55
Views
9
CrossRef citations to date
0
Altmetric
Research Article

Speech Sound Perception and Learning: Biologic Bases

, &
Pages 7-17 | Published online: 12 Oct 2009

References

  • Alho K. Cerebral generators of mismatch negativity (MMN) and its magnetic counterpart (MNINm) elicited by sound changes. Ear Hear 1995; 16: 38–51.
  • Ball EW, Blachman BA. Does phoneme awareness training in kindergarten make a difference in early recognition and developmental spelling. Read Res Q 1991; 26: 49–66.
  • Bradley L, Bryant PE. Categorizing sounds and learning to read--a causal connection. Nature 1983; 301: 419–21.
  • Bradlow AR, Kraus N, Nicol T, McGee T, Carrell T. Speech-sound perception in normal and learning-disabled children. Effect of lengthened CV transition duration. Abstr Acoust Soc Am 1998.
  • Bradlow AR, Pisoni DB, Akahane-Yamada R, Tohkura Y. Training Japanese listeners to identify English In and Ili: IV. Some effects of perceptual learning on speech production. J Acoust Soc Am 1997; 101: 2299–310.
  • Buchwald J, Halas E, Schramm S. Changes in cortical and subcortical unit activity during behavioral conditioning. Physiol Behav 1966; 1: 11–22.
  • Byrne B, Fielding-Barnsley R. Evaluation of a program to teach phonemic awareness to young children. A 1-year follow-up. J Educ Psychol 1993; 85: 104–11.
  • Carney HL, Geisler CD. A temporal analysis of auditory-nerve fiber responses to spoken stop consonant-vowel syllables. J Acoust Soc Am 1986; 79: 1896–914.
  • Creutzfeldt OD, Hellweg FC, Schreiner CE. Thalamocortical transformation of responses to complex auditory stimuli. Exp Brain Res 1980; 39: 87–104.
  • Csepe V, Karmos G, Molnár M. Subcortical evoked potential correlates of sensory mismatch processing in cats. Adv Biosci 1988; 76: 43–6.
  • Csepe V, Pantev C, Hoke M, Hampson S, Ross B. Evoked magnetic responses of the human auditory cortex to minor pitch changes. Localization of the mismatch field. Electro-encephalogr Chin Neurophysiol 1993; 84: 538–48.
  • de Ribaupierre F, Goldstein M, Yeni-Komshian G. Cortical coding of repetitive acoustic pulses. Brain Res 1972; 46: 205–25.
  • Delgutte B, Kiang NYS. Speech coding in the auditory nerve. I. Vowel-like sounds. J Acoust Soc Am 1984; 75: 866–78.
  • Edeline JM, Weinberger NM. Subcortical adaptive filtering in the auditory system. Associative receptive field plasticity in the dorsal medial geniculate body. Behav Neurosci 1991; 105: 154–75.
  • Eggermont JJ. Rate and synchronization measures of periodicity coding in cat primary auditory cortex. Hear Res 1991; 56: 153–67.
  • Eggermont J. Representation of a voice onset time continuum in primary auditory cortex of the cat. J Acoust Soc Am 1995; 98: 911–20.
  • Elliott L, Hammer M. Longitudinal changes in auditory discrimination in normal children and children with language learning problems. J Speech Hear Dis 1988; 53: 467–74.
  • Elliott L, Hammer M, Scholl M. Fine-grained auditory discrimination in normal children and children with language learning problems. J Speech Hear Res 1989; 32: 112–9.
  • Gatehouse S. The time course and magnitude of perceptual acclimatization to frequency responses. Evidence from monaural fitting of hearing aids. J Acoust Soc Am 1992; 92: 1258–68.
  • Gazzaniga MS. Right hemisphere language following commis-surotomy. A twenty-year perspective. Am Psychol 1983; 38: 525–37.
  • Geshwind N. Language and the brain. Sci Am 1972; 226: 76–83.
  • Giard M, Perrin F, Pernier J, Bouchet P. Brain generators implicated in the processing of auditory stimulus deviance. A topographic event-related potential study. Psychophysiology 1990; 27: 627–40.
  • Godfrey JJ, Syrdal-Lasky AK, Millay KK, Knox CM. Performance of dyslexic children on speech perception tests. J Exp Child Psychol 1981; 32: 401–24.
  • Halas E, Beardsley J, Sandie M. Conditioned neuronal responses at various levels in conditioning paradigms. Electroencephalogr Chin Neurophysiol 1970; 28: 468–77.
  • Hari R, Hämäläinen M, Ilmoniemi R, Kaukoranta E, Reinikainen K, Salminen J, et al. Responses of the primary auditory cortex to pitch changes in a sequence of tone pips. Neuromagnetic recordings in man. Neurosci Lett 1984; 50: 127–32.
  • Harrison R, Stanton S, Ibrahim D, Nagasawa A, Mount R. Neonatal cochlear hearing loss results in developmental abnormalities of the central auditory pathways. Acta Otolaryngol 1993; 113: 296–302.
  • Heil P, Rajan R, Irvine DRF. Sensitivity of neurons in cat primary auditory cortex to tones and frequency-modulated stimuli. II. Organization of response properties along the `isofrequency' dimension. Hear Res 1992; 63: 135–56.
  • Javitt D, Schroeder C, Steinschneider M, Arezzo J, Vaughan Jr H. Demonstration of mismatch negativity in monkey. Electroencephalogr Chin Neurophysiol 1992; 83: 87–90.
  • Kiang NYS, Moxon EC. Tails of tuning curves of auditory nerve fibers. J Acoust Soc Am 1974; 55: 620–30.
  • King C, Nicol T, McGee T, Kraus N. Aggregate responses in the left and right thalamus and cortex to auditory stimulation. Assoc Res Otolaryngol Abst 1997; 104.
  • Koch D, Tremblay K, Dunn I, Dinces E, Carrell T, Kraus N. Speech-evoked Ni and mismatch neurophysiologic responses in cochlear-implant users and normal listeners. Assoc Res Otolaryngol Abstr 1997; 20: 80.
  • Kraus N, Disterhoft J. Response plasticity of single neurons in rabbit auditory association cortex during tone-signalled learning. Brain Res 1982; 246: 205–15.
  • Kraus N, McGee T. The middle latency response generating system. Perspectives in event-related potentials research. Electroencephalogr Chin Neurophysiol 1995; 44 Suppl: 93–101.
  • Kraus N, McGee T, Carrell T, King C, Littman T, Nicol T. Discrimination of speech-like signals in auditory thalamus and cortex. J Acoust Soc Am 1994a; 96: 2758–68.
  • Kraus N, McGee T, Littman T, Nicol T, King C. Nonprimary auditory thalamic representation of acoustic change. J Neurophysiol 1994b; 72: 1270–7.
  • Kraus N, McGee T, Carrell T, King C, Tremblay K, Nicol T. Central auditory system plasticity associated with speech discrimination training. J Cogn Neurosci 1995a; 7: 25–32.
  • Kraus N, McGee TJ, Carrell TD, Zecker SG, Nicol TG, Koch DB. Auditory neurophysiologic responses and discrimination deficits in children with learning problems. Science 1996; 273: 971–3.
  • Kurtzberg D. Cortical event-related potential assessment of auditory and systems function. Semin Hear 1989; 10: 252–61.
  • Lundberg I, Frost J, Peterson O-P. Effects of an extensive program for stimulating phonological awareness in preschool children. Read Res Q 1988; 23: 263–84.
  • Mainen ZF, Sejnowski TJ. Reliability of spike timing in neocortical neurons. Science 1995; 268: 1503–6.
  • Mäkelä J, Hari R, Linnakivi A. Different analysis of frequency and amplitude modulations of a continuous tone in human auditory cortex. A neuromagnetic study. Hear Res 1987; 27: 257–64.
  • McClaskey C, Pisoni D, Carrell T. Transfer of training of a new linguistic contrast in voicing. Percept Psychophys 1983; 34: 323–30.
  • McGee T, Kraus N, King C, Nicol T. Acoustic elements of speech-like stimuli are reflected in surface recorded responses over the guinea pig temporal lobe. J Acoust Soc Am 1996; 99: 3606–14.
  • Mendelson JR, Cynader MS. Sensitivity of cat primary auditory cortex (AI) to the direction and rate of frequency modulation. Brain Res 1985; 327: 3315.
  • Merzenich M, Graj ski K, Jenkins W, Recanzone G, Peterson B. Functional cortical plasticity. Cortical network origins of representational changes. Cold Spring Harbor Symp Quant Biol 1991; 55: 873–87.
  • Merzenich MM, Jenkins WM, Johnston P, Schreiner C, Miller SL, Tallal P. Temporal processing deficits of language-learning-impaired children ameliorated by training. Science 1996; 271: 77–81.
  • Miyamoto R, Osberger M, Todd S, Robbins A, Karasek A, Dettman D, et al. Speech perception skills of children with multichannel cochlear implants. 3rd International Cochlear Implant Conference, Innsbruck, 1993.
  • Näätänen R, Gaillard A, Mäntysalo S. Early selective-attention effect on evoked potential reinterpreted. Acta Psychol 1978; 42: 313–29.
  • Näätänen R. Neurophysiological basis of the echoic memory as suggested by event-related potentials and magnetoencepha-logram. In: Klix F, Hagendorf H, eds. Human memory and cognitive capabilities. Amsterdam: Elsevier, 1986; 615–28.
  • Näätänen R, Picton T. The Ni wave of the human electric and magnetic response to sound. A review and an analysis of the component structure. Psychophysiology 1987; 24: 375–425.
  • Näätänen R, Kraus N, eds. Mismatch negativity as an index of central auditory function. Special Issue. Ear Hear 1995; 16: 1–146.
  • Neville H, Schmidt A, Kutas M. Altered visual-evoked potentials in congenitally deaf adults. Brain Res 1983; 266: 127–32.
  • Olds J, Disterhoft J, Segal M, Kornblith C, Hirsh R. Learning centers of rat brain mapped by measuring latencies of conditioned unit responses. J Neurophysiol 1972; 35: 202–19.
  • Oleson T, Ashe J, Weinberger N. Modification of auditory and somatosensory system activity during pupillary conditioning in the paralyzed cat. J Neurophysiol 1975; 38: 1114–39.
  • Phillips DP. Representation of acoustic events in the primary auditory cortex. J Exp Psychol: Human Perception and Performance 1993a; 19: 203–16.
  • Phillips DP. Neural representation of stimulus times in the primary auditory cortex. Ann NY Acad Sci 1993b; 682: 104–18.
  • Phillips DP, Farmer ME. Acquired word deafness and the temporal grain of sound representation in the primary auditory cortex. Behav Brain Res 1990; 40: 85–94.
  • Phillips DP, Hall SE. Response timing constraints on the cortical representation of sound time structure. J Acoust Soc Am 1990; 88: 1403–11.
  • Phillips DP, Mendelson JR, Cynader MS, Douglas RM. Responses of single neurons in cat auditory cortex to time-varying stimuli. Frequency-modulated tones of narrow excursion. Exp Brain Res 1985; 58: 443–54.
  • Pisoni DB, Aslin RN, Perey AJ, Hennessy BL. Some effects of laboratory training on identification and discrimination of voicing contrasts in stop consonants. J Exp Psychol 1982; 8: 297–314.
  • Rajan R, Irvine DR, Wise LZ, Heil P. Effect of unilateral partial cochlear lesions in adult cats on the representation of lesioned and unlesioned cochleas in primary auditory cortex. J Comp Neurol 1993; 338: 17–49.
  • Reale R, Brugge J, Chan J. Maps of auditory cortex in cats reared after unilateral cochlear ablation in the neonatal period. Dev Brain Res 1987; 34: 281–90.
  • Recanzone G, Schreiner C, Merzenich M. Plasticity in the frequency representation of primary auditory cortex follow-ing discrimination training in adult owl monkeys. J Neurosci 1993; 13: 87–104.
  • Reed MA. Speech perception and the discrimination of brief auditory cues in reading disabled children. J Exp Child Psychol 1989; 48: 270–92.
  • Robertson D, Irvine D. Plasticity of frequency organization in auditory cortex of guinea pigs with partial unilateral deafness. J Comp Neurol 1989; 282: 456–71.
  • Rouiller E, de Ribaupierre Y, Toros-Morel A, de Ribaupierre F. Neural coding of repetitive clicks in the medial geniculate body of cat. Hear Res 1981; 5: 81–100.
  • Sachs M, Voigt H, Young E. Auditory nerve representation of vowels in background noise. J Neurophysiol 1983; 50: 27–45.
  • Sams M, Paavilainen P, Alho K, Näätänen R. Auditory frequency discrimination and event-related potentials. Electro-encephalogr Chin Neurophysiol 1985; 62: 437–48.
  • Scherg M, Picton T. Brain electric source analysis of mismatch negativity. In: Brunia C, Gaillard A, Kok A, eds. Psycho-physiological brain research, vol I. Tilberg: Tilberg University Press, 1990; 94–8.
  • Schreiner CE, Langner G. Coding of temporal patterns in the central auditory nervous system. In: Edelman GM, Gail WE, Cowan WM, eds. Auditory function. Chichester: John Wiley, 1988; 337–61.
  • Shamma S, Fleshman J, Wiser P, Versnel H. Organization of response areas in ferret primary auditory cortex. J Neuro-physiol 1993; 69: 367–83.
  • Shankweiler D, Crain S, Katz L, Fowler AE, Liberman AM, Brady SA, et al. Cognitive profiles of reading-disabled children. Comparison of language skills in phonology, morphology, and syntax. Psychol Sci 1995; 6: 149–56.
  • Shannon RV. Quantitative comparison of electrically and acoustically evoked auditory perception. Implications for the location of perceptual mechanisms. Prog Brain Res 1993; 97: 261–9.
  • Sharma A, Kraus N, Carrell T, Thompson C. Physiologic bases of pitch and place of articulation perception. A case study. J Acoust Soc Am 1994; 95: 3011.
  • Sharma A, Kraus N. Effect of contextual variations in pitch and phonetic processing. Neurophysiologic correlates. Assoc Res Otolaryngol Abstr 1995; 729: 183.
  • Steinschneider M, Arezzo JC, Vaughan Jr HG. Speech evoked activity in the auditory radiations and cortex of the awake monkey. Brain Res 1982; 252: 353–65.
  • Steinschneider M, Arezzo JC, Vaughan Jr HG. Tonotopic features of speech-evoked activity in primate auditory cortex. Brain Res 1990; 519: 158–68.
  • Steinschneider M, Schroeder C, Arezzo J, Vaughan Jr H. Speech-evoked activity in primary auditory cortex. Effects of voice onset time. Electroencephalogr Chin Neurophysiol 1994; 92: 30–43.
  • Tallal P. Language disabilities in children. Perceptual corre-lates. Int J Pediatr Otorhinolaryngol 1981; 3: 113.
  • Tallal P, Stark R, Mellitis F. The relationship between auditory temporal analysis and receptive language development. Evidence from studies of developmental language disorder. Neuropsychologia 1985; 23: 314–22.
  • Tallal P, Miller S, Fitch RH. Neurobiological basis of speech. A case for the pre-eminence of temporal processing. Ann NY Acad Sci 1993; 682: 27–47.
  • Tallal P, Miller SL, Bedi G, Byma G, Wang X, Nagaraj an SS, et al. Language comprehension in language-learning impaired children improved with acoustically modified speech. Science 1996; 271: 81–4.
  • Tees RC, Werker JF. Speech perception in severely disabled and average reading children. Can J Psychol 1987; 41: 48–61.
  • Tremblay K, Kraus N, McGee T. The time course of auditory perceptual learning. Neurophysiologic changes during speech training. NeuroReport, Nov. 1998.
  • Tremblay K, Kraus N, Carrell T, McGee T. Central auditory system plasticity: Generalization to novel stimuli following listing training. J Acoust Soc Am 1997; 102: 3762–73.
  • Weinberger NM, Hopkins W, Diamond DM. Physiological plasticity of single neurons in auditory cortex of the cat during acquisition of the pupillary conditioned response. I. Primary field (Al). Behav Neurosci 1984; 98: 171–88.
  • Whitfield IC, Evans EF. Responses of auditory cortical neurons to stimuli of changing frequency. J Neurophysiol 1965; 28: 655–72.
  • Wright B, Lombardino L, King W, Puranik C, Leonard C, Merzenich M. Deficits in auditory temporal and spectral resolution in language-impaired children. Nature 1997; 387: 176–8.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.