2-D Neural Geometry Underpins Hierarchical Organization of Sequence in Human Working Memory
Fan, Y.; Wang, M.; Ding, N.; Luo, H.
Show abstract
Working memory (WM) is constructive in nature. Instead of passively retaining information, WM reorganizes complex sequences into hierarchically embedded chunks to overcome capacity limits and facilitate flexible behavior. To investigate the neural mechanisms underlying hierarchical reorganization in WM, we performed two electroencephalography (EEG) and one magnetoencephalography (MEG) experiments, wherein humans retain in WM a temporal sequence of items, i.e., syllables, which are organized into chunks, i.e., multisyllabic words. We demonstrate that the 1-D sequence is represented by 2-D neural representational geometry in WM arising from parietal-frontal regions, with separate dimensions encoding item position within a chunk and chunk position in the sequence. Critically, this 2-D geometry is observed consistently in different experimental settings, even during tasks discouraging hierarchical reorganization in WM and correlates with WM behavior. Overall, these findings strongly support that complex sequences are reorganized into factorized multi-dimensional neural representational geometry in WM, which also speaks to general structure-based organizational principles given WMs involvement in many cognitive functions.
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