Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
437413 | Theoretical Computer Science | 2011 | 11 Pages |
Abstract
Recently Clark and Eyraud (2007) [10] have shown that substitutable context-free languages, which capture an aspect of natural language phenomena, are efficiently identifiable in the limit from positive data. Generalizing their work, this paper presents a polynomial-time learning algorithm for new subclasses of multiple context-free languages with variants of substitutability.
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