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Reading Seminar on Algebraic Geometry and Singular Learning Theory

Time:

Friday, 10:00 - 12:00

Room: FR 6046

Organizers:

Dr. Franz Király, Dr. Paul Larsen

A first organizatorial meeting will be held on October 19, in room FR6048, where topics and schedule will be discussed. The first seminar will take place on October 26.

Summary

Singular Learning Theory is the study of singular parametric estimation, where naive application of classical learning and model selection methods like Max-Likelihood, Bayes Learning, AIC or BIC fails. As virtually all meaningful and practically relevant learning machines like Neural Networks, Mixture Models, Hidden Markov Models or Boltzmann Machines are singular, the analysis of their singular properties is of high practical relevance. Sumio Watanabe has developed generalizations of Bayes Learning Theory and Bayes Model Selection for the singular case; the aim of this seminar is the study of his work and its ramifications.

Prerequisites

Knowledge in Algebraic Geometry, Singularity Theory, Parametric Statistics and Bayes Estimation Theory is useful, but not necessary; all relevant basics will be discussed in the course.

Schedule

The topic list refers to the book Algebraic Geometry and Statistical Learning Theory, by Sumio Watanabe.

Date

Topic

Discussion leader

19 October 2012

Brief Organizatorial Meeting in FR6048

Paul Larsen and Franz Király

26 October 2012

Will be decided in the first meeting

IDA Wiki: Main/WS12_AGSLT (last edited 2013-02-04 12:21:03 by FranzKiraly)