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Groups and Symmetries in Statistical Models

Anna Seigal (Harvard)
Thursday, May 26, 2022 - 1:00pm to 2:00pm
PDL C-401 and on Zoom
Anna Seigal

Groups and symmetries are at the heart of many problems in statistics and data analysis. I will focus on parameter estimation in statistical models via maximum likelihood estimation. We will see connections between maximum likelihood estimation, linear algebra, and invariant theory. The group or symmetric structure of a statistical model can be used to capture the existence and uniqueness of a maximum likelihood estimate, as well as to suggest suitable algorithms to find it. This talk is based on joint work with Carlos Améndola, Kathlén Kohn, Visu Makam, and Philipp Reichenbach.

This talk will be hybrid, held in-person and online on Zoom

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