Which Learning Algorithms Can Generalize Identity-Based Rules to Novel Inputs?

CogSci, 2016.

Cited by: 5|Bibtex|Views11|Links
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Abstract:

We propose a novel framework for the analysis of learning algorithms that allows us to say when such algorithms can and cannot generalize certain patterns from training data to test data. In particular we focus on situations where the rule that must be learned concerns two components of a stimulus being identical. We call such a basis for...More

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