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Normalisation of Learning StateVariables by an attribute #147

@ajc158

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@ajc158

Currently normalisation for learning requires a State Variable to be passed out of a Weight Update, remapped using a connection, then passed back in. This is both inefficient and opaque for something that is a commonly required method.

Instead the normalisation should be defined as an attribute for Learning StateVariables @norm={'none','post,'pre'} to define no normalisation, postsynaptic normalisation or presynaptic normalisation respectively. If @norm is absent the 'none' is assumed.

Any comments?

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