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Published in: Brain Topography 3/2015

01-05-2015 | Original Paper

Analyzing the Auditory Scene: Neurophysiologic Evidence of a Dissociation Between Detection of Regularity and Detection of Change

Authors: Alessia Pannese, Christoph S. Herrmann, Elyse Sussman

Published in: Brain Topography | Issue 3/2015

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Abstract

Detecting regularity and change in the environment is crucial for survival, as it enables making predictions about the world and informing goal-directed behavior. In the auditory modality, the detection of regularity involves segregating incoming sounds into distinct perceptual objects (stream segregation). The detection of change from this within-stream regularity is associated with the mismatch negativity, a component of auditory event-related brain potentials (ERPs). A central unanswered question is how the detection of regularity and the detection of change are interrelated, and whether attention affects the former, the latter, or both. Here we show that the detection of regularity and the detection of change can be empirically dissociated, and that attention modulates the detection of change without precluding the detection of regularity, and the perceptual organization of the auditory background into distinct streams. By applying frequency spectra analysis on the EEG of subjects engaged in a selective listening task, we found distinct peaks of ERP synchronization, corresponding to the rhythm of the frequency streams, independently of whether the stream was attended or ignored. Our results provide direct neurophysiological evidence of regularity detection in the auditory background, and show that it can occur independently of change detection and in the absence of attention.
Appendix
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Footnotes
1
ABS refers to computing absolute values, FFT to computing a fast Fourier transform, and MEAN to the average of the ERPs.
 
Literature
go back to reference Alho K (1992) Selective attention in auditory processing as reflected by event-related brain potentials. Psychophysiology 29:247–263CrossRefPubMed Alho K (1992) Selective attention in auditory processing as reflected by event-related brain potentials. Psychophysiology 29:247–263CrossRefPubMed
go back to reference Bidet-Caulet A, Fischer C, Besle J, Aguera P-E, Giard M-H, Bertrand O (2007) Effects of selective attention on the electrophysiological representation of concurrent sounds in the human auditory cortex. J Neurosci 27(35):9252–9261CrossRefPubMed Bidet-Caulet A, Fischer C, Besle J, Aguera P-E, Giard M-H, Bertrand O (2007) Effects of selective attention on the electrophysiological representation of concurrent sounds in the human auditory cortex. J Neurosci 27(35):9252–9261CrossRefPubMed
go back to reference Bregman A (1990) Auditory scene analysis: the perceptual organization of sound. The MIT Press, Cambridge Bregman A (1990) Auditory scene analysis: the perceptual organization of sound. The MIT Press, Cambridge
go back to reference Bregman AS, Campbell J (1971) Primary auditory stream segregation and perception of order in rapid sequences of tones. J Exp Psychol 89:244–249CrossRefPubMed Bregman AS, Campbell J (1971) Primary auditory stream segregation and perception of order in rapid sequences of tones. J Exp Psychol 89:244–249CrossRefPubMed
go back to reference Carlyon RP, Cusack R, Foxton JM, Robertson IH (2001) Effects of attention and unilateral neglect on auditory stream segregation. J Exp Psychol Hum Percept Perform 27:115–127CrossRefPubMed Carlyon RP, Cusack R, Foxton JM, Robertson IH (2001) Effects of attention and unilateral neglect on auditory stream segregation. J Exp Psychol Hum Percept Perform 27:115–127CrossRefPubMed
go back to reference Cherry EC (1953) Some experiments on the recognition of speech, with one and two ears. J Acoust Soc Am 25:975–979CrossRef Cherry EC (1953) Some experiments on the recognition of speech, with one and two ears. J Acoust Soc Am 25:975–979CrossRef
go back to reference Demany L (1982) Auditory stream segregation in infancy. Infant Behav Dev 5:261–276CrossRef Demany L (1982) Auditory stream segregation in infancy. Infant Behav Dev 5:261–276CrossRef
go back to reference Draganova R, Ross B, Borgmann C, Pantev C (2002) Auditory cortical response patterns to multiple rhythms of AM sound. Ear Hear 23:254–265CrossRefPubMed Draganova R, Ross B, Borgmann C, Pantev C (2002) Auditory cortical response patterns to multiple rhythms of AM sound. Ear Hear 23:254–265CrossRefPubMed
go back to reference Efron B, Tibshirani R (1986) Bootstrap methods for standard errors, confidence intervals, and other measures of statistical accuracy. Stat Sci 1:54–75CrossRef Efron B, Tibshirani R (1986) Bootstrap methods for standard errors, confidence intervals, and other measures of statistical accuracy. Stat Sci 1:54–75CrossRef
go back to reference Elhilali M, Xiang J, Shamma SA, Simon JZ (2009) Interaction between attention and bottom-up saliency mediates the representation of foreground and Background in an auditory scene. PLoS Biol 7(6):e1000129CrossRefPubMedCentralPubMed Elhilali M, Xiang J, Shamma SA, Simon JZ (2009) Interaction between attention and bottom-up saliency mediates the representation of foreground and Background in an auditory scene. PLoS Biol 7(6):e1000129CrossRefPubMedCentralPubMed
go back to reference Fritz J, Shamma S, Elhilali M, Klein D (2003) Rapid task-related plasticity of spectro-temporal receptive fields in primary auditory cortex. Nat Neurosci 6:1216–1223CrossRefPubMed Fritz J, Shamma S, Elhilali M, Klein D (2003) Rapid task-related plasticity of spectro-temporal receptive fields in primary auditory cortex. Nat Neurosci 6:1216–1223CrossRefPubMed
go back to reference Fritz JB, Elhilali M, Shamma SA (2005) Differential dynamic plasticity of A1 receptive fields during multiple spectral tasks. J Neurosci 25:7623–7635CrossRefPubMed Fritz JB, Elhilali M, Shamma SA (2005) Differential dynamic plasticity of A1 receptive fields during multiple spectral tasks. J Neurosci 25:7623–7635CrossRefPubMed
go back to reference Fritz JB, Elhilali M, David SV, Shamma SA (2007) Auditory attention—focusing the searchlight on sound. Curr Opin Neurobiol 17:437–455CrossRefPubMed Fritz JB, Elhilali M, David SV, Shamma SA (2007) Auditory attention—focusing the searchlight on sound. Curr Opin Neurobiol 17:437–455CrossRefPubMed
go back to reference Gregory RL (1980) Perception as hypotheses. Philos Trans R Soc Lond B 290:181–197CrossRef Gregory RL (1980) Perception as hypotheses. Philos Trans R Soc Lond B 290:181–197CrossRef
go back to reference Hillyard SA, Hink RF, Schwent VL, Picton TW (1973) Electrical signs of selective attention in the human brain. Science 182:177–180CrossRefPubMed Hillyard SA, Hink RF, Schwent VL, Picton TW (1973) Electrical signs of selective attention in the human brain. Science 182:177–180CrossRefPubMed
go back to reference Jääskeläinen IP, Ahveninen J, Belliveau JW, Raij T, Sams M (2007) Short-term plasticity in auditory cognition. Trends Neurosci 30:653–661CrossRefPubMed Jääskeläinen IP, Ahveninen J, Belliveau JW, Raij T, Sams M (2007) Short-term plasticity in auditory cognition. Trends Neurosci 30:653–661CrossRefPubMed
go back to reference Jäncke L, Specht K, Shah JN, Hugdahl K (2003) Focused attention in a simple dichotic listening task: an fMRI experiment. Brain Res Cogn Brain Res 16:257–266CrossRefPubMed Jäncke L, Specht K, Shah JN, Hugdahl K (2003) Focused attention in a simple dichotic listening task: an fMRI experiment. Brain Res Cogn Brain Res 16:257–266CrossRefPubMed
go back to reference John MS, Dimitrijevic A, van Roon P, Picton TW (2001) Multiple auditory steady-state responses to AM and FM stimuli. Audiol Neurootol 6:12–27CrossRefPubMed John MS, Dimitrijevic A, van Roon P, Picton TW (2001) Multiple auditory steady-state responses to AM and FM stimuli. Audiol Neurootol 6:12–27CrossRefPubMed
go back to reference Lakatos P, Musacchia G, O’Connel MN, Falchier AY, Javitt DC, Schroeder CE (2013) The spectrotemporal filter mechanism of auditory selective attention. Neuron 77:750–761CrossRefPubMedCentralPubMed Lakatos P, Musacchia G, O’Connel MN, Falchier AY, Javitt DC, Schroeder CE (2013) The spectrotemporal filter mechanism of auditory selective attention. Neuron 77:750–761CrossRefPubMedCentralPubMed
go back to reference McAdams S, Bertoncini J (1997) Organization and discrimination of repeating sound sequences by newborn infants. J Acoust Soc Am 102:2945–2953CrossRefPubMed McAdams S, Bertoncini J (1997) Organization and discrimination of repeating sound sequences by newborn infants. J Acoust Soc Am 102:2945–2953CrossRefPubMed
go back to reference Moore BCJ (2008) An introduction to the psychology of hearing, 5th edn. Emerald Group Publishing, Bingley Moore BCJ (2008) An introduction to the psychology of hearing, 5th edn. Emerald Group Publishing, Bingley
go back to reference Näätänen R (1992) Attention and brain function. Lawrence Erlbaum, Hillsdale Näätänen R (1992) Attention and brain function. Lawrence Erlbaum, Hillsdale
go back to reference Näätänen R, Gaillard AWK, Mäntysalo S (1978) Early selective-attention effect on evoked potential reinterpreted. Acta Psychol (Amst) 42:313–329CrossRef Näätänen R, Gaillard AWK, Mäntysalo S (1978) Early selective-attention effect on evoked potential reinterpreted. Acta Psychol (Amst) 42:313–329CrossRef
go back to reference Näätänen R, Näätänen R, Picton T (1987) The N1 wave of the human electric and Magnetic response to sound: a review and an analysis of the component structure. Psychophysiology 24:375–425CrossRefPubMed Näätänen R, Näätänen R, Picton T (1987) The N1 wave of the human electric and Magnetic response to sound: a review and an analysis of the component structure. Psychophysiology 24:375–425CrossRefPubMed
go back to reference Nelken I (2004) Processing of complex stimuli and natural scenes in the auditory cortex. Curr Opin Neurobiol 14:474–480CrossRefPubMed Nelken I (2004) Processing of complex stimuli and natural scenes in the auditory cortex. Curr Opin Neurobiol 14:474–480CrossRefPubMed
go back to reference Nelken I, Rotman Y, Bar-Yosef O (1999) Response of auditory-cortex neurons to structural features of natural sounds. Nature 397:154–157CrossRefPubMed Nelken I, Rotman Y, Bar-Yosef O (1999) Response of auditory-cortex neurons to structural features of natural sounds. Nature 397:154–157CrossRefPubMed
go back to reference Nelken I, Fishbach A, Las L, Ulanovsky N, Farkas D (2003) Primary auditory cortex of cats: feature detection or something else? Biol Cybern 89:397–406CrossRefPubMed Nelken I, Fishbach A, Las L, Ulanovsky N, Farkas D (2003) Primary auditory cortex of cats: feature detection or something else? Biol Cybern 89:397–406CrossRefPubMed
go back to reference Petkov CI, Kang X, Alho K, Bertrand O, Yund EW, Woods DL (2004) Attentional modulation of human auditory cortex. Nat Neurosci 7:658–663CrossRefPubMed Petkov CI, Kang X, Alho K, Bertrand O, Yund EW, Woods DL (2004) Attentional modulation of human auditory cortex. Nat Neurosci 7:658–663CrossRefPubMed
go back to reference Posner MI, Petersen SE (1990) The attention system of the human brain. Annu Rev Neurosci 13:25–42CrossRefPubMed Posner MI, Petersen SE (1990) The attention system of the human brain. Annu Rev Neurosci 13:25–42CrossRefPubMed
go back to reference Snyder JS, Alain C, Picton TW (2006) Effects of attention on neuroelectric correlates of auditory stream segregation. J Cogn Neurosci 18:1–13CrossRefPubMed Snyder JS, Alain C, Picton TW (2006) Effects of attention on neuroelectric correlates of auditory stream segregation. J Cogn Neurosci 18:1–13CrossRefPubMed
go back to reference Sussman E (2005) Integration and segregation in auditory scene analysis. J Acoust Soc Am 117:1285–1298CrossRefPubMed Sussman E (2005) Integration and segregation in auditory scene analysis. J Acoust Soc Am 117:1285–1298CrossRefPubMed
go back to reference Sussman E (2007) A new view on the MMN and attention debate: Auditory context effects. J Psychophysiol 21(3–4):164–175CrossRef Sussman E (2007) A new view on the MMN and attention debate: Auditory context effects. J Psychophysiol 21(3–4):164–175CrossRef
go back to reference Sussman E, Steinschneider M (2006) Neurophysiological evidence for context-dependent encoding of sensory input in human auditory cortex. Brain Res 1075(1):165–174 Sussman E, Steinschneider M (2006) Neurophysiological evidence for context-dependent encoding of sensory input in human auditory cortex. Brain Res 1075(1):165–174
go back to reference Sussman E, Winkler I (2001) Dynamic sensory updating in the auditory system. Brain Res Cogn Brain Res 12:431–439CrossRefPubMed Sussman E, Winkler I (2001) Dynamic sensory updating in the auditory system. Brain Res Cogn Brain Res 12:431–439CrossRefPubMed
go back to reference Sussman E, Ritter W, Vaughan HG Jr (1998) Attention affects the organization of auditory input associated with the mismatch negativity system. Brain Res 789:130–138CrossRefPubMed Sussman E, Ritter W, Vaughan HG Jr (1998) Attention affects the organization of auditory input associated with the mismatch negativity system. Brain Res 789:130–138CrossRefPubMed
go back to reference Sussman E, Ritter W, Vaughan HG Jr (1999) An investigation of the auditory streaming effect using event-related brain potentials. Psychophysiology 36:22–34CrossRefPubMed Sussman E, Ritter W, Vaughan HG Jr (1999) An investigation of the auditory streaming effect using event-related brain potentials. Psychophysiology 36:22–34CrossRefPubMed
go back to reference Sussman E, Winkler I, Huotilainen M, Ritter W, Näätänen R (2002) Top-down effect on the initially stimulus-driven auditory organization. Brain Res Cogn Brain Res 13:393–405CrossRefPubMed Sussman E, Winkler I, Huotilainen M, Ritter W, Näätänen R (2002) Top-down effect on the initially stimulus-driven auditory organization. Brain Res Cogn Brain Res 13:393–405CrossRefPubMed
go back to reference Sussman ES, Bregman AS, Wang WJ, Khan FJ (2005) Attentional modulation of electrophysiological activity in auditory cortex for unattended sounds within multistream auditory environments. Cogn Affect Behav Neurosci 5(1):93–110CrossRefPubMed Sussman ES, Bregman AS, Wang WJ, Khan FJ (2005) Attentional modulation of electrophysiological activity in auditory cortex for unattended sounds within multistream auditory environments. Cogn Affect Behav Neurosci 5(1):93–110CrossRefPubMed
go back to reference Sussman ES, Horvath J, Winkler I, Orr M (2007) The role of attention in the formation of auditory streams. Percept Psychophys 69(1):136–152CrossRefPubMed Sussman ES, Horvath J, Winkler I, Orr M (2007) The role of attention in the formation of auditory streams. Percept Psychophys 69(1):136–152CrossRefPubMed
go back to reference Winer JA, Miller LM, Lee CC, Schreiner CE (2005) Auditory thalamocortical transformation: structure and function. Trends Neurosci 28:255–263CrossRefPubMed Winer JA, Miller LM, Lee CC, Schreiner CE (2005) Auditory thalamocortical transformation: structure and function. Trends Neurosci 28:255–263CrossRefPubMed
go back to reference Winkler I, Sussman E, Tervaniemi M, Ritter W, Horvath J, Näätänen R (2003) Pre-attentive auditory context effect. Cogn Affect Behav Neurosci 3:57–77CrossRefPubMed Winkler I, Sussman E, Tervaniemi M, Ritter W, Horvath J, Näätänen R (2003) Pre-attentive auditory context effect. Cogn Affect Behav Neurosci 3:57–77CrossRefPubMed
go back to reference Winkler I, Takegata R, Sussman E (2005) Event-related brain potentials reveal multiple stages in the perceptual organization of sound. Brain Res Cogn Brain Res 25:291–299CrossRefPubMed Winkler I, Takegata R, Sussman E (2005) Event-related brain potentials reveal multiple stages in the perceptual organization of sound. Brain Res Cogn Brain Res 25:291–299CrossRefPubMed
go back to reference Winkler I, Denham SL, Nelken I (2009) Modeling the auditory scene: predictive regularity representations and perceptual objects. Trends Cogn Sci 13(12):532–540CrossRefPubMed Winkler I, Denham SL, Nelken I (2009) Modeling the auditory scene: predictive regularity representations and perceptual objects. Trends Cogn Sci 13(12):532–540CrossRefPubMed
go back to reference Woldorff MG, Gallen CC, Hampson SA, Hillyard SA, Pantev C, Sobel D, Bloom FE (1993) Modulation of early sensory processing in human auditory cortex during auditory selective attention. Proc Natl Acad Sci USA 90:8722–8726CrossRefPubMedCentralPubMed Woldorff MG, Gallen CC, Hampson SA, Hillyard SA, Pantev C, Sobel D, Bloom FE (1993) Modulation of early sensory processing in human auditory cortex during auditory selective attention. Proc Natl Acad Sci USA 90:8722–8726CrossRefPubMedCentralPubMed
go back to reference Yabe H, Winkler I, Czigler I, Koyama S, Kakigi R, Sutoh T, Hiruma T, Kaneko S (2001) Organizing sound sequences in the human brain: the interplay of auditory streaming and temporal integration. Brain Res 897:222–227CrossRefPubMed Yabe H, Winkler I, Czigler I, Koyama S, Kakigi R, Sutoh T, Hiruma T, Kaneko S (2001) Organizing sound sequences in the human brain: the interplay of auditory streaming and temporal integration. Brain Res 897:222–227CrossRefPubMed
Metadata
Title
Analyzing the Auditory Scene: Neurophysiologic Evidence of a Dissociation Between Detection of Regularity and Detection of Change
Authors
Alessia Pannese
Christoph S. Herrmann
Elyse Sussman
Publication date
01-05-2015
Publisher
Springer US
Published in
Brain Topography / Issue 3/2015
Print ISSN: 0896-0267
Electronic ISSN: 1573-6792
DOI
https://doi.org/10.1007/s10548-014-0368-4

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