Can compression take place in working memory without a central contribution of long-term memory?

Information is easier to remember when it is recognized as structured. One explanation for this benefit is that people represent structured information in a compressed form, thus reducing memory load. However, the contribution of long-term memory and working memory to compression are not yet disenta...

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Publicado en:Memory & Cognition Vol. 52; no. 8; pp. 1726 - 1737
Autores principales: Mathy, Fabien, Friedman, Ori, Gauvrit, Nicolas
Formato: Artículo
Publicado: Springer Nature Nov2024
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Acceso en línea:Ver este registro en EBSCOhost
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        atl: Can compression take place in working memory without a central contribution of long-term memory?
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        au:
          Mathy, Fabien
          Friedman, Ori
          Gauvrit, Nicolas
        affil:
          Université Côte d'Azur & CNRS, Nice, France
          https://ror.org/01aff2v68 University of Waterloo, Waterloo, Canada
          Université de Lille, Lille, France
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        Museums
        Memory
        Descriptive statistics
        Short-term memory
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          Memory
          Museums
          Descriptive statistics
          Short-term memory
      keyword:
        Chunking
        Compression
        Long term memory
        Memory load
        Working memory
        Chunking
        Compression
        Long term memory
        Memory load
        Working memory
      ab: Information is easier to remember when it is recognized as structured. One explanation for this benefit is that people represent structured information in a compressed form, thus reducing memory load. However, the contribution of long-term memory and working memory to compression are not yet disentangled. Previous work has mostly produced evidence that long-term memory is the main source of compression. In the present work, we reveal two signatures of compression in working memory using a large-scale naturalistic data set from a science museum. Analyzing data from more than 32,000 memory trials, in which people attempted to recall briefly displayed sequences of colors, we examined how the estimated compressibility of each sequence predicted memory performance. Besides finding that compressibility predicted memory performance, we found that greater compressibility of early subsections of sequences predicted better memory for later subsections, and that mis-recalled sequences were simpler than the originals. These findings suggest that (1) more compressibility reduces memory load, leaving space for additional information; (2) memory errors are not random and instead reflect compression gone awry. Together, these findings suggest that compression can take place in working memory. This may enable efficient storage on the spot without direct contributions from long-term memory. However, we also discuss ways long-term memory could explain our findings.
      pubtype: Academic Journal
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    language: English
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