Prediction with expert advice by following the perturbed leader for general weights
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Date
Authors
Hutter, Marcus
Poland, Jan
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Springer Verlag
Abstract
When applying aggregating strategies to Prediction with Expert
Advice, the learning rate must be adaptively tuned. The natural
choice of square ( complexity/current loss) renders the analysis of Weighted Majority
derivatives quite complicated. In particular, for arbitrary weights
there have been no results proven so far. The analysis of the alternative
“Follow the Perturbed Leader” (FPL) algorithm from [KV03] (based
on Hannan’s algorithm) is easier. We derive loss bounds for adaptive
learning rate and both finite expert classes with uniform weights and
countable expert classes with arbitrary weights. For the former setup,
our loss bounds match the best known results so far, while for the latter
our results are new.
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Book Title
Algorithmic Learning Theory: 15th International Conference, ALT 2004, Padova, Italy, October 2-5, 2004. Proceedings (Lecture Notes in Computer Science / Lecture Notes in Artificial Intelligence)
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Open Access