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Long-term memory supports the retention, preservation, and prioritization of short-term memory.

机译:长期记忆支持短期记忆的保留,保留和优先顺序。

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摘要

This thesis describes a series of experiments that have effected several empirical tests of the theoretical idea that the short-term retention of information is accomplished by the re-activation of long-term memory (LTM) representations. Short-term memory (STM) refers to the retention of information in an active state when this information is not present in the environment. Working memory (WM) refers to the ability to manipulate or otherwise transform STM information, to protect it in the face of interference, and to use it to guide high-level behaviors. STM and WM are of central importance in the study of high-level cognition because they have been implicated as critical contributors to such essential cognitive functions and properties as language comprehension, learning, planning, reasoning, and general fluid intelligence. This research leveraged a powerful new information-based analysis technique for neuroimaging data -- multi-voxel pattern analysis of functional magnetic resonance imaging (fMRI) data -- in a way that enabled the direct assessment of physiological correlates of the concept of activated LTM representations. The method allowed for the precise tracking of actual information representations in the brain, not simply elevated activity assumed to correspond to information. The strongest criticism of the activated-LTM model has been that it fails to account for the flexibility & dynamism of WM, but the results of this thesis provide converging empirical evidence that the re-activation of LTM representations supports robust and efficient information processing in the human brain. Information-based fMRI analysis revealed, in a way that was not possible before, that: (1) persistent brain activity many not be the neural instantiation of STM but instead may reflect the moment-to-moment contents of attention; (2) the theoretical model of activated-LTM needs to be refined in order to account for processes required for complex human behavior (e.g., preservation and prioritization); (3) parallel encoding (in multiple representational formats) and recoding many indeed by the basis of STM. I therefore contend that activated LTM should be considered a critical component to the broad range of cognitive processes essential for high-level behaviors.
机译:本文描述了一系列实验,这些实验已经对以下理论想法进行了实验检验:通过重新激活长期记忆(LTM)表示,可以实现信息的短期保留。短期记忆(STM)是指在环境中不存在信息时将其保留为活动状态的信息。工作记忆(WM)是指操纵或以其他方式转换STM信息,在受到干扰时对其进行保护并用来指导高级行为的能力。 STM和WM在高级认知研究中至关重要,因为它们被认为是诸如语言理解,学习,计划,推理和一般智能等基本认知功能和特性的重要贡献者。这项研究利用了一种功能强大的基于信息的新型分析技术来处理神经影像数据-功能磁共振成像(fMRI)数据的多体素模式分析-以一种方式可以直接评估激活的LTM表示概念的生理相关性。该方法可以精确跟踪大脑中的实际信息表示,而不仅仅是假设与信息相对应的活动增加。对激活的LTM模型的最强烈的批评是,它未能考虑到WM的灵活性和动态性,但是本论文的结果提供了越来越多的经验证据,表明重新激活LTM表示可以支持WM中强大而有效的信息处理。人脑。基于信息的功能磁共振成像分析以前所未有的方式揭示了:(1)持续的大脑活动很多不是STM的神经实例,而是可以反映出注意的瞬间。 (2)需要完善被激活的LTM的理论模型,以解决复杂的人类行为所需的过程(例如,保存和优先级划分); (3)并行编码(以多种表示形式),并且实际上是根据STM重新编码的。因此,我认为激活的LTM应该被视为对高级行为必不可少的广泛认知过程的关键组成部分。

著录项

  • 作者

    Lewis-Peacock, Jarrod Alan.;

  • 作者单位

    The University of Wisconsin - Madison.;

  • 授予单位 The University of Wisconsin - Madison.;
  • 学科 Psychology Experimental.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 138 p.
  • 总页数 138
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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