Proceedings of the 2nd Workshop on Natural Language Generation, Evaluation, and Metrics (GEM) 2022
DOI: 10.18653/v1/2022.gem-1.13
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Enhancing and Evaluating the Grammatical Framework Approach to Logic-to-Text Generation

Abstract: Logic-to-text generation is an important yet underrepresented area of natural language generation (NLG). In particular, most previous works on this topic lack sound evaluation. We address this limitation by building and evaluating a system that generates high-quality English text given a first-order logic (FOL) formula as input. We start by analyzing the performance of Ranta (2011)'s system. Based on this analysis, we develop an extended version of the system, which we name LOLA, that performs formula simplifi… Show more

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