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Visual rotation axis and body position relative to the gravitational direction: Effects on circular vection

The visual–vestibular conflict theory asserts that visual–vestibular conflicts reduce vection and that vection strength is reduced with an increasing discrepancy between actual and expected vestibular activity. Most studies support this theory, although researchers have not always accepted them. To...

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Autores principales: Tanahashi, Shigehito, Ujike, Hiroyasu, Ukai, Kazuhiko
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Pion 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3589909/
https://www.ncbi.nlm.nih.gov/pubmed/23483823
http://dx.doi.org/10.1068/i0479
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author Tanahashi, Shigehito
Ujike, Hiroyasu
Ukai, Kazuhiko
author_facet Tanahashi, Shigehito
Ujike, Hiroyasu
Ukai, Kazuhiko
author_sort Tanahashi, Shigehito
collection PubMed
description The visual–vestibular conflict theory asserts that visual–vestibular conflicts reduce vection and that vection strength is reduced with an increasing discrepancy between actual and expected vestibular activity. Most studies support this theory, although researchers have not always accepted them. To ascertain the conditions under which the theory of the visual–vestibular conflict can be applied, we measured circular vection strength accompanied by manipulation of the visual–otolith conflict by setting the axes of visual global motion (pitch, roll, and yaw) as either earth-horizontal or earth-vertical, using three different body positions (supine, left-lateral recumbent, and sitting upright). When the smaller stimulus was used, roll vection strength was greater with the visual–otolith conflict than without it, which contradicts the visual–vestibular conflict theory. We confirmed this result, as observers were able to distinguish circular vection from an illusory body tilt. Moreover, with observers in an upright position, the strength of yaw vection, which does not involve the visual–otolith conflict, increased and was almost equal to that of roll vection, which involves the visual–otolith conflict. This suggests that if the visual stimulus covers the entire visual field, the strength of circular vection around the earth-vertical axis exceeds that around the earth-horizontal axis, which is a finding consistent with the visual–vestibular conflict theory.
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spelling pubmed-35899092013-03-08 Visual rotation axis and body position relative to the gravitational direction: Effects on circular vection Tanahashi, Shigehito Ujike, Hiroyasu Ukai, Kazuhiko Iperception Article The visual–vestibular conflict theory asserts that visual–vestibular conflicts reduce vection and that vection strength is reduced with an increasing discrepancy between actual and expected vestibular activity. Most studies support this theory, although researchers have not always accepted them. To ascertain the conditions under which the theory of the visual–vestibular conflict can be applied, we measured circular vection strength accompanied by manipulation of the visual–otolith conflict by setting the axes of visual global motion (pitch, roll, and yaw) as either earth-horizontal or earth-vertical, using three different body positions (supine, left-lateral recumbent, and sitting upright). When the smaller stimulus was used, roll vection strength was greater with the visual–otolith conflict than without it, which contradicts the visual–vestibular conflict theory. We confirmed this result, as observers were able to distinguish circular vection from an illusory body tilt. Moreover, with observers in an upright position, the strength of yaw vection, which does not involve the visual–otolith conflict, increased and was almost equal to that of roll vection, which involves the visual–otolith conflict. This suggests that if the visual stimulus covers the entire visual field, the strength of circular vection around the earth-vertical axis exceeds that around the earth-horizontal axis, which is a finding consistent with the visual–vestibular conflict theory. Pion 2012-12-04 /pmc/articles/PMC3589909/ /pubmed/23483823 http://dx.doi.org/10.1068/i0479 Text en Copyright © 2012 S Tanahashi, H Ujike, K Ukai http://creativecommons.org/licenses/by-nc-nd/3.0/ This open-access article is distributed under a Creative Commons Licence, which permits noncommercial use, distribution, and reproduction, provided the original author(s) and source are credited and no alterations are made.
spellingShingle Article
Tanahashi, Shigehito
Ujike, Hiroyasu
Ukai, Kazuhiko
Visual rotation axis and body position relative to the gravitational direction: Effects on circular vection
title Visual rotation axis and body position relative to the gravitational direction: Effects on circular vection
title_full Visual rotation axis and body position relative to the gravitational direction: Effects on circular vection
title_fullStr Visual rotation axis and body position relative to the gravitational direction: Effects on circular vection
title_full_unstemmed Visual rotation axis and body position relative to the gravitational direction: Effects on circular vection
title_short Visual rotation axis and body position relative to the gravitational direction: Effects on circular vection
title_sort visual rotation axis and body position relative to the gravitational direction: effects on circular vection
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3589909/
https://www.ncbi.nlm.nih.gov/pubmed/23483823
http://dx.doi.org/10.1068/i0479
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