Sequence Labeling for Constituent Parsing: A Comparative Study and Encoding Innovations.
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| Title: | Sequence Labeling for Constituent Parsing: A Comparative Study and Encoding Innovations. |
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| Authors: | Roca, Diego1 (AUTHOR) d.roca1@udc.es, Vilares, David1 (AUTHOR) david.vilares@udc.es, Gómez-Rodríguez, Carlos1 (AUTHOR) carlos.gomez@udc.es |
| Source: | Computational Linguistics. Jun2026, Vol. 52 Issue 2, p495-539. 45p. |
| Subjects: | Encoding, Parsing (Grammar), Artificial neural networks, Computational linguistics, Natural language processing, Evaluation methodology |
| Abstract: | Various encodings have been proposed to cast constituent parsing in terms of a sequence labeling task. However, unlike in the case of dependency parsing, existing comparisons have not been entirely homogeneous and, to the best of our knowledge, there is no systematic evaluation of these encodings under uniform configurations. A homogeneous evaluation needs to account for various aspects that could influence results, either by controlling for these aspects to ensure uniformity (e.g., network architecture, parameter settings, postprocessing of ill-formed output), or by systematically analyzing their impact (e.g., the impact of binary versus arbitrary structures). In this article, we: (1) compare different encodings comprehensively both theoretically and empirically, on a modern neural architecture and across nine languages, and (2) introduce new encodings and variants, including an encoding that our analysis finds particularly accurate and compact. [ABSTRACT FROM AUTHOR] |
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| Database: | Engineering Source |
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