Replay-identification

Latest version: v0.10.1.dev0

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0.3.2.dev0

+ Fix track labels
+ Set likelihood to zero not on track

0.3.1.dev0

+ Add w-track specific 1D random walk state transition
+ Add random walk state transition
+ Make interface more consistent with scikit-learn

0.2.1.dev0

+ Minor fix to handle the case where the GLM does not converge in the spiking model

0.2.0.dev0

+ Implement smoother, which incorporates both past and future information (feb1db0)
+ Allow user to specify `lfp_model`, which can be any `scikit-learn` kernel density estimator (5309783)
+ Raise NotImplemented Errors for loading and saving models (c8bcc93)
+ Convert all data to numpy arrays to handle Pandas DataFrames (a4f58c0)
+ Added some model checking plots (ecc8d4c)
+ Remove speed from default likelihood (37a6d6a)

0.1.8.dev0

+ Fix handling of NaN
+ Don't estimate the movement variance
+ Fix the predict function
+ Fix the default penalty and knot spacing for spiking model
+ Add option to specify bin number

0.1.7.dev0

+ Make speed knot selection for replay state transition based on the data or user specified.

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