Springer, New York, pp 157–220CrossRef
Zurück zum Zitat Delgutte B, Kiang NY (1984a) Speech coding in the auditory nerve: I. Vowel-like sounds. J Acoust Soc Am 75:866–878CrossRefPubMed Delgutte B, Kiang NY (1984a) Speech coding in the auditory nerve: I. Vowel-like sounds. J Acoust Soc Am 75:866–878CrossRefPubMed
Zurück zum Zitat Delgutte B, Kiang NY (1984b) Speech coding in the auditory nerve: V. Vowels in background noise. J Acoust Soc Am 75:908–918CrossRefPubMed Delgutte B, Kiang NY (1984b) Speech coding in the auditory nerve: V. Vowels in background noise. J Acoust Soc Am 75:908–918CrossRefPubMed
Zurück zum Zitat Deng L, Geisler CD (1987) Responses of auditory-nerve fibers to nasal consonant–vowel syllables. J Acoust Soc Am 82:1977–1988CrossRefPubMed Deng L, Geisler CD (1987) Responses of auditory-nerve fibers to nasal consonant–vowel syllables. J Acoust Soc Am 82:1977–1988CrossRefPubMed
Zurück zum Zitat Deng L, Geisler CD, Greenberg S (1987) Responses of auditory-nerve fibers to multiple-tone complexes. J Acoust Soc Am 82:1989–2000CrossRefPubMed Deng L, Geisler CD, Greenberg S (1987) Responses of auditory-nerve fibers to multiple-tone complexes. J Acoust Soc Am 82:1989–2000CrossRefPubMed
Zurück zum Zitat Doucet JR, Ryugo DK (2006) Structural and functional classes of multipolar cells in the ventral cochlear nucleus. Anat Rec 288:331–344CrossRef Doucet JR, Ryugo DK (2006) Structural and functional classes of multipolar cells in the ventral cochlear nucleus. Anat Rec 288:331–344CrossRef
Zurück zum Zitat Dragicevic CD, Aedo C, León A, Bowen M, Jara N, Terreros G, Robles L, Delano PH (2015) The olivocochlear reflex strength and cochlear sensitivity are independently modulated by auditory cortex microstimulation. J Assoc Res Otolaryngol 16:223–240CrossRefPubMedPubMedCentral Dragicevic CD, Aedo C, León A, Bowen M, Jara N, Terreros G, Robles L, Delano PH (2015) The olivocochlear reflex strength and cochlear sensitivity are independently modulated by auditory cortex microstimulation. J Assoc Res Otolaryngol 16:223–240CrossRefPubMedPubMedCentral
Zurück zum Zitat Encina-Llamas G, Aravindakshan P, Harte JM, Dau T, Kujawa SG, Shinn-Cunningham B, Epp B (2017) Hidden hearing loss with envelope following responses (EFRs): the off-frequency problem. ARO Abstracts 40:4 Encina-Llamas G, Aravindakshan P, Harte JM, Dau T, Kujawa SG, Shinn-Cunningham B, Epp B (2017) Hidden hearing loss with envelope following responses (EFRs): the off-frequency problem. ARO Abstracts 40:4
Zurück zum Zitat Fan L, Carney LH (2017) Neural responses in the inferior colliculus to diotic tone-in-noise stimuli support detection based on envelope and neural fluctuation, Abstract, Association for Research in Otolaryngology 40:250 Fan L, Carney LH (2017) Neural responses in the inferior colliculus to diotic tone-in-noise stimuli support detection based on envelope and neural fluctuation, Abstract, Association for Research in Otolaryngology 40:250
Zurück zum Zitat Fant G (1960) Acoustic theory of speech perception. Mouton, The Hague Fant G (1960) Acoustic theory of speech perception. Mouton, The Hague
Zurück zum Zitat Fettiplace R, Ricci AJ (2006) Mechanoelectrical transduction in auditory hair cells. In: Eatock RA, Fay RR (eds) Vertebrate hair cells. Springer, New York, pp 154–203CrossRef Fettiplace R, Ricci AJ (2006) Mechanoelectrical transduction in auditory hair cells. In: Eatock RA, Fay RR (eds) Vertebrate hair cells. Springer, New York, pp 154–203CrossRef
Zurück zum Zitat Florentine M, Buus SR (1981) An excitation-pattern model for intensity discrimination. J Acoust Soc Am 70:1646–1654CrossRef Florentine M, Buus SR (1981) An excitation-pattern model for intensity discrimination. J Acoust Soc Am 70:1646–1654CrossRef
Zurück zum Zitat Florentine M, Buus SR, Mason CR (1987) Level discrimination as a function of level for tones from 0.25 to 16 kHz. J Acoust Soc Am 81:1528–1541CrossRefPubMed Florentine M, Buus SR, Mason CR (1987) Level discrimination as a function of level for tones from 0.25 to 16 kHz. J Acoust Soc Am 81:1528–1541CrossRefPubMed
Zurück zum Zitat Forrest TG, Green DM (1987) Detection of partially filled gaps in noise and the temporal modulation transfer function. J Acoust Soc Am 82:1933–1943CrossRefPubMed Forrest TG, Green DM (1987) Detection of partially filled gaps in noise and the temporal modulation transfer function. J Acoust Soc Am 82:1933–1943CrossRefPubMed
Zurück zum Zitat Freyman RL, Griffin AM, Oxenham AJ (2012) Intelligibility of whispered speech in stationary and modulated noise maskers. J Acoust Soc Am 132:2514–2523CrossRefPubMedPubMedCentral Freyman RL, Griffin AM, Oxenham AJ (2012) Intelligibility of whispered speech in stationary and modulated noise maskers. J Acoust Soc Am 132:2514–2523CrossRefPubMedPubMedCentral
Zurück zum Zitat Fuente A (2015) The olivocochlear system and protection from acoustic trauma: a mini literature review. Front Syst Neurosci 9(94):1–6 Fuente A (2015) The olivocochlear system and protection from acoustic trauma: a mini literature review. Front Syst Neurosci 9(94):1–6
Zurück zum Zitat Furman AC, Kujawa SG, Liberman MC (2013) Noise-induced cochlear neuropathy is selective for fibers with low spontaneous rates. J Neurophysiol 110:577–586CrossRefPubMedPubMedCentral Furman AC, Kujawa SG, Liberman MC (2013) Noise-induced cochlear neuropathy is selective for fibers with low spontaneous rates. J Neurophysiol 110:577–586CrossRefPubMedPubMedCentral
Zurück zum Zitat Gai Y, Carney LH (2006) Temporal measures and neural strategies for detection of tones in noise based on responses in anteroventral cochlear nucleus. J Neurophysiol 96:2451–2464CrossRefPubMedPubMedCentral Gai Y, Carney LH (2006) Temporal measures and neural strategies for detection of tones in noise based on responses in anteroventral cochlear nucleus. J Neurophysiol 96:2451–2464CrossRefPubMedPubMedCentral
Zurück zum Zitat Gai Y, Carney LH (2008) Influence of inhibitory inputs on rate and timing of responses in the anteroventral cochlear nucleus. J Neurophysiol 99:1077–1095CrossRefPubMedPubMedCentral Gai Y, Carney LH (2008) Influence of inhibitory inputs on rate and timing of responses in the anteroventral cochlear nucleus. J Neurophysiol 99:1077–1095CrossRefPubMedPubMedCentral
Zurück zum Zitat Ghoshal S, Kim DO (1996) Marginal shell of the anteroventral cochlear nucleus: intensity coding in single units of the unanesthetized, decerebrate cat. Neurosci Lett 205:71–74CrossRefPubMed Ghoshal S, Kim DO (1996) Marginal shell of the anteroventral cochlear nucleus: intensity coding in single units of the unanesthetized, decerebrate cat. Neurosci Lett 205:71–74CrossRefPubMed
Zurück zum Zitat Green DM (1988) Profile analysis: auditory intensity discrimination (no. 13). Oxford University Press, Oxford Green DM (1988) Profile analysis: auditory intensity discrimination (no. 13). Oxford University Press, Oxford
Zurück zum Zitat Guinan JJ (2011) Physiology of the medial and lateral olivocochlear systems. In: Ryugo DK, Fay RR, Popper AN (eds) Auditory and vestibular efferents. Springer, New York, pp 39–81CrossRef Guinan JJ (2011) Physiology of the medial and lateral olivocochlear systems. In: Ryugo DK, Fay RR, Popper AN (eds) Auditory and vestibular efferents. Springer, New York, pp 39–81CrossRef
Zurück zum Zitat Guinan Jr JJ (1996) Physiology of olivocochlear efferents. In: Dallos P, Fay RR (eds) The cochlea. Springer, New York, pp 435–502CrossRef Guinan Jr JJ (1996) Physiology of olivocochlear efferents. In: Dallos P, Fay RR (eds) The cochlea. Springer, New York, pp 435–502CrossRef
Zurück zum Zitat Gummer M, Yates GK, Johnstone BM (1988) Modulation transfer function of efferent neurones in the guinea pig cochlea. Hear Res 36:41–51CrossRefPubMed Gummer M, Yates GK, Johnstone BM (1988) Modulation transfer function of efferent neurones in the guinea pig cochlea. Hear Res 36:41–51CrossRefPubMed
Zurück zum Zitat Harrison JM, Howe ME (1974) Anatomy of the afferent auditory nervous system of mammals. In: Keidel WD, Neff WD (eds) Auditory system. Springer, Berlin Heidelberg, pp 283–336CrossRef Harrison JM, Howe ME (1974) Anatomy of the afferent auditory nervous system of mammals. In: Keidel WD, Neff WD (eds) Auditory system. Springer, Berlin Heidelberg, pp 283–336CrossRef
Zurück zum Zitat Heinz MG, Colburn HS, Carney LH (2001a) Evaluating auditory performance limits: I. One-parameter discrimination using a computational model for the auditory nerve. Neural Comput 13:2273–2316CrossRefPubMed Heinz MG, Colburn HS, Carney LH (2001a) Evaluating auditory performance limits: I. One-parameter discrimination using a computational model for the auditory nerve. Neural Comput 13:2273–2316CrossRefPubMed
Zurück zum Zitat Heinz MG, Colburn HS, Carney LH (2001b) Rate and timing cues associated with the cochlear amplifier: level discrimination based on monaural cross-frequency coincidence detection. J Acoust Soc Am 110:2065–2084CrossRefPubMed Heinz MG, Colburn HS, Carney LH (2001b) Rate and timing cues associated with the cochlear amplifier: level discrimination based on monaural cross-frequency coincidence detection. J Acoust Soc Am 110:2065–2084CrossRefPubMed
Zurück zum Zitat Helmholtz HV (1909) In: JPC S (ed) Physiological optics, vol 3. Optical Society of America, Washington, DC Helmholtz HV (1909) In: JPC S (ed) Physiological optics, vol 3. Optical Society of America, Washington, DC
Zurück zum Zitat Henry KS, Kale S, Heinz MG (2014) Noise-induced hearing loss increases the temporal precision of complex envelope coding by auditory-nerve fibers. Front Syst Neurosci 8:1–10CrossRef Henry KS, Kale S, Heinz MG (2014) Noise-induced hearing loss increases the temporal precision of complex envelope coding by auditory-nerve fibers. Front Syst Neurosci 8:1–10CrossRef
Zurück zum Zitat Henry KS, Abrams KS, Forst J, Mender MJ, Neilans EG, Idrobo F, Carney LH (2017) Midbrain synchrony to envelope structure supports behavioral sensitivity to single-formant vowel-like sounds in noise. J Assoc Res Otolaryngol 18:165–181CrossRefPubMed Henry KS, Abrams KS, Forst J, Mender MJ, Neilans EG, Idrobo F, Carney LH (2017) Midbrain synchrony to envelope structure supports behavioral sensitivity to single-formant vowel-like sounds in noise. J Assoc Res Otolaryngol 18:165–181CrossRefPubMed
Zurück zum Zitat Hienz RD, Stiles P, May BJ (1998) Effects of bilateral olivocochlear lesions on vowel formant discrimination in cats. Hear Res 116:10–20CrossRefPubMed Hienz RD, Stiles P, May BJ (1998) Effects of bilateral olivocochlear lesions on vowel formant discrimination in cats. Hear Res 116:10–20CrossRefPubMed
Zurück zum Zitat Hillenbrand J, Getty LA, Clark MJ, Wheeler K (1995) Acoustic characteristics of American English vowels. J Acoust Soc Am 97:3099–3111CrossRefPubMed Hillenbrand J, Getty LA, Clark MJ, Wheeler K (1995) Acoustic characteristics of American English vowels. J Acoust Soc Am 97:3099–3111CrossRefPubMed
Zurück zum Zitat Hirsh IJ, Davis H, Silverman SR, Reynolds EG, Eldert E, Benson RW (1952) Development of materials for speech audiometry. Journal of Speech and Hearing Disorders 17:321–337CrossRefPubMed Hirsh IJ, Davis H, Silverman SR, Reynolds EG, Eldert E, Benson RW (1952) Development of materials for speech audiometry. Journal of Speech and Hearing Disorders 17:321–337CrossRefPubMed
Zurück zum Zitat Huet A, Batrel C, Tang Y, Desmadryl G, Wang J, Puel JL, Bourien J (2016) Sound coding in the auditory nerve of gerbils. Hear Res 338:32–39CrossRefPubMed Huet A, Batrel C, Tang Y, Desmadryl G, Wang J, Puel JL, Bourien J (2016) Sound coding in the auditory nerve of gerbils. Hear Res 338:32–39CrossRefPubMed
Zurück zum Zitat Huffman RF, Henson OW (1990) The descending auditory pathway and acousticomotor systems: connections with the inferior colliculus. Brain Res Rev 15:295–323CrossRefPubMed Huffman RF, Henson OW (1990) The descending auditory pathway and acousticomotor systems: connections with the inferior colliculus. Brain Res Rev 15:295–323CrossRefPubMed
Zurück zum Zitat Jackson BS, Carney LH (2005) The spontaneous-rate histogram of the auditory nerve can be explained by only two or three spontaneous rates and long-range dependence. J Assoc Res Otolaryngol 6:148–159CrossRefPubMedPubMedCentral Jackson BS, Carney LH (2005) The spontaneous-rate histogram of the auditory nerve can be explained by only two or three spontaneous rates and long-range dependence. J Assoc Res Otolaryngol 6:148–159CrossRefPubMedPubMedCentral
Zurück zum Zitat Jenkins WM, Masterton RB (1982) Sound localization: effects of unilateral lesions in central auditory system. J Neurophysiol 47:987–1016CrossRefPubMed Jenkins WM, Masterton RB (1982) Sound localization: effects of unilateral lesions in central auditory system. J Neurophysiol 47:987–1016CrossRefPubMed
Zurück zum Zitat Jennings SG, Strickland EA, Heinz MG (2009) Precursor effects on behavioral estimates of frequency selectivity and gain in forward masking. J Acoust Soc Am 125:2172–2181CrossRefPubMedPubMedCentral Jennings SG, Strickland EA, Heinz MG (2009) Precursor effects on behavioral estimates of frequency selectivity and gain in forward masking. J Acoust Soc Am 125:2172–2181CrossRefPubMedPubMedCentral
Zurück zum Zitat Jesteadt W, Schairer KS, Neff DL (2005) Effect of variability in level on forward masking and on increment detection. J Acoust Soc Am 118:325–337CrossRefPubMed Jesteadt W, Schairer KS, Neff DL (2005) Effect of variability in level on forward masking and on increment detection. J Acoust Soc Am 118:325–337CrossRefPubMed
Zurück zum Zitat Johnson DH (1980) The relationship between spike rate and synchrony in responses of auditory-nerve fibers to single tones. J Acoust Soc Am 68:1115–1122CrossRefPubMed Johnson DH (1980) The relationship between spike rate and synchrony in responses of auditory-nerve fibers to single tones. J Acoust Soc Am 68:1115–1122CrossRefPubMed
Zurück zum Zitat Joris PX (2003) Interaural time sensitivity dominated by cochlea-induced envelope patterns. J Neurosci 23:6345–6350CrossRefPubMed Joris PX (2003) Interaural time sensitivity dominated by cochlea-induced envelope patterns. J Neurosci 23:6345–6350CrossRefPubMed
Zurück zum Zitat Joris PX, Yin TC (1992) Responses to amplitude-modulated tones in the auditory nerve of the cat. J Acoust Soc Am 91:215–232CrossRefPubMed Joris PX, Yin TC (1992) Responses to amplitude-modulated tones in the auditory nerve of the cat. J Acoust Soc Am 91:215–232CrossRefPubMed
Zurück zum Zitat Joris PX, Schreiner CE, Rees A (2004) Neural processing of amplitude-modulated sounds. Physiol Rev 84:541–577CrossRefPubMed Joris PX, Schreiner CE, Rees A (2004) Neural processing of amplitude-modulated sounds. Physiol Rev 84:541–577CrossRefPubMed
Zurück zum Zitat Kidd Jr G, Mason CR, Brantley MA, Owen GA (1989) Roving-level tone-in-noise detection. J Acoust Soc Am 86:1310–1317CrossRef Kidd Jr G, Mason CR, Brantley MA, Owen GA (1989) Roving-level tone-in-noise detection. J Acoust Soc Am 86:1310–1317CrossRef
Zurück zum Zitat Kim DO, Zahorik P, Carney LH, Bishop BB, Kuwada S (2015) Auditory distance coding in rabbit midbrain neurons and human perception: monaural amplitude modulation depth as a cue. J Neurosci 35:5360–5372CrossRefPubMedPubMedCentral Kim DO, Zahorik P, Carney LH, Bishop BB, Kuwada S (2015) Auditory distance coding in rabbit midbrain neurons and human perception: monaural amplitude modulation depth as a cue. J Neurosci 35:5360–5372CrossRefPubMedPubMedCentral
Zurück zum Zitat Kohlrausch A, Püschel D, Alphei H (1992) Temporal resolution and modulation analysis in models of the auditory system. The Auditory Processing of Speech: From Sounds to Words 10:85–98 Kohlrausch A, Püschel D, Alphei H (1992) Temporal resolution and modulation analysis in models of the auditory system. The Auditory Processing of Speech: From Sounds to Words 10:85–98
Zurück zum Zitat Kohlrausch A, Fassel R, van der Heijden M, Kortekaas R, van de Par S, Oxenham AJ, Püschel D (1997) Detection of tones in low-noise noise: further evidence for the role of envelope fluctuations. Acta Acustica United with Acustica 83:659–669 Kohlrausch A, Fassel R, van der Heijden M, Kortekaas R, van de Par S, Oxenham AJ, Püschel D (1997) Detection of tones in low-noise noise: further evidence for the role of envelope fluctuations. Acta Acustica United with Acustica 83:659–669
Zurück zum Zitat Krishna BS, Semple MN (2000) Auditory temporal processing: responses to sinusoidally amplitude-modulated tones in the inferior colliculus. J Neurophysiol 84:255–273CrossRefPubMed Krishna BS, Semple MN (2000) Auditory temporal processing: responses to sinusoidally amplitude-modulated tones in the inferior colliculus. J Neurophysiol 84:255–273CrossRefPubMed
Zurück zum Zitat Kujawa SG, Liberman MC (2009) Adding insult to injury: cochlear nerve degeneration after “temporary” noise-induced hearing loss. J Neurosci 29:14077–14085CrossRefPubMedPubMedCentral Kujawa SG, Liberman MC (2009) Adding insult to injury: cochlear nerve degeneration after “temporary” noise-induced hearing loss. J Neurosci 29:14077–14085CrossRefPubMedPubMedCentral
Zurück zum Zitat Kujawa SG, Liberman MC (2015) Synaptopathy in the noise-exposed and aging cochlea: primary neural degeneration in acquired sensorineural hearing loss. Hear Res 330:191–199CrossRefPubMedPubMedCentral Kujawa SG, Liberman MC (2015) Synaptopathy in the noise-exposed and aging cochlea: primary neural degeneration in acquired sensorineural hearing loss. Hear Res 330:191–199CrossRefPubMedPubMedCentral
Zurück zum Zitat Langner G, Schreiner CE (1988) Periodicity coding in the inferior colliculus of the cat. I. Neuronal mechanisms. J Neurophysiol 60:1799–1822CrossRefPubMed Langner G, Schreiner CE (1988) Periodicity coding in the inferior colliculus of the cat. I. Neuronal mechanisms. J Neurophysiol 60:1799–1822CrossRefPubMed
Zurück zum Zitat Leake PA, Snyder RL (1989) Topographic organization of the central projections of the spiral ganglion in cats. J Comp Neurol 281:612–629CrossRefPubMed Leake PA, Snyder RL (1989) Topographic organization of the central projections of the spiral ganglion in cats. J Comp Neurol 281:612–629CrossRefPubMed
Zurück zum Zitat Lentz JJ, Richards VM, Matiasek MR (1999) Different auditory filter bandwidth estimates based on profile analysis, notched noise, and hybrid tasks. J Acoust Soc Am 106:2779–2792CrossRefPubMed Lentz JJ, Richards VM, Matiasek MR (1999) Different auditory filter bandwidth estimates based on profile analysis, notched noise, and hybrid tasks. J Acoust Soc Am 106:2779–2792CrossRefPubMed
Zurück zum Zitat Liberman MC (1978) Auditory-nerve response from cats raised in a low-noise chamber. J Acoust Soc Am 63:442–455CrossRefPubMed Liberman MC (1978) Auditory-nerve response from cats raised in a low-noise chamber. J Acoust Soc Am 63:442–455CrossRefPubMed
Zurück zum Zitat Liberman MC (1991) Central projections of auditory-nerve fibers of differing spontaneous rate. I. Anteroventral cochlear nucleus. J Comp Neurol 313:240–258CrossRefPubMed Liberman MC (1991) Central projections of auditory-nerve fibers of differing spontaneous rate. I. Anteroventral cochlear nucleus. J Comp Neurol 313:240–258CrossRefPubMed
Zurück zum Zitat Lobarinas E, Salvi R, Ding D (2013) Insensitivity of the audiogram to carboplatin induced inner hair cell loss in chinchillas. Hear Res 302:113–120CrossRefPubMed Lobarinas E, Salvi R, Ding D (2013) Insensitivity of the audiogram to carboplatin induced inner hair cell loss in chinchillas. Hear Res 302:113–120CrossRefPubMed
Zurück zum Zitat Lopez-Poveda EA (2014) Why do I hear but not understand? Stochastic undersampling as a model of degraded neural encoding of speech. Front Neurosci 8:1–7CrossRef Lopez-Poveda EA (2014) Why do I hear but not understand? Stochastic undersampling as a model of degraded neural encoding of speech. Front Neurosci 8:1–7CrossRef
Zurück zum Zitat Lopez-Poveda EA, Eustaquio-Martín A (2006) A biophysical model of the inner hair cell: the contribution of potassium currents to peripheral auditory compression. J Assoc Res Otolaryngol 7:218–235CrossRefPubMedPubMedCentral Lopez-Poveda EA, Eustaquio-Martín A (2006) A biophysical model of the inner hair cell: the contribution of potassium currents to peripheral auditory compression. J Assoc Res Otolaryngol 7:218–235CrossRefPubMedPubMedCentral
Zurück zum Zitat Lowen SB, Teich MC (1996) The periodogram and Allan variance reveal fractal exponents greater than unity in auditory-nerve spike trains. J Acoust Soc Am 99:3585–3591CrossRefPubMed Lowen SB, Teich MC (1996) The periodogram and Allan variance reveal fractal exponents greater than unity in auditory-nerve spike trains. J Acoust Soc Am 99:3585–3591CrossRefPubMed
Zurück zum Zitat Lyzenga J, Horst JW (1997) Frequency discrimination of stylized synthetic vowels with a single formant. J Acoust Soc Am 102:1755–1767CrossRefPubMed Lyzenga J, Horst JW (1997) Frequency discrimination of stylized synthetic vowels with a single formant. J Acoust Soc Am 102:1755–1767CrossRefPubMed
Zurück zum Zitat Maison S, Micheyl C, Collet L (1999) Sinusoidal amplitude modulation alters contralateral noise suppression of evoked otoacoustic emissions in humans. Neuroscience 91:133–138CrossRefPubMed Maison S, Micheyl C, Collet L (1999) Sinusoidal amplitude modulation alters contralateral noise suppression of evoked otoacoustic emissions in humans. Neuroscience 91:133–138CrossRefPubMed
Zurück zum Zitat Manis PB, Xie R, Wang Y, Marrs GS, Spirou GA (2012) The endbulbs of held. In: Trussell L, Popper A, Fay R (eds) Synaptic mechanisms in the auditory system. Springer handbook of auditory research, vol 41. Springer, New York, pp 61–93CrossRef Manis PB, Xie R, Wang Y, Marrs GS, Spirou GA (2012) The endbulbs of held. In: Trussell L, Popper A, Fay R (eds) Synaptic mechanisms in the auditory system. Springer handbook of auditory research, vol 41. Springer, New York, pp 61–93CrossRef
Zurück zum Zitat Mao J, Carney LH (2015) Tone-in-noise detection using envelope cues: comparison of signal-processing-based and physiological models. J Assoc Res Otolaryngol 16:121–133CrossRefPubMed Mao J, Carney LH (2015) Tone-in-noise detection using envelope cues: comparison of signal-processing-based and physiological models. J Assoc Res Otolaryngol 16:121–133CrossRefPubMed
Zurück zum Zitat Mao J, Vosoughi A, Carney LH (2013) Predictions of diotic tone-in-noise detection based on a nonlinear optimal combination of energy, envelope, and fine-structure cues. J Acoust Soc Am 134:396–406CrossRefPubMedPubMedCentral Mao J, Vosoughi A, Carney LH (2013) Predictions of diotic tone-in-noise detection based on a nonlinear optimal combination of energy, envelope, and fine-structure cues. J Acoust Soc Am 134:396–406CrossRefPubMedPubMedCentral
Zurück zum Zitat May BJ, McQuone SJ (1995) Effects of bilateral olivocochlear lesions on pure-tone intensity discrimination in cats. Audit Neurosci 1:385–400PubMedPubMedCentral May BJ, McQuone SJ (1995) Effects of bilateral olivocochlear lesions on pure-tone intensity discrimination in cats. Audit Neurosci 1:385–400PubMedPubMedCentral
Zurück zum Zitat May BJ, Sachs MB (1992) Dynamic range of neural rate responses in the ventral cochlear nucleus of awake cats. J Neurophysiol 68:1589–1602CrossRefPubMed May BJ, Sachs MB (1992) Dynamic range of neural rate responses in the ventral cochlear nucleus of awake cats. J Neurophysiol 68:1589–1602CrossRefPubMed
Zurück zum Zitat May BJ, Budelis J, Niparko JK (2004) Behavioral studies of the olivocochlear efferent system: learning to listen in noise. Arch Otolaryngol Head Neck Surg 130:660–664.CrossRefPubMed May BJ, Budelis J, Niparko JK (2004) Behavioral studies of the olivocochlear efferent system: learning to listen in noise. Arch Otolaryngol Head Neck Surg 130:660–664.CrossRefPubMed
Zurück zum Zitat McGill WJ, Goldberg JP (1968) A study of the near-miss involving Weber’s law and pure-tone intensity discrimination. Atten Percept Psychophys 4:105–109CrossRef McGill WJ, Goldberg JP (1968) A study of the near-miss involving Weber’s law and pure-tone intensity discrimination. Atten Percept Psychophys 4:105–109CrossRef
Zurück zum Zitat Mellott JG, Bickford ME, Schofield BR (2014) Descending projections from auditory cortex to excitatory and inhibitory cells in the nucleus of the brachium of the inferior colliculus. Front Syst Neurosci 8(188):1–15 Mellott JG, Bickford ME, Schofield BR (2014) Descending projections from auditory cortex to excitatory and inhibitory cells in the nucleus of the brachium of the inferior colliculus. Front Syst Neurosci 8(188):1–15
Zurück zum Zitat Micheyl C, Maison S, Carlyon RP, Andéol G, Collet L (1999) Contralateral suppression of transiently evoked otoacoustic emissions by harmonic complex tones in humans. J Acoust Soc Am 105:293–305CrossRefPubMed Micheyl C, Maison S, Carlyon RP, Andéol G, Collet L (1999) Contralateral suppression of transiently evoked otoacoustic emissions by harmonic complex tones in humans. J Acoust Soc Am 105:293–305CrossRefPubMed
Zurück zum Zitat Miller RL, Schilling JR, Franck KR, Young ED (1997) Effects of acoustic trauma on the representation of the vowel /ε/ in cat auditory nerve fibers. J Acoust Soc Am 101:3602–3616CrossRefPubMed Miller RL, Schilling JR, Franck KR, Young ED (1997) Effects of acoustic trauma on the representation of the vowel /ε/ in cat auditory nerve fibers. J Acoust Soc Am 101:3602–3616CrossRefPubMed
Zurück zum Zitat Moore BC (2012) An introduction to the psychology of hearing. Brill, Leiden Moore BC (2012) An introduction to the psychology of hearing. Brill, Leiden
Zurück zum Zitat Moore BC, Glasberg BR (1993) Simulation of the effects of loudness recruitment and threshold elevation on the intelligibility of speech in quiet and in a background of speech. J Acoust Soc Am 94:2050–2062CrossRefPubMed Moore BC, Glasberg BR (1993) Simulation of the effects of loudness recruitment and threshold elevation on the intelligibility of speech in quiet and in a background of speech. J Acoust Soc Am 94:2050–2062CrossRefPubMed
Zurück zum Zitat Nayagam DA, Clarey JC, Paolini AG (2005) Powerful, onset inhibition in the ventral nucleus of the lateral lemniscus. J Neurophysiol 94:1651–1654CrossRefPubMed Nayagam DA, Clarey JC, Paolini AG (2005) Powerful, onset inhibition in the ventral nucleus of the lateral lemniscus. J Neurophysiol 94:1651–1654CrossRefPubMed
Zurück zum Zitat Nelson PC, Carney LH (2004) A phenomenological model of peripheral and central neural responses to amplitude-modulated tones. J Acoust Soc Am 116(4):2173–2186CrossRefPubMedPubMedCentral Nelson PC, Carney LH (2004) A phenomenological model of peripheral and central neural responses to amplitude-modulated tones. J Acoust Soc Am 116(4):2173–2186CrossRefPubMedPubMedCentral
Zurück zum Zitat Nelson PC, Carney LH (2007) Neural rate and timing cues for detection and discrimination of amplitude-modulated tones in the awake rabbit inferior colliculus. J Neurophysiol 97:522–539CrossRefPubMed Nelson PC, Carney LH (2007) Neural rate and timing cues for detection and discrimination of amplitude-modulated tones in the awake rabbit inferior colliculus. J Neurophysiol 97:522–539CrossRefPubMed
Zurück zum Zitat Nilsson M, Soli SD, Sullivan JA (1994) Development of the hearing in noise test for the measurement of speech reception thresholds in quiet and in noise. J Acoust Soc Am 95:1085–1099CrossRefPubMed Nilsson M, Soli SD, Sullivan JA (1994) Development of the hearing in noise test for the measurement of speech reception thresholds in quiet and in noise. J Acoust Soc Am 95:1085–1099CrossRefPubMed
Zurück zum Zitat Oertel D, Wu SH, Garb MW, Dizack C (1990) Morphology and physiology of cells in slice preparations of the posteroventral cochlear nucleus of mice. J Comp Neurol 295:136–154CrossRefPubMed Oertel D, Wu SH, Garb MW, Dizack C (1990) Morphology and physiology of cells in slice preparations of the posteroventral cochlear nucleus of mice. J Comp Neurol 295:136–154CrossRefPubMed
Zurück zum Zitat Olsen WO (1998) Average speech levels and spectra in various speaking/listening conditions: a summary of the Pearson, Bennett, & Fidell (1977) report. Am J Audiol 7:21–25CrossRefPubMed Olsen WO (1998) Average speech levels and spectra in various speaking/listening conditions: a summary of the Pearson, Bennett, & Fidell (1977) report. Am J Audiol 7:21–25CrossRefPubMed
Zurück zum Zitat Oxenham AJ (2016) Predicting the perceptual consequences of hidden hearing loss. Trends in Hearing 20:1–6CrossRef Oxenham AJ (2016) Predicting the perceptual consequences of hidden hearing loss. Trends in Hearing 20:1–6CrossRef
Zurück zum Zitat Oxenham AJ, Wojtczak M (2016) Predicting effects of hidden hearing loss using signal detection theory. J Acoust Soc Am 140:3150–3150CrossRef Oxenham AJ, Wojtczak M (2016) Predicting effects of hidden hearing loss using signal detection theory. J Acoust Soc Am 140:3150–3150CrossRef
Zurück zum Zitat Palmer AR, Wallace MN, Arnott RH, Shackleton TM (2003) Morphology of physiologically characterised ventral cochlear nucleus stellate cells. Exp Brain Res 153:418–426CrossRefPubMed Palmer AR, Wallace MN, Arnott RH, Shackleton TM (2003) Morphology of physiologically characterised ventral cochlear nucleus stellate cells. Exp Brain Res 153:418–426CrossRefPubMed
Zurück zum Zitat Patterson RD, Moore BCJ (1986) Auditory filters and excitation patterns as representations of frequency resolution. In: Moore BCJ (ed) Frequency selectivity in hearing. Academic, London, pp 123–177 Patterson RD, Moore BCJ (1986) Auditory filters and excitation patterns as representations of frequency resolution. In: Moore BCJ (ed) Frequency selectivity in hearing. Academic, London, pp 123–177
Zurück zum Zitat Pickett JM (1956) Effects of vocal force on the intelligibility of speech sounds. J Acoust Soc Am 28:902–905CrossRef Pickett JM (1956) Effects of vocal force on the intelligibility of speech sounds. J Acoust Soc Am 28:902–905CrossRef
Zurück zum Zitat Pierscionek BK (1993) What we know and understand about presbyopia. Clin Exp Optom 76:83–90CrossRef Pierscionek BK (1993) What we know and understand about presbyopia. Clin Exp Optom 76:83–90CrossRef
Zurück zum Zitat Plack CJ, Barker D, Prendergast G (2014) Perceptual consequences of “hidden” hearing loss. Trends Hear 18:1–11 Plack CJ, Barker D, Prendergast G (2014) Perceptual consequences of “hidden” hearing loss. Trends Hear 18:1–11
Zurück zum Zitat Plack CJ, Léger A, Prendergast G, Kluk K, Guest H, Munro KJ (2016) Toward a diagnostic test for hidden hearing loss. Trends Hear 20:1–9 Plack CJ, Léger A, Prendergast G, Kluk K, Guest H, Munro KJ (2016) Toward a diagnostic test for hidden hearing loss. Trends Hear 20:1–9
Zurück zum Zitat Rao A, Carney LH (2014) Speech enhancement for listeners with hearing loss based on a model for vowel coding in the auditory midbrain. IEEE Trans Biomed Eng 61:2081–2091CrossRefPubMedPubMedCentral Rao A, Carney LH (2014) Speech enhancement for listeners with hearing loss based on a model for vowel coding in the auditory midbrain. IEEE Trans Biomed Eng 61:2081–2091CrossRefPubMedPubMedCentral
Zurück zum Zitat Rees A, Langner G (2005) Temporal coding in the auditory midbrain. In: Winer JA, Schreiner CE (eds) The inferior colliculus. Springer, New York, pp 346–376CrossRef Rees A, Langner G (2005) Temporal coding in the auditory midbrain. In: Winer JA, Schreiner CE (eds) The inferior colliculus. Springer, New York, pp 346–376CrossRef
Zurück zum Zitat Remez RE, Rubin PE, Pisoni DB, Carrell TD (1981) Speech perception without traditional speech cues. Science 212:947–949CrossRefPubMed Remez RE, Rubin PE, Pisoni DB, Carrell TD (1981) Speech perception without traditional speech cues. Science 212:947–949CrossRefPubMed
Zurück zum Zitat Rhode WS, Greenberg S (1992) Physiology of the cochlear nuclei. In: Popper AN, Fay RR (eds) The mammalian auditory pathway: neurophysiology. Springer, New York, pp 94–152CrossRef Rhode WS, Greenberg S (1992) Physiology of the cochlear nuclei. In: Popper AN, Fay RR (eds) The mammalian auditory pathway: neurophysiology. Springer, New York, pp 94–152CrossRef
Zurück zum Zitat Rhode WS, Greenberg S (1994) Encoding of amplitude modulation in the cochlear nucleus of the cat. J Neurophysiol 71:1797–1825CrossRefPubMed Rhode WS, Greenberg S (1994) Encoding of amplitude modulation in the cochlear nucleus of the cat. J Neurophysiol 71:1797–1825CrossRefPubMed
Zurück zum Zitat Rhode WS, Oertel D, Smith PH (1983) Physiological response properties of cells labeled intracellularly with horseradish peroxidase in cat ventral cochlear nucleus. J Comp Neurol 213:448–463CrossRefPubMed Rhode WS, Oertel D, Smith PH (1983) Physiological response properties of cells labeled intracellularly with horseradish peroxidase in cat ventral cochlear nucleus. J Comp Neurol 213:448–463CrossRefPubMed
Zurück zum Zitat Richards VM (1992) The detectability of a tone added to narrow bands of equal-energy noise. J Acoust Soc Am 91:3424–3435CrossRefPubMed Richards VM (1992) The detectability of a tone added to narrow bands of equal-energy noise. J Acoust Soc Am 91:3424–3435CrossRefPubMed
Zurück zum Zitat Roberts WM, Rutherford MA (2008) Linear and nonlinear processing in hair cells. J Exp Biol 211:1775–1780CrossRefPubMed Roberts WM, Rutherford MA (2008) Linear and nonlinear processing in hair cells. J Exp Biol 211:1775–1780CrossRefPubMed
Zurück zum Zitat Russell IJ, Sellick PM (1983) Low-frequency characteristics of intracellularly recorded receptor potentials in guinea-pig cochlear hair cells. J Physiol 338:179–206CrossRefPubMedPubMedCentral Russell IJ, Sellick PM (1983) Low-frequency characteristics of intracellularly recorded receptor potentials in guinea-pig cochlear hair cells. J Physiol 338:179–206CrossRefPubMedPubMedCentral
Zurück zum Zitat Russell IJ, Richardson GP, Cody AR (1986) Mechanosensitivity of mammalian auditory hair cells in vitro. Nature 321:517–519CrossRefPubMed Russell IJ, Richardson GP, Cody AR (1986) Mechanosensitivity of mammalian auditory hair cells in vitro. Nature 321:517–519CrossRefPubMed
Zurück zum Zitat Ryugo DK (2008) Projections of low spontaneous rate, high threshold auditory nerve fibers to the small cell cap of the cochlear nucleus in cats. Neuroscience 154:114–126CrossRefPubMed Ryugo DK (2008) Projections of low spontaneous rate, high threshold auditory nerve fibers to the small cell cap of the cochlear nucleus in cats. Neuroscience 154:114–126CrossRefPubMed
Zurück zum Zitat Ryugo DK, Sento S (1991) Synaptic connections of the auditory nerve in cats: relationship between endbulbs of held and spherical bushy cells. J Comp Neurol 305:35–48CrossRefPubMed Ryugo DK, Sento S (1991) Synaptic connections of the auditory nerve in cats: relationship between endbulbs of held and spherical bushy cells. J Comp Neurol 305:35–48CrossRefPubMed
Zurück zum Zitat Sachs MB, Young ED (1979) Encoding of steady-state vowels in the auditory nerve: representation in terms of discharge rate. J Acoust Soc Am 66:470–479CrossRefPubMed Sachs MB, Young ED (1979) Encoding of steady-state vowels in the auditory nerve: representation in terms of discharge rate. J Acoust Soc Am 66:470–479CrossRefPubMed
Zurück zum Zitat Sachs MB, Voigt HF, Young ED (1983) Auditory nerve representation of vowels in background noise. J Neurophysiol 50:27–45CrossRefPubMed Sachs MB, Voigt HF, Young ED (1983) Auditory nerve representation of vowels in background noise. J Neurophysiol 50:27–45CrossRefPubMed
Zurück zum Zitat Sachs MB, Bruce IC, Miller RL, Young ED (2002) Biological basis of hearing-aid design. Ann Biomed Eng 30:157–168CrossRefPubMed Sachs MB, Bruce IC, Miller RL, Young ED (2002) Biological basis of hearing-aid design. Ann Biomed Eng 30:157–168CrossRefPubMed
Zurück zum Zitat Sachs MB, May BJ, Le Prell GS, Hienz RD (2006) Adequacy of auditory-nerve rate representations of vowels: comparison with behavioral measures in cat. In: Greenberg S, Ainsworth W (eds) Listening to speech: an auditory perspective. Lawrence Erlbaum, Mahwah, pp 115–127 Sachs MB, May BJ, Le Prell GS, Hienz RD (2006) Adequacy of auditory-nerve rate representations of vowels: comparison with behavioral measures in cat. In: Greenberg S, Ainsworth W (eds) Listening to speech: an auditory perspective. Lawrence Erlbaum, Mahwah, pp 115–127
Zurück zum Zitat Schaette R, McAlpine D (2011) Tinnitus with a normal audiogram: physiological evidence for hidden hearing loss and computational model. J Neurosci 31:13452–13457CrossRefPubMedPubMedCentral Schaette R, McAlpine D (2011) Tinnitus with a normal audiogram: physiological evidence for hidden hearing loss and computational model. J Neurosci 31:13452–13457CrossRefPubMedPubMedCentral
Zurück zum Zitat Schalk TB, Sachs MB (1980) Nonlinearities in auditory-nerve fiber responses to bandlimited noise. J Acoust Soc Am 67:903–913CrossRefPubMed Schalk TB, Sachs MB (1980) Nonlinearities in auditory-nerve fiber responses to bandlimited noise. J Acoust Soc Am 67:903–913CrossRefPubMed
Zurück zum Zitat Schofield BR (2011) Central descending auditory pathways. In: Ryugo DK, Fay RR, Popper AN (eds) Auditory and vestibular Efferents. Springer, New York, pp 261–290CrossRef Schofield BR (2011) Central descending auditory pathways. In: Ryugo DK, Fay RR, Popper AN (eds) Auditory and vestibular Efferents. Springer, New York, pp 261–290CrossRef
Zurück zum Zitat Schofield BR, Cant NB (1997) Ventral nucleus of the lateral lemniscus in guinea pigs: cytoarchitecture and inputs from the cochlear nucleus. J Comp Neurol 379:363–385CrossRefPubMed Schofield BR, Cant NB (1997) Ventral nucleus of the lateral lemniscus in guinea pigs: cytoarchitecture and inputs from the cochlear nucleus. J Comp Neurol 379:363–385CrossRefPubMed
Zurück zum Zitat Schofield BR, Cant NB (1999) Descending auditory pathways: projections from the inferior colliculus contact superior olivary cells that project bilaterally to the cochlear nuclei. J Comp Neurol 409:210–223CrossRefPubMed Schofield BR, Cant NB (1999) Descending auditory pathways: projections from the inferior colliculus contact superior olivary cells that project bilaterally to the cochlear nuclei. J Comp Neurol 409:210–223CrossRefPubMed
Zurück zum Zitat Sewell WF (1984) Furosemide selectively reduces one component in rate-level functions from auditory-nerve fibers. Hear Res 15:69–72CrossRefPubMed Sewell WF (1984) Furosemide selectively reduces one component in rate-level functions from auditory-nerve fibers. Hear Res 15:69–72CrossRefPubMed
Zurück zum Zitat Sherman SM, Spear PD (1982) Organization of visual pathways in normal and visually deprived cats. Physiol Rev 62:738–855CrossRefPubMed Sherman SM, Spear PD (1982) Organization of visual pathways in normal and visually deprived cats. Physiol Rev 62:738–855CrossRefPubMed
Zurück zum Zitat Siebert WM (1965) Some implications of the stochastic behavior of primary auditory neurons. Kybernetika 2:206–215CrossRef Siebert WM (1965) Some implications of the stochastic behavior of primary auditory neurons. Kybernetika 2:206–215CrossRef
Zurück zum Zitat Sinex DG (2008) Responses of cochlear nucleus neurons to harmonic and mistuned complex tones. Hear Res 238:39–48CrossRefPubMed Sinex DG (2008) Responses of cochlear nucleus neurons to harmonic and mistuned complex tones. Hear Res 238:39–48CrossRefPubMed
Zurück zum Zitat Sinex DG, Sabes JH, Li H (2002) Responses of inferior colliculus neurons to harmonic and mistuned complex tones. Hear Res 168:150–162CrossRefPubMed Sinex DG, Sabes JH, Li H (2002) Responses of inferior colliculus neurons to harmonic and mistuned complex tones. Hear Res 168:150–162CrossRefPubMed
Zurück zum Zitat Sinex DG, Guzik H, Li H, Sabes JH (2003) Responses of auditory nerve fibers to harmonic and mistuned complex tones. Hear Res 182:130–139CrossRefPubMed Sinex DG, Guzik H, Li H, Sabes JH (2003) Responses of auditory nerve fibers to harmonic and mistuned complex tones. Hear Res 182:130–139CrossRefPubMed
Zurück zum Zitat Smith RL, Brachman ML (1982) Adaptation in auditory-nerve fibers: a revised model. Biol Cybern 44:107–120CrossRefPubMed Smith RL, Brachman ML (1982) Adaptation in auditory-nerve fibers: a revised model. Biol Cybern 44:107–120CrossRefPubMed
Zurück zum Zitat Smith DW, Keil A (2015) The biological role of the medial olivocochlear efferents in hearing: separating evolved function from exaptation. Front Syst Neurosci 9(12):1–6 Smith DW, Keil A (2015) The biological role of the medial olivocochlear efferents in hearing: separating evolved function from exaptation. Front Syst Neurosci 9(12):1–6
Zurück zum Zitat Smith PH, Rhode WS (1989) Structural and functional properties distinguish two types of multipolar cells in the ventral cochlear nucleus. J Comp Neurol 282:595–616CrossRefPubMed Smith PH, Rhode WS (1989) Structural and functional properties distinguish two types of multipolar cells in the ventral cochlear nucleus. J Comp Neurol 282:595–616CrossRefPubMed
Zurück zum Zitat Smith RL, Zwislocki JJ (1975) Short-term adaptation and incremental responses of single auditory-nerve fibers. Biol Cybern 17:169–182CrossRefPubMed Smith RL, Zwislocki JJ (1975) Short-term adaptation and incremental responses of single auditory-nerve fibers. Biol Cybern 17:169–182CrossRefPubMed
Zurück zum Zitat Smith RL, Brachman ML, Frisina RD (1985) Sensitivity of auditory-nerve fibers to changes in intensity: a dichotomy between decrements and increments. J Acoust Soc Am 78:1310–1316CrossRefPubMed Smith RL, Brachman ML, Frisina RD (1985) Sensitivity of auditory-nerve fibers to changes in intensity: a dichotomy between decrements and increments. J Acoust Soc Am 78:1310–1316CrossRefPubMed
Zurück zum Zitat Smith PH, Massie A, Joris PX (2005) Acoustic stria: anatomy of physiologically characterized cells and their axonal projection patterns. J Comp Neurol 482:349–371CrossRefPubMed Smith PH, Massie A, Joris PX (2005) Acoustic stria: anatomy of physiologically characterized cells and their axonal projection patterns. J Comp Neurol 482:349–371CrossRefPubMed
Zurück zum Zitat Spirou GA, Brownell WE, Zidanic M (1990) Recordings from cat trapezoid body and HRP labeling of globular bushy cell axons. J Neurophysiol 63:1169–1190CrossRefPubMed Spirou GA, Brownell WE, Zidanic M (1990) Recordings from cat trapezoid body and HRP labeling of globular bushy cell axons. J Neurophysiol 63:1169–1190CrossRefPubMed
Zurück zum Zitat Spirou GA, Rager J, Manis PB (2005) Convergence of auditory-nerve fiber projections onto globular bushy cells. Neuroscience 136:843–863CrossRefPubMed Spirou GA, Rager J, Manis PB (2005) Convergence of auditory-nerve fiber projections onto globular bushy cells. Neuroscience 136:843–863CrossRefPubMed
Zurück zum Zitat Strickland EA, Krishnan LA (2005) The temporal effect in listeners with mild to moderate cochlear hearing impairment. J Acoust Soc Am 118:3211–3217CrossRefPubMed Strickland EA, Krishnan LA (2005) The temporal effect in listeners with mild to moderate cochlear hearing impairment. J Acoust Soc Am 118:3211–3217CrossRefPubMed
Zurück zum Zitat Studebaker GA, Sherbecoe RL, McDaniel DM, Gwaltney CA (1999) Monosyllabic word recognition at higher-than-normal speech and noise levels. J Acoust Soc Am 105:2431–2444CrossRefPubMed Studebaker GA, Sherbecoe RL, McDaniel DM, Gwaltney CA (1999) Monosyllabic word recognition at higher-than-normal speech and noise levels. J Acoust Soc Am 105:2431–2444CrossRefPubMed
Zurück zum Zitat Swaminathan J, Goldsworthy RL, Zurek PM, Léger AC, Braida LD (2014) Preliminary evaluation of a physiologically inspired signal processing strategy for cochlear implants. J Acoust Soc Am 135:2410–2410CrossRef Swaminathan J, Goldsworthy RL, Zurek PM, Léger AC, Braida LD (2014) Preliminary evaluation of a physiologically inspired signal processing strategy for cochlear implants. J Acoust Soc Am 135:2410–2410CrossRef
Zurück zum Zitat Teich MC, Lowen SB (1994) Fractal patterns in auditory nerve-spike trains. IEEE Engineering in Medicine and Biology Magazine 13:197–202CrossRef Teich MC, Lowen SB (1994) Fractal patterns in auditory nerve-spike trains. IEEE Engineering in Medicine and Biology Magazine 13:197–202CrossRef
Zurück zum Zitat Teich MC, Johnson DH, Kumar AR, Turcott RG (1990) Rate fluctuations and fractional power-law noise recorded from cells in the lower auditory pathway of the cat. Hear Res 46:41–52CrossRefPubMed Teich MC, Johnson DH, Kumar AR, Turcott RG (1990) Rate fluctuations and fractional power-law noise recorded from cells in the lower auditory pathway of the cat. Hear Res 46:41–52CrossRefPubMed
Zurück zum Zitat Terreros G, Delano PH (2015) Corticofugal modulation of peripheral auditory responses. Front Syst Neurosci 9(134):1–8 Terreros G, Delano PH (2015) Corticofugal modulation of peripheral auditory responses. Front Syst Neurosci 9(134):1–8
Zurück zum Zitat Thompson AM, Thompson GC (1993) Relationship of descending inferior colliculus projections to olivocochlear neurons. J Comp Neurol 335:402–412CrossRefPubMed Thompson AM, Thompson GC (1993) Relationship of descending inferior colliculus projections to olivocochlear neurons. J Comp Neurol 335:402–412CrossRefPubMed
Zurück zum Zitat Tsuji J, Liberman MC (1997) Intracellular labeling of auditory nerve fibers in guinea pig: central and peripheral projections. J Comp Neurol 381:188–202CrossRefPubMed Tsuji J, Liberman MC (1997) Intracellular labeling of auditory nerve fibers in guinea pig: central and peripheral projections. J Comp Neurol 381:188–202CrossRefPubMed
Zurück zum Zitat Umeda N (1977) Consonant duration in American English. J Acoust Soc Am 61:846–858CrossRef Umeda N (1977) Consonant duration in American English. J Acoust Soc Am 61:846–858CrossRef
Zurück zum Zitat van der Heijden M, Kohlrausch A (1995) The role of envelope fluctuations in spectral masking. J Acoust Soc Am 97:1800–1807CrossRefPubMed van der Heijden M, Kohlrausch A (1995) The role of envelope fluctuations in spectral masking. J Acoust Soc Am 97:1800–1807CrossRefPubMed
Zurück zum Zitat Victor JD, Nirenberg S (2013) Spike trains as event sequences: fundamental implications. In: DiLorenzo PM, Victor JD (eds) Spike timing: mechanisms and function. CRC Press, Boca Raton, pp 3–33CrossRef Victor JD, Nirenberg S (2013) Spike trains as event sequences: fundamental implications. In: DiLorenzo PM, Victor JD (eds) Spike timing: mechanisms and function. CRC Press, Boca Raton, pp 3–33CrossRef
Zurück zum Zitat Warr WB (1992) Organization of olivocochlear efferent systems in mammals. In: Webster DB, Fay R (eds) The mammalian auditory pathway: neuroanatomy. Springer, New York, pp 410–448CrossRef Warr WB (1992) Organization of olivocochlear efferent systems in mammals. In: Webster DB, Fay R (eds) The mammalian auditory pathway: neuroanatomy. Springer, New York, pp 410–448CrossRef
Zurück zum Zitat Warren EH, Liberman MC (1989) Effects of contralateral sound on auditory-nerve responses. I. Contributions of cochlear efferents. Hear Res 37:89–104CrossRefPubMed Warren EH, Liberman MC (1989) Effects of contralateral sound on auditory-nerve responses. I. Contributions of cochlear efferents. Hear Res 37:89–104CrossRefPubMed
Zurück zum Zitat Winslow RL, Sachs MB (1988) Single-tone intensity discrimination based on auditory-nerve rate responses in backgrounds of quiet, noise, and with stimulation of the crossed olivocochlear bundle. Hear Res 35:165–189CrossRefPubMed Winslow RL, Sachs MB (1988) Single-tone intensity discrimination based on auditory-nerve rate responses in backgrounds of quiet, noise, and with stimulation of the crossed olivocochlear bundle. Hear Res 35:165–189CrossRefPubMed
Zurück zum Zitat Winslow RL, Barta PE, Sachs MB (1987) Rate coding in the auditory nerve. In: Yost WA, Watson CS (eds) Auditory processing of complex sounds. Lawrence Erlbaum, Hillsdale, pp 212–224 Winslow RL, Barta PE, Sachs MB (1987) Rate coding in the auditory nerve. In: Yost WA, Watson CS (eds) Auditory processing of complex sounds. Lawrence Erlbaum, Hillsdale, pp 212–224
Zurück zum Zitat Winter IM, Palmer AR (1991) Intensity coding in low-frequency auditory-nerve fibers of the guinea pig. J Acoust Soc Am 90:1958–1967CrossRefPubMed Winter IM, Palmer AR (1991) Intensity coding in low-frequency auditory-nerve fibers of the guinea pig. J Acoust Soc Am 90:1958–1967CrossRefPubMed
Zurück zum Zitat Winter IM, Robertson D, Yates GK (1990) Diversity of characteristic frequency rate-intensity functions in guinea pig auditory nerve fibres. Hear Res 45:191–202CrossRefPubMed Winter IM, Robertson D, Yates GK (1990) Diversity of characteristic frequency rate-intensity functions in guinea pig auditory nerve fibres. Hear Res 45:191–202CrossRefPubMed
Zurück zum Zitat Wong S, Henry KS (2018) Effects of auditory-nerve damage on behavioral tone detection by budgerigars in quiet and in noise. ARO Abstracts 41:13 Wong S, Henry KS (2018) Effects of auditory-nerve damage on behavioral tone detection by budgerigars in quiet and in noise. ARO Abstracts 41:13
Zurück zum Zitat Yates GK (1990) Basilar membrane nonlinearity and its influence on auditory nerve rate-intensity functions. Hear Res 50:145–162CrossRefPubMed Yates GK (1990) Basilar membrane nonlinearity and its influence on auditory nerve rate-intensity functions. Hear Res 50:145–162CrossRefPubMed
Zurück zum Zitat Yates G, Johnstone B, Patuzzi R, Robertson D (1992) Mechanical preprocessing in the mammalian cochlea. Trends Neurosci 15(2):57–61CrossRefPubMed Yates G, Johnstone B, Patuzzi R, Robertson D (1992) Mechanical preprocessing in the mammalian cochlea. Trends Neurosci 15(2):57–61CrossRefPubMed
Zurück zum Zitat Ye Y, Machado DG, Kim DO (2000) Projection of the marginal shell of the anteroventral cochlear nucleus to olivocochlear neurons in the cat. J Comp Neurol 420:127–138CrossRefPubMed Ye Y, Machado DG, Kim DO (2000) Projection of the marginal shell of the anteroventral cochlear nucleus to olivocochlear neurons in the cat. J Comp Neurol 420:127–138CrossRefPubMed
Zurück zum Zitat Young ED, Davis KA (2002) Circuitry and function of the dorsal cochlear nucleus. In: Oertel D, Fay RR, Popper AN (eds) Integrative functions in the mammalian auditory pathway. Springer, New York, pp 160–206CrossRef Young ED, Davis KA (2002) Circuitry and function of the dorsal cochlear nucleus. In: Oertel D, Fay RR, Popper AN (eds) Integrative functions in the mammalian auditory pathway. Springer, New York, pp 160–206CrossRef
Zurück zum Zitat Zeddies DG, Siegel JH (2004) A biophysical model of an inner hair cell. J Acoust Soc Am 116:426–441CrossRefPubMed Zeddies DG, Siegel JH (2004) A biophysical model of an inner hair cell. J Acoust Soc Am 116:426–441CrossRefPubMed
Zurück zum Zitat Zhong Z, Henry KS, Heinz MG (2014) Sensorineural hearing loss amplifies neural coding of envelope information in the central auditory system of chinchillas. Hear Res 309:55–62CrossRefPubMed Zhong Z, Henry KS, Heinz MG (2014) Sensorineural hearing loss amplifies neural coding of envelope information in the central auditory system of chinchillas. Hear Res 309:55–62CrossRefPubMed
Zurück zum Zitat Zilany MSA, Bruce IC (2007) Representation of the vowel /ε/ in normal and impaired auditory nerve fibers: model predictions of responses in cats. J Acoust Soc Am 122:402–417CrossRefPubMed Zilany MSA, Bruce IC (2007) Representation of the vowel /ε/ in normal and impaired auditory nerve fibers: model predictions of responses in cats. J Acoust Soc Am 122:402–417CrossRefPubMed
Zurück zum Zitat Zilany MSA, Carney LH (2010) Power-law dynamics in an auditory-nerve model can account for neural adaptation to sound-level statistics. J Neurosci 30:10380–10390CrossRefPubMedPubMedCentral Zilany MSA, Carney LH (2010) Power-law dynamics in an auditory-nerve model can account for neural adaptation to sound-level statistics. J Neurosci 30:10380–10390CrossRefPubMedPubMedCentral
Zurück zum Zitat Zilany MS, Bruce IC, Nelson PC, Carney LH (2009) A phenomenological model of the synapse between the inner hair cell and auditory nerve: long-term adaptation with power-law dynamics. J Acoust Soc Am 126:2390–2412CrossRefPubMedPubMedCentral Zilany MS, Bruce IC, Nelson PC, Carney LH (2009) A phenomenological model of the synapse between the inner hair cell and auditory nerve: long-term adaptation with power-law dynamics. J Acoust Soc Am 126:2390–2412CrossRefPubMedPubMedCentral
Zurück zum Zitat Zilany MS, Bruce IC, Carney LH (2014) Updated parameters and expanded simulation options for a model of the auditory periphery. J Acoust Soc Am 135:283–286CrossRefPubMedPubMedCentral Zilany MS, Bruce IC, Carney LH (2014) Updated parameters and expanded simulation options for a model of the auditory periphery. J Acoust Soc Am 135:283–286CrossRefPubMedPubMedCentral
Zurück zum Zitat Zwicker E (1965) Temporal effects in simultaneous masking by white‐noise bursts. J Acoust Soc Am 37:653–663 Zwicker E (1965) Temporal effects in simultaneous masking by white‐noise bursts. J Acoust Soc Am 37:653–663
Metadaten
Titel
Supra-Threshold Hearing and Fluctuation Profiles: Implications for Sensorineural and Hidden Hearing Loss
verfasst von
Laurel H. Carney
Publikationsdatum
09.05.2018
Verlag
Springer US
Erschienen in
Journal of the Association for Research in Otolaryngology / Ausgabe 4/2018
Print ISSN: 1525-3961
Elektronische ISSN: 1438-7573
DOI
https://doi.org/10.1007/s10162-018-0669-5

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