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Representation of spatial sequences using nested rules in human prefrontal cortex

  • Liping Wang
  • , Marie Amalric
  • , Wen Fang
  • , Xinjian Jiang
  • , Christophe Pallier
  • , Santiago Figueira
  • , Mariano Sigman
  • , Stanislas Dehaene
  • Chinese Academy of Sciences
  • Collège de France
  • Service Hospitalier Frédéric Joliot
  • Sorbonne Université
  • Key Laboratory of Brain Functional Genomics, Ministry of Education
  • Universidad de Buenos Aires
  • Universidad Torcuato Di Tella
  • CNRS IRL-IFAECI
  • Universidad Nebrija

Research output: Contribution to journalArticlepeer-review

33 Citations (Scopus)

Abstract

Memory for spatial sequences does not depend solely on the number of locations to be stored, but also on the presence of spatial regularities. Here, we show that the human brain quickly stores spatial sequences by detecting geometrical regularities at multiple time scales and encoding them in a format akin to a programming language. We measured gaze-anticipation behavior while spatial sequences of variable regularity were repeated. Participants’ behavior suggested that they quickly discovered the most compact description of each sequence in a language comprising nested rules, and used these rules to compress the sequence in memory and predict the next items. Activity in dorsal inferior prefrontal cortex correlated with the amount of compression, while right dorsolateral prefrontal cortex encoded the presence of embedded structures. Sequence learning was accompanied by a progressive differentiation of multi-voxel activity patterns in these regions. We propose that humans are endowed with a simple “language of geometry” which recruits a dorsal prefrontal circuit for geometrical rules, distinct from but close to areas involved in natural language processing.

Original languageEnglish
Pages (from-to)245-255
Number of pages11
JournalNeuroImage
Volume186
DOIs
Publication statusPublished - 1 Feb 2019

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