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Theo Damoulas

3 accepted papers

2021

Higher Order Kernel Mean Embeddings to Capture Filtrations of Stochastic Processes

NeurIPS 2021poster

Stochastic processes are random variables with values in some space of paths. However, reducing a stochastic process to a path-valued random variable ignores its filtration, i.e. the flow of information carried by the process through time. By conditioning the process on its filtration, we introduce…

2021

Spatio-Temporal Variational Gaussian Processes

NeurIPS 2021poster

We introduce a scalable approach to Gaussian process inference that combines spatio-temporal filtering with natural gradient variational inference, resulting in a non-conjugate GP method for multivariate data that scales linearly with respect to time. Our natural gradient approach enables applicatio…