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question:can-neuronal-responses-be-described-as-a-gradient-descent-on-variational-free-energyCan neuronal responses be described as a gradient descent on variational free energy?
Central research question: whether process-level neural dynamics conform to free energy minimization.
Source paper
extracted_from(2017) · Karl Friston · Thomas FitzGerald · Francesco Rigoli · Philipp Schwartenbeck +1
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Claims (1)
claim
- Central claim: gradient descent on free energy is a valid process-level description of neural activity.
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cosine ≥ 0.65 · no typed edgeEntities in the same semantic neighborhood but without a typed relation to this one — candidates for new edges or unrecognized duplicates.
- Key theoretical result: gradient descent formulation validates free energy as fundamental principle.
- Fundamental assertion: single imperative (free energy minimization) explains diverse cognitive and neural phenomena.
- The dynamics of synaptic plasticity follow a descent on the gradient of variational free energy.claim0.833Learning as free energy gradient descent, Section 8.
- Process by which neuronal dynamics minimize free energy; produces empirically observable neural phenomena.
- Optimization procedure for simultaneously updating action selection and perception; uses step size ζ (default 4).
- A formal result from the proof.
- Definitional claim from Section 2.
- The core process theory hypothesis set up in the paper.