Dissociated emergent-response system and fine-processing system in human neural network and a heuristic neural architecture for autonomous humanoid robots

Comput Intell Neurosci. 2010:2010:314932. doi: 10.1155/2010/314932. Epub 2011 Feb 10.

Abstract

The current study investigated the functional connectivity of the primary sensory system with resting state fMRI and applied such knowledge into the design of the neural architecture of autonomous humanoid robots. Correlation and Granger causality analyses were utilized to reveal the functional connectivity patterns. Dissociation was within the primary sensory system, in that the olfactory cortex and the somatosensory cortex were strongly connected to the amygdala whereas the visual cortex and the auditory cortex were strongly connected with the frontal cortex. The posterior cingulate cortex (PCC) and the anterior cingulate cortex (ACC) were found to maintain constant communication with the primary sensory system, the frontal cortex, and the amygdala. Such neural architecture inspired the design of dissociated emergent-response system and fine-processing system in autonomous humanoid robots, with separate processing units and another consolidation center to coordinate the two systems. Such design can help autonomous robots to detect and respond quickly to danger, so as to maintain their sustainability and independence.

MeSH terms

  • Artificial Intelligence
  • Behavior / physiology
  • Brain Mapping / methods
  • Cognition / physiology
  • Executive Function / physiology
  • Humans
  • Magnetic Resonance Imaging / methods
  • Models, Neurological*
  • Nerve Net / anatomy & histology
  • Nerve Net / physiology*
  • Neural Networks, Computer*
  • Neural Pathways / anatomy & histology
  • Neural Pathways / physiology*
  • Perception / physiology
  • Robotics / methods*
  • Sensation / physiology*