A neuro-inspired architecture learns without supervision using clustering and predictive coding.
arXiv research
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Mod-DeepESN improves echo state networks for complex, multi-scale tasks.
GOTabPFN improves tabular model performance with compact tokenization for HDLSS data.
Neuromemristive systems (NMSs) currently represent the most promising platform to achieve energy efficient neuro-inspired computation. However, since the research field is less than a decade old, there are still countless algorithms and design paradigms to be explored within these systems. One particular domain that re…
MEMEC improves sample efficiency in reinforcement learning.
Efficiently stores and retrieves past states for faster learning in reinforcement learning.
Accumulator module improves reinforcement learning by delaying decisions based on evidence.
Neuro-inspired RL solves complex control problems with fewer controllers.