HyperNEAT

Hypercube-based NEAT, or HyperNEAT, is a generative encoding that evolves artificial neural networks (ANNs) with the principles of the widely used NeuroEvolution of Augmented Topologies (NEAT) algorithm developed by Kenneth Stanley. It is a technique for evolving large-scale neural networks using the geometric regularities of the task domain.

Source: Wikipedia — HyperNEAT (CC BY-SA 4.0)

HyperNEAT

Hypercube-based NEAT, or HyperNEAT, is a generative encoding that evolves artificial neural networks (ANNs) with the principles of the widely used NeuroEvolution of Augmented Topologies (NEAT) algorithm developed by Kenneth Stanley. It is a technique for evolving large-scale neural networks using the geometric regularities of the task domain.

This neuron ends here.

Source: Wikipedia "HyperNEAT" · CC BY-SA 4.0

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