Robust PCFG-Based Generation Using Automatically Acquired LFG ApproximationsDownload PDFOpen Website

2006 (modified: 13 Nov 2022)ACL 2006Readers: Everyone
Abstract: We present a novel PCFG-based architecture for robust probabilistic generation based on wide-coverage LFG approximations (Cahill et al., 2004) automatically extracted from treebanks, maximising the probability of a tree given an f-structure. We evaluate our approach using string-based evaluation. We currently achieve coverage of 95.26%, a BLEU score of 0.7227 and string accuracy of 0.7476 on the Penn-II WSJ Section 23 sentences of length ≤20.
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