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A publicação pode ser exportada nos seguintes formatos: referência da APA (American Psychological Association), referência do IEEE (Institute of Electrical and Electronics Engineers), BibTeX e RIS.

Exportar Referência (APA)
Ribeiro, E., Teixeira, A. S., Ribeiro, R. & De Matos, D. M. (2020). Semantic frame induction through the detection of communities of verbs and their arguments. Applied Network Science. 5 (1)
Exportar Referência (IEEE)
E. Ribeiro et al.,  "Semantic frame induction through the detection of communities of verbs and their arguments", in Applied Network Science, vol. 5, no. 1, 2020
Exportar BibTeX
@article{ribeiro2020_1730765685922,
	author = "Ribeiro, E. and Teixeira, A. S. and Ribeiro, R. and De Matos, D. M.",
	title = "Semantic frame induction through the detection of communities of verbs and their arguments",
	journal = "Applied Network Science",
	year = "2020",
	volume = "5",
	number = "1",
	doi = "10.1007/s41109-020-00312-z",
	url = "https://appliednetsci.springeropen.com/"
}
Exportar RIS
TY  - JOUR
TI  - Semantic frame induction through the detection of communities of verbs and their arguments
T2  - Applied Network Science
VL  - 5
IS  - 1
AU  - Ribeiro, E.
AU  - Teixeira, A. S.
AU  - Ribeiro, R.
AU  - De Matos, D. M.
PY  - 2020
SN  - 2364-8228
DO  - 10.1007/s41109-020-00312-z
UR  - https://appliednetsci.springeropen.com/
AB  - Resources such as FrameNet, which provide sets of semantic frame definitions and annotated textual data that maps into the evoked frames, are important for several NLP tasks. However, they are expensive to build and, consequently, are unavailable for many languages and domains. Thus, approaches able to induce semantic frames in an unsupervised manner are highly valuable. In this paper we approach that task from a network perspective as a community detection problem that targets the identification of groups of verb instances that evoke the same semantic frame and verb arguments that play the same semantic role. To do so, we apply a graph-clustering algorithm to a graph with contextualized representations of verb instances or arguments as nodes connected by edges if the distance between them is below a threshold that defines the granularity of the induced frames. By applying this approach to the benchmark dataset defined in the context of SemEval 2019, we outperformed all of the previous approaches to the task, achieving the current state-of-the-art performance.
ER  -