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The human hippocampus guides exploration and exploitation in decision-making. Posterior hippocampus (PH) encourages exploration, while anterior hippocampus (AH) facilitates switching to exploitation based on structured rewards.

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Area of Science:

  • Neuroscience
  • Cognitive Science
  • Decision-Making

Background:

  • Decisions involve balancing exploiting known options versus exploring new ones.
  • Natural environments often feature structured reward distributions, unlike unstructured exploration relying on neocortex, striatum, and amygdala.
  • The hippocampus is crucial for creating cognitive maps to navigate and forage in structured environments.

Purpose of the Study:

  • To investigate the distinct roles of the posterior hippocampus (PH) and anterior hippocampus (AH) in exploration and exploitation.
  • To understand how hippocampal subregions represent information during reinforcement learning with structured rewards.

Main Methods:

  • Utilized a reinforcement learning task with a spatially structured reward function in human participants.
  • Analyzed brain activity, focusing on differential reinforcement representations in the PH and AH.

Main Results:

  • The PH invigorates exploration, while the AH supports the transition to exploitation.
  • PH exhibits early, phasic reward prediction error signals.
  • AH shows delayed, sustained global value maximum signals and goal cell-like activity.

Conclusions:

  • The PH and AH play distinct, complementary roles in navigating structured choice environments.
  • Differential neural representations in hippocampal subregions support adaptive exploration-exploitation strategies.
  • AH dynamically updates value representations and guides goal-directed navigation.