Performance on the processing portion of complex working memory span tasks is related to working memory capacity estimates

被引:0
作者
Lauren L. Richmond
Lois K. Burnett
Alexandra B. Morrison
B. Hunter Ball
机构
[1] Stony Brook University,Department of Psychology
[2] California State University,Department of Psychology
[3] Sacramento,Department of Psychology
[4] University of Texas at Arlington,undefined
来源
Behavior Research Methods | 2022年 / 54卷
关键词
Working memory; Processing; Storage; Individual differences; Complex span task;
D O I
暂无
中图分类号
学科分类号
摘要
Individual differences in working memory capacity (WMC) have long been known to relate to performance in domains outside of WM, including attentional control, long-term memory, problem-solving, and fluid intelligence to name a few. Complex span WM tasks, composed of a processing component and a storage component, are often used to index WMC in these types of investigations. Capacity estimates are derived from performance on the storage component only, while processing performance is often largely ignored. Here, we explore the relationship between processing performance and WMC in a large dataset for each of three complex span tasks to better characterize how the components of these tasks might be related. We provide evidence that enforcing an 85% or better accuracy criterion for the processing portion of the task results in the removal of a disproportionate number of individuals exhibiting lower WMC estimates. We also find broad support for differences in processing task performance, characterized according to both accuracy and reaction time metrics, as a function of WMC. We suggest that researchers may want to include processing task performance measures, in addition to capacity estimates, in studies using complex span tasks to index WMC. This approach may better characterize the relationships between complex span task performance and performance in disparate domains of cognition.
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收藏
页码:780 / 794
页数:14
相关论文
共 171 条
  • [1] Ball BH(2018)Proactive control processes in event-based prospective memory: Evidence from intraindividual variability and ex-Gaussian analyses Journal of Experimental Psychology: Learning, Memory, and Cognition 44 793-811
  • [2] Brewer GA(2011)Moving beyond the mean in studies of mental chronometry: The power of response time distributional analyses Current Directions in Psychological Science 20 160-166
  • [3] Balota DA(2008)Beyond mean response latency: Response time distributional analyses of semantic priming Journal of Memory and Language 59 495-523
  • [4] Yap MJ(2001)Developmental increase in working memory span: Resource sharing or temporal decay? Journal of Memory and Language 45 1-20
  • [5] Balota DA(2012)Processing speed and visuospatial executive function predict visual working memory ability in older adults Experimental Aging Research 38 1-19
  • [6] Yap MJ(2001)The cocktail party phenomenon revisited: The importance of working memory capacity Psychonomic Bulletin & Review 8 331-335
  • [7] Cortese MJ(2002)A latent variable analysis of working memory capacity, short-term memory capacity, processing speed, and general fluid intelligence Intelligence 30 163-183
  • [8] Watson JM(2005)Working memory span tasks: A methodological review and user’s guide Psychonomic Bulletin & Review 12 769-786
  • [9] Barrouillet P(1980)Individual differences in working memory and reading Verbal Learning and Verbal Behavior 19 450-466
  • [10] Camos V(2007)Unexpected costs of high working memory capacity following directed forgetting and contextual change manipulations Memory & Cognition 35 1074-1082