2020
DOI: 10.48550/arxiv.2010.03227
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Learning Half-Spaces and other Concept Classes in the Limit with Iterative Learners

Ardalan Khazraei,
Timo Kötzing,
Karen Seidel

Abstract: In order to model an efficient learning paradigm, iterative learning algorithms access data one by one, updating the current hypothesis without regress to past data. Past research on iterative learning analyzed for example many important additional requirements and their impact on iterative learners.In this paper, our results are twofold. First, we analyze the relative learning power of various settings of iterative learning, including learning from text and from informant, as well as various further restricti… Show more

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