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Generative Manifold Networks (GMN)


Generative Manifold Networks is a generalization of nonlinear dynamical systems from a single state-space with a manifold operator, to an interconnected network of operators on the state-space(s) see: Park et al.

GMN is developed at the Biological Nonlinear Dynamics Data Science Unit, OIST


Installation

Python Package Index (PyPI) gmn.

pip install gmn


Documentation

GMN documentation.


Usage

Example usage at the python prompt in directory gmn/config:

>>> import gmn
>>> G = gmn.GMN( configFile = './default.cfg' )
>>> G.Generate()
>>> G.DataOut.tail()
     Time       A       C       D         B       Out
295   996 -0.2487 -0.5018  0.7500  0.985236 -0.979370
296   997 -0.1874 -0.4708  0.7937  0.985842 -0.991504
297   998 -0.1253 -0.4248  0.8177  0.965066 -0.973041
298   999 -0.0628 -0.3671  0.8224  0.923630 -0.931681
299  1000  0.0000 -0.3016  0.8090  0.862222 -0.871642

References

Experimentally testable whole brain manifolds that recapitulate behavior

Explainable prediction and simulation of complex system dynamics through networks of manifolds

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