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Optimal anticipatory control as a theory of motor preparation: A thalamo-cortical circuit model

Ta-Chu Kao, Mahdieh S. Sadabadi, Guillaume Hennequin

2021Neuron138 citationsDOIOpen Access PDF

Abstract

Across a range of motor and cognitive tasks, cortical activity can be accurately described by low-dimensional dynamics unfolding from specific initial conditions on every trial. These "preparatory states" largely determine the subsequent evolution of both neural activity and behavior, and their importance raises questions regarding how they are, or ought to be, set. Here, we formulate motor preparation as optimal anticipatory control of future movements and show that the solution requires a form of internal feedback control of cortical circuit dynamics. In contrast to a simple feedforward strategy, feedback control enables fast movement preparation by selectively controlling the cortical state in the small subspace that matters for the upcoming movement. Feedback but not feedforward control explains the orthogonality between preparatory and movement activity observed in reaching monkeys. We propose a circuit model in which optimal preparatory control is implemented as a thalamo-cortical loop gated by the basal ganglia.

Topics & Concepts

Feed forwardComputer scienceMotor controlControl (management)NeuroscienceSet (abstract data type)Movement (music)Dynamics (music)Process (computing)Internal modelControl theory (sociology)PsychologyArtificial intelligenceControl engineeringEngineeringProgramming languagePhilosophyPedagogyAestheticsOperating systemNeural dynamics and brain functionEEG and Brain-Computer InterfacesFunctional Brain Connectivity Studies
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