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Motor Restrictions Impair Divergent Thinking During Walking and During Sitting

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Journal Psychol Res
Specialty Psychology
Date 2022 Jan 8
PMID 34997860
Citations 5
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Abstract

Creativity, specifically divergent thinking, has been shown to benefit from unrestrained walking. Despite these findings, it is not clear if it is the lack of restriction that leads to the improvement. Our goal was to explore the effects of motor restrictions on divergent thinking for different movement states. In addition, we assessed whether spontaneous eye blinks, which are linked to motor execution, also predict performance. In experiment 1, we compared the performance in Guilford's alternate uses task (AUT) during walking vs. sitting, and analysed eye blink rates during both conditions. We found that AUT scores were higher during walking than sitting. Albeit eye blinks differed significantly between movement conditions (walking vs. sitting) and task phase (baseline vs. thinking vs. responding), they did not correlate with task performance. In experiment 2 and 3, participants either walked freely or in a restricted path, or sat freely or fixated on a screen. When the factor restriction was explicitly modulated, the effect of walking was reduced, while restriction showed a significant influence on the fluency scores. Importantly, we found a significant correlation between the rate of eye blinks and creativity scores between subjects, depending on the restriction condition. Our study shows a movement state-independent effect of restriction on divergent thinking. In other words, similar to unrestrained walking, unrestrained sitting also improves divergent thinking. Importantly, we discuss a mechanistic explanation of the effect of restriction on divergent thinking based on the increased size of the focus of attention and the consequent bias towards flexibility.

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References
1.
Beaty R, Benedek M, Wilkins R, Jauk E, Fink A, Silvia P . Creativity and the default network: A functional connectivity analysis of the creative brain at rest. Neuropsychologia. 2014; 64:92-8. PMC: 4410786. DOI: 10.1016/j.neuropsychologia.2014.09.019. View

2.
Blin O, Masson G, Azulay J, FONDARAI J, Serratrice G . Apomorphine-induced blinking and yawning in healthy volunteers. Br J Clin Pharmacol. 1990; 30(5):769-73. PMC: 1368179. DOI: 10.1111/j.1365-2125.1990.tb03848.x. View

3.
Bologna M, Fasano A, Modugno N, Fabbrini G, Berardelli A . Effects of subthalamic nucleus deep brain stimulation and L-DOPA on blinking in Parkinson's disease. Exp Neurol. 2012; 235(1):265-72. DOI: 10.1016/j.expneurol.2012.02.004. View

4.
Bonneh Y, Adini Y, Polat U . Contrast sensitivity revealed by spontaneous eyeblinks: Evidence for a common mechanism of oculomotor inhibition. J Vis. 2016; 16(7):1. DOI: 10.1167/16.7.1. View

5.
Brainard D . The Psychophysics Toolbox. Spat Vis. 1997; 10(4):433-6. View