An auditory neural correlate suggests a mechanism underlying holistic pitch perception.

Current theories of auditory pitch perception propose that cochlear place (spectral) and activity timing pattern (temporal) information are somehow combined within the brain to produce holistic pitch percepts, yet the neural mechanisms for integrating these two kinds of information remain obscure. T...

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Main Authors: Daryl Wile, Evan Balaban
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2007-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC1838520?pdf=render
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spelling doaj-59d11ebf5cf5425da442df206e001c422020-11-25T02:19:49ZengPublic Library of Science (PLoS)PLoS ONE1932-62032007-01-0124e36910.1371/journal.pone.0000369An auditory neural correlate suggests a mechanism underlying holistic pitch perception.Daryl WileEvan BalabanCurrent theories of auditory pitch perception propose that cochlear place (spectral) and activity timing pattern (temporal) information are somehow combined within the brain to produce holistic pitch percepts, yet the neural mechanisms for integrating these two kinds of information remain obscure. To examine this process in more detail, stimuli made up of three pure tones whose components are individually resolved by the peripheral auditory system, but that nonetheless elicit a holistic, "missing fundamental" pitch percept, were played to human listeners. A technique was used to separate neural timing activity related to individual components of the tone complexes from timing activity related to an emergent feature of the complex (the envelope), and the region of the tonotopic map where information could originate from was simultaneously restricted by masking noise. Pitch percepts were mirrored to a very high degree by a simple combination of component-related and envelope-related neural responses with similar timing that originate within higher-frequency regions of the tonotopic map where stimulus components interact. These results suggest a coding scheme for holistic pitches whereby limited regions of the tonotopic map (spectral places) carrying envelope- and component-related activity with similar timing patterns selectively provide a key source of neural pitch information. A similar mechanism of integration between local and emergent object properties may contribute to holistic percepts in a variety of sensory systems.http://europepmc.org/articles/PMC1838520?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Daryl Wile
Evan Balaban
spellingShingle Daryl Wile
Evan Balaban
An auditory neural correlate suggests a mechanism underlying holistic pitch perception.
PLoS ONE
author_facet Daryl Wile
Evan Balaban
author_sort Daryl Wile
title An auditory neural correlate suggests a mechanism underlying holistic pitch perception.
title_short An auditory neural correlate suggests a mechanism underlying holistic pitch perception.
title_full An auditory neural correlate suggests a mechanism underlying holistic pitch perception.
title_fullStr An auditory neural correlate suggests a mechanism underlying holistic pitch perception.
title_full_unstemmed An auditory neural correlate suggests a mechanism underlying holistic pitch perception.
title_sort auditory neural correlate suggests a mechanism underlying holistic pitch perception.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2007-01-01
description Current theories of auditory pitch perception propose that cochlear place (spectral) and activity timing pattern (temporal) information are somehow combined within the brain to produce holistic pitch percepts, yet the neural mechanisms for integrating these two kinds of information remain obscure. To examine this process in more detail, stimuli made up of three pure tones whose components are individually resolved by the peripheral auditory system, but that nonetheless elicit a holistic, "missing fundamental" pitch percept, were played to human listeners. A technique was used to separate neural timing activity related to individual components of the tone complexes from timing activity related to an emergent feature of the complex (the envelope), and the region of the tonotopic map where information could originate from was simultaneously restricted by masking noise. Pitch percepts were mirrored to a very high degree by a simple combination of component-related and envelope-related neural responses with similar timing that originate within higher-frequency regions of the tonotopic map where stimulus components interact. These results suggest a coding scheme for holistic pitches whereby limited regions of the tonotopic map (spectral places) carrying envelope- and component-related activity with similar timing patterns selectively provide a key source of neural pitch information. A similar mechanism of integration between local and emergent object properties may contribute to holistic percepts in a variety of sensory systems.
url http://europepmc.org/articles/PMC1838520?pdf=render
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