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Extract noise? #10
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It is possible to use directly the underlying integrator (sdeint.itoSRI2) which offers an option to explicitly specify Wiener increments (argument dW). You can generate the increments using e.g. numpy.random.randn and from those it is straightforward to calculate the noise. |
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I am using sdeint as it is shown in the 2nd example. So multi-dimensional independent driving Wiener processes. Is it possible to save the noise for every dimension/timestep?
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