Bayesian Detection of Infrequent Differences in Sets of Time Series with Shared Structure

Listgarten, Jennifer, Neal, Radford M., Roweis, Sam T., Puckrin, Rachel, Cutler, Sean

Neural Information Processing Systems 

We present a hierarchical Bayesian model for sets of related, but different, classes of time series data. Our model performs alignment simultaneously across all classes, while detecting and characterizing class-specific differences. During inference themodel produces, for each class, a distribution over a canonical representation ofthe class.

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