Filtering with State-Observation Examples via Kernel Monte Carlo Filter

Neural Computation(2016)

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摘要
This letter addresses the problem of filtering with a state-space model. Standard approaches for filtering assume that a probabilistic model for observations (i.e., the observation model) is given explicitly or at least parametrically. We consider a setting where this assumption is not satisfied; we assume that the knowledge of the observation model is provided only by examples of state-observatio...
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