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The AMR-PT corpus and the semantic annotation of challenging sentences from journalistic and opinion texts

Marcio Lima Inácio et al · Pontifícia Universidade Católica de São Paulo - PUC-SP · 2023

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ABSTRACT One of the most popular semantic representation languages in Natural Language Processing (NLP) is Abstract Meaning Representation (AMR). This formalism encodes the meaning of single sentences in directed rooted graphs. For English, there is a large annotated corpus that provides qualitative and reusable data for building or improving existing NLP methods and applications. For building AMR corpora for non-English languages, including Brazilian Portuguese, automatic and manual strategies have been conducted. The automatic annotation methods are essentially based on the cross-linguistic alignment of parallel corpora and the inheritance of the AMR annotation. The manual strategies focus on adapting the AMR English guidelines to a target language. Both annotation strategies have to deal with some phenomena that are challenging. This paper explores in detail some characteristics of Portuguese for which the AMR model had to be adapted and introduces two annotated corpora: AMRNews, a corpus of 870 annotated sentences from journalistic texts, and OpiSums-PT-AMR, comprising 404 opinionated sentences in AMR.

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APA 7

al, M. L. I. E. (2023). The AMR-PT corpus and the semantic annotation of challenging sentences from journalistic and opinion texts. https://doi.org/10.1590/1678-460x202339355159

MLA

al, Marcio Lima Inácio et. "The AMR-PT corpus and the semantic annotation of challenging sentences from journalistic and opinion texts." 2023. https://doi.org/10.1590/1678-460x202339355159.

Chicago

al, Marcio Lima Inácio et. 2023. "The AMR-PT corpus and the semantic annotation of challenging sentences from journalistic and opinion texts.". https://doi.org/10.1590/1678-460x202339355159.

Harvard

al, M. L. I. E. 2023, The AMR-PT corpus and the semantic annotation of challenging sentences from journalistic and opinion texts, Pontifícia Universidade Católica de São Paulo - PUC-SP, available at: https://doi.org/10.1590/1678-460x202339355159 [Accessed 10 Aug. 2026].

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Titolo
The AMR-PT corpus and the semantic annotation of challenging sentences from journalistic and opinion texts
Autore / collaboratori
Marcio Lima Inácio et al
Editore
Pontifícia Universidade Católica de São Paulo - PUC-SP
Anno di pubblicazione
2023
ISSN
1678-460X
ISSN
1678-460X
Lingua
Inglés

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