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Please use this identifier to cite or link to this item: http://hdl.handle.net/11375/21441
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dc.contributor.advisorLyons, James-
dc.contributor.authorBurkitt, James-
dc.date.accessioned2017-05-19T18:38:35Z-
dc.date.available2017-05-19T18:38:35Z-
dc.date.issued2017-
dc.identifier.urihttp://hdl.handle.net/11375/21441-
dc.description.abstractNo-vision walking is supported in the central nervous system (CNS) by a spatial updating process. This process involves the iterative updating of a mental representation of the environment using estimates of distance traveled gleaned from locomotive kinematic activity. An effective means of examining the online regulation of this process is a continuous pointing task, which requires performers to walk along a straight-line forward trajectory while keeping their right arm straight and index finger fixated on a stationary ground-level target beside the walking path. In the current thesis, no-vision continuous pointing was examined in typically calibrated and recalibrated perceptual-motor states. Shoulder and trunk joint angles provided the basis for perceptual measures that reflected spatial updating performance and kinematic measures that reflected its underlying CNS online regulation. In the typically calibrated conditions, no-vision walking demonstrated a slight perceptual underestimation of distance traveled (Study 1). In the recalibrated conditions, no-vision walking demonstrated: a) perceptual underestimation and overestimation following adaptation periods involving walking with low and high visual gains, respectively (Study 2); and b) partial recalibration following exposures to vision and arm gains (Study 3). The latter was suggested as being impacted by task specific changes in CNS multisensory integration resulting from the development of a robust task prior and/or the altering of sensory cue weights. Importantly, this thesis used a novel trajectory parsing procedure to quantify discrete CNS perceptual updating units in the shoulder plane of elevation trajectory. The starts and ends of these updating units were consistently timed to the late left-to-early right foot swing phase of the step-cycle, regardless of perceptual-motor state. This was suggested to reflect perceptual units that were purposely timed, but indirectly mapped, to this kinematic event. The perceptual differences in Studies 1 and 2 were at least partially reflected in these units.en_US
dc.language.isoenen_US
dc.subjectMotor Behaviouren_US
dc.subjectMotor Controlen_US
dc.subjectSensory Recalibrationen_US
dc.subjectVirtual Realityen_US
dc.subjectLocomotionen_US
dc.subjectBlind walkingen_US
dc.subjectContinuous pointingen_US
dc.subjectWalkingen_US
dc.subjectSensory adaptationen_US
dc.titleThe online regulation of no-vision walking in typically calibrated and recalibrated perceptual-motor states examined using a continuous pointing tasken_US
dc.typeThesisen_US
dc.contributor.departmentKinesiologyen_US
dc.description.degreetypeThesisen_US
dc.description.degreeDoctor of Philosophy (PhD)en_US
dc.description.layabstractIt is well understood that humans can effectively walk without vision to environmental locations up to 15 metres away. However, less is known about how these walking movements are controlled during the course of forward progression. This thesis fills this knowledge gap using a task that requires participants to walk forward along a straight path while keeping their right index finger pointed toward a ground-level target beside the walking path. The patterns of arm movements performed during this task are indicative of the control strategies used by the performer to mentally update their positions in space. One of the key contributions of this work is showing that humans perform this mental updating in a repetitive manner, and that these repetitions are consistently linked to early forward movements of the right leg. This pattern is maintained when walking without vision is performed in a variety of different contexts.en_US
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