Mental fatigue modulates dynamic adaptation to perceptual demand in speeded detection.

When stimulus intensity in simple reaction-time tasks randomly varies across trials, detection speed usually improves after a low-intensity trial. With auditory stimuli, this improvement was often found to be asymmetric, being greater on current low-intensity trials. Our study investigated (1) wheth...

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Main Authors: Robert Langner, Simon B Eickhoff, Michael B Steinborn
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2011-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC3228758?pdf=render
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spelling doaj-0d6820fb741049e1a6ce111b8d4908462020-11-24T21:39:11ZengPublic Library of Science (PLoS)PLoS ONE1932-62032011-01-01612e2839910.1371/journal.pone.0028399Mental fatigue modulates dynamic adaptation to perceptual demand in speeded detection.Robert LangnerSimon B EickhoffMichael B SteinbornWhen stimulus intensity in simple reaction-time tasks randomly varies across trials, detection speed usually improves after a low-intensity trial. With auditory stimuli, this improvement was often found to be asymmetric, being greater on current low-intensity trials. Our study investigated (1) whether asymmetric sequential intensity adaptation also occurs with visual stimuli; (2) whether these adjustments reflect decision-criterion shifts or, rather, a modulation of perceptual sensitivity; and (3) how sequential intensity adaptation and its underlying mechanisms are affected by mental fatigue induced through prolonged performance. In a continuous speeded detection task with randomly alternating high- and low-intensity visual stimuli, the reaction-time benefit after low-intensity trials was greater on subsequent low- than high-intensity trials. This asymmetry, however, only developed with time on task (TOT). Signal-detection analyses showed that the decision criterion transiently became more liberal after a low-intensity trial, whereas observer sensitivity increased when the preceding and current stimulus were of equal intensity. TOT-induced mental fatigue only affected sensitivity, which dropped more on low- than on high-intensity trials. This differential fatigue-related sensitivity decrease selectively enhanced the impact of criterion down-shifts on low-intensity trials, revealing how the interplay of two perceptual mechanisms and their modulation by fatigue combine to produce the observed overall pattern of asymmetric performance adjustments to varying visual intensity in continuous speeded detection. Our results have implications for similar patterns of sequential demand adaptation in other cognitive domains as well as for real-world prolonged detection performance.http://europepmc.org/articles/PMC3228758?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Robert Langner
Simon B Eickhoff
Michael B Steinborn
spellingShingle Robert Langner
Simon B Eickhoff
Michael B Steinborn
Mental fatigue modulates dynamic adaptation to perceptual demand in speeded detection.
PLoS ONE
author_facet Robert Langner
Simon B Eickhoff
Michael B Steinborn
author_sort Robert Langner
title Mental fatigue modulates dynamic adaptation to perceptual demand in speeded detection.
title_short Mental fatigue modulates dynamic adaptation to perceptual demand in speeded detection.
title_full Mental fatigue modulates dynamic adaptation to perceptual demand in speeded detection.
title_fullStr Mental fatigue modulates dynamic adaptation to perceptual demand in speeded detection.
title_full_unstemmed Mental fatigue modulates dynamic adaptation to perceptual demand in speeded detection.
title_sort mental fatigue modulates dynamic adaptation to perceptual demand in speeded detection.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2011-01-01
description When stimulus intensity in simple reaction-time tasks randomly varies across trials, detection speed usually improves after a low-intensity trial. With auditory stimuli, this improvement was often found to be asymmetric, being greater on current low-intensity trials. Our study investigated (1) whether asymmetric sequential intensity adaptation also occurs with visual stimuli; (2) whether these adjustments reflect decision-criterion shifts or, rather, a modulation of perceptual sensitivity; and (3) how sequential intensity adaptation and its underlying mechanisms are affected by mental fatigue induced through prolonged performance. In a continuous speeded detection task with randomly alternating high- and low-intensity visual stimuli, the reaction-time benefit after low-intensity trials was greater on subsequent low- than high-intensity trials. This asymmetry, however, only developed with time on task (TOT). Signal-detection analyses showed that the decision criterion transiently became more liberal after a low-intensity trial, whereas observer sensitivity increased when the preceding and current stimulus were of equal intensity. TOT-induced mental fatigue only affected sensitivity, which dropped more on low- than on high-intensity trials. This differential fatigue-related sensitivity decrease selectively enhanced the impact of criterion down-shifts on low-intensity trials, revealing how the interplay of two perceptual mechanisms and their modulation by fatigue combine to produce the observed overall pattern of asymmetric performance adjustments to varying visual intensity in continuous speeded detection. Our results have implications for similar patterns of sequential demand adaptation in other cognitive domains as well as for real-world prolonged detection performance.
url http://europepmc.org/articles/PMC3228758?pdf=render
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