On Computational Power and the Order-Chaos Phase Transition in Reservoir Computing

Schrauwen, Benjamin, Buesing, Lars, Legenstein, Robert A.

Neural Information Processing Systems 

Randomly connected recurrent neural circuits have proven to be very powerful models for online computations when a trained memoryless readout function is appended. Such Reservoir Computing (RC) systems are commonly used in two flavors: with analog or binary (spiking) neurons in the recurrent circuits. Previous work showed a fundamental difference between these two incarnations of the RC idea.

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