Applications of Motor Variability for Assessing Repetitive Occupational Tasks

The human body has substantial kinetic and kinematic degrees-of-freedoms, so redundant solutions are available for the central nervous system (CNS) to perform a repetitive task. Due to these redundancies, inherent variations exist in human movement, called motor variability (MV). Current evidence su...

Full description

Bibliographic Details
Main Author: Sedighi, Alireza
Other Authors: Industrial and Systems Engineering
Format: Others
Published: Virginia Tech 2017
Subjects:
Online Access:http://hdl.handle.net/10919/77947
id ndltd-VTETD-oai-vtechworks.lib.vt.edu-10919-77947
record_format oai_dc
spelling ndltd-VTETD-oai-vtechworks.lib.vt.edu-10919-779472020-09-29T05:33:46Z Applications of Motor Variability for Assessing Repetitive Occupational Tasks Sedighi, Alireza Industrial and Systems Engineering Nussbaum, Maury A. Kong, Zhenyu Srinivasan, Divya Ross, Shane D. Motor control Goal equivalent manifold Sample Entropy Cycle-to-cycle SD Lifting Experienced workers Fatigue Head-mounted display Head-down display Gait The human body has substantial kinetic and kinematic degrees-of-freedoms, so redundant solutions are available for the central nervous system (CNS) to perform a repetitive task. Due to these redundancies, inherent variations exist in human movement, called motor variability (MV). Current evidence suggests that MV can be beneficial, and that there is an inverse association between MV and risk of injury. To better understand how the CNS manipulates MV to reduce injury risks, we investigated the effects of individual differences, task-relevant aspects, and psychological factors as modifiers of MV. Earlier work found that experienced workers adapted more stable movements than novices in repetitive lifting tasks. To expand on this, we quantified how MV differs between experienced workers and novices in different lifting conditions (i.e., lifting asymmetry and fatigue). Three different measures (cycle-to-cycle SD, sample entropy, and the goal equivalent manifold) were used to quantify MV. In a symmetric lifting task, experienced workers had more constrained movement than novices, and experienced workers exhibited more consistent behavior in the asymmetric condition. Novices constrained their movements, and could not maintain the same level of variability in the asymmetric condition. We concluded that experienced workers adapt stable or flexible strategies depending on task difficulty. In a prolonged lifting task, both groups increased their MV to adapt to fatigue; they particularly increased variability in a direction that had no effects on their main task goal. Developing fatigue also makes it difficult for individuals maintain the main goal. Based on these results, we conclude that increasing variability is an adaptive strategy in response to fatigue. We also assessed variability in gait parameters to compare gait adaptability using a head-worn display (HWD) compared with head-down displays for visual information presentation. An effective strategy we observed for performing a cognitive task successfully during walking was to increase gait variability in the goal direction. In addition, we found that head-up walking had smaller effects on MV, suggesting that HWDs are a promising technology to reduce adverse events during gait (e.g., falls). In summary, these results suggest that MV can be a useful indicator for evaluating some occupational injury risks. Ph. D. 2017-06-08T08:00:47Z 2017-06-08T08:00:47Z 2017-06-07 Dissertation vt_gsexam:10935 http://hdl.handle.net/10919/77947 In Copyright http://rightsstatements.org/vocab/InC/1.0/ ETD application/pdf application/pdf Virginia Tech
collection NDLTD
format Others
sources NDLTD
topic Motor control
Goal equivalent manifold
Sample Entropy
Cycle-to-cycle SD
Lifting
Experienced workers
Fatigue
Head-mounted display
Head-down display
Gait
spellingShingle Motor control
Goal equivalent manifold
Sample Entropy
Cycle-to-cycle SD
Lifting
Experienced workers
Fatigue
Head-mounted display
Head-down display
Gait
Sedighi, Alireza
Applications of Motor Variability for Assessing Repetitive Occupational Tasks
description The human body has substantial kinetic and kinematic degrees-of-freedoms, so redundant solutions are available for the central nervous system (CNS) to perform a repetitive task. Due to these redundancies, inherent variations exist in human movement, called motor variability (MV). Current evidence suggests that MV can be beneficial, and that there is an inverse association between MV and risk of injury. To better understand how the CNS manipulates MV to reduce injury risks, we investigated the effects of individual differences, task-relevant aspects, and psychological factors as modifiers of MV. Earlier work found that experienced workers adapted more stable movements than novices in repetitive lifting tasks. To expand on this, we quantified how MV differs between experienced workers and novices in different lifting conditions (i.e., lifting asymmetry and fatigue). Three different measures (cycle-to-cycle SD, sample entropy, and the goal equivalent manifold) were used to quantify MV. In a symmetric lifting task, experienced workers had more constrained movement than novices, and experienced workers exhibited more consistent behavior in the asymmetric condition. Novices constrained their movements, and could not maintain the same level of variability in the asymmetric condition. We concluded that experienced workers adapt stable or flexible strategies depending on task difficulty. In a prolonged lifting task, both groups increased their MV to adapt to fatigue; they particularly increased variability in a direction that had no effects on their main task goal. Developing fatigue also makes it difficult for individuals maintain the main goal. Based on these results, we conclude that increasing variability is an adaptive strategy in response to fatigue. We also assessed variability in gait parameters to compare gait adaptability using a head-worn display (HWD) compared with head-down displays for visual information presentation. An effective strategy we observed for performing a cognitive task successfully during walking was to increase gait variability in the goal direction. In addition, we found that head-up walking had smaller effects on MV, suggesting that HWDs are a promising technology to reduce adverse events during gait (e.g., falls). In summary, these results suggest that MV can be a useful indicator for evaluating some occupational injury risks. === Ph. D.
author2 Industrial and Systems Engineering
author_facet Industrial and Systems Engineering
Sedighi, Alireza
author Sedighi, Alireza
author_sort Sedighi, Alireza
title Applications of Motor Variability for Assessing Repetitive Occupational Tasks
title_short Applications of Motor Variability for Assessing Repetitive Occupational Tasks
title_full Applications of Motor Variability for Assessing Repetitive Occupational Tasks
title_fullStr Applications of Motor Variability for Assessing Repetitive Occupational Tasks
title_full_unstemmed Applications of Motor Variability for Assessing Repetitive Occupational Tasks
title_sort applications of motor variability for assessing repetitive occupational tasks
publisher Virginia Tech
publishDate 2017
url http://hdl.handle.net/10919/77947
work_keys_str_mv AT sedighialireza applicationsofmotorvariabilityforassessingrepetitiveoccupationaltasks
_version_ 1719343935306858496