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10.1016/j.cub.2014.07.066

http://scihub22266oqcxt.onion/10.1016/j.cub.2014.07.066
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C4181677!4181677!25201683
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suck abstract from ncbi


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pmid25201683      Curr+Biol 2014 ; 24 (18): 2174-80
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  • Reconstructions of information in visual spatial working memory degrade with memory load #MMPMID25201683
  • Sprague TC; Ester EF; Serences JT
  • Curr Biol 2014[Sep]; 24 (18): 2174-80 PMID25201683show ga
  • Working memory (WM) enables the maintenance and manipulation of information relevant to behavioral goals. Variability in WM ability is strongly correlated with IQ [1] and WM function is impaired in many neurological and psychiatric disorders [2, 3], suggesting that this system is a core component of higher cognition. WM storage is thought to be mediated by patterns of activity in neural populations selective for specific properties (e.g., color, orientation, location, motion direction) of memoranda [4?13]. Accordingly, many models propose that differences in the amplitude of these population responses should be related to differences in memory performance [14, 15]. Here, we used functional magnetic resonance imaging (fMRI) and an image reconstruction technique based on a spatial encoding model [16] to visualize and quantify population-level memory representations supported by multivoxel patterns of activation within regions of occipital, parietal and frontal cortex while participants precisely remembered the location(s) of 0, 1, or 2 small stimuli. We successfully reconstructed images containing representations of the remembered ? but not forgotten ? locations within regions of occipital, parietal, and frontal cortex using delay-period activation patterns. Critically, the amplitude of representations of remembered locations and behavioral performance both decreased with increasing memory load. These results suggest that differences in visual WM performance between memory load conditions are mediated by changes in the fidelity of large-scale population response profiles distributed across multiple areas of human cortex.
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