Gonçalo Correia
2023
Supervising the Centroid Baseline for Extractive Multi-Document Summarization
Simão Gonçalves
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Gonçalo Correia
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Diogo Pernes
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Afonso Mendes
Proceedings of the 4th New Frontiers in Summarization Workshop
The centroid method is a simple approach for extractive multi-document summarization and many improvements to its pipeline have been proposed. We further refine it by adding a beam search process to the sentence selection and also a centroid estimation attention model that leads to improved results. We demonstrate this in several multi-document summarization datasets, including in a multilingual scenario.
2022
DeepSPIN: Deep Structured Prediction for Natural Language Processing
André F. T. Martins
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Ben Peters
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Chrysoula Zerva
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Chunchuan Lyu
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Gonçalo Correia
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Marcos Treviso
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Pedro Martins
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Tsvetomila Mihaylova
Proceedings of the 23rd Annual Conference of the European Association for Machine Translation
DeepSPIN is a research project funded by the European Research Council (ERC) whose goal is to develop new neural structured prediction methods, models, and algorithms for improving the quality, interpretability, and data-efficiency of natural language processing (NLP) systems, with special emphasis on machine translation and quality estimation. We describe in this paper the latest findings from this project.
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Co-authors
- Simão Gonçalves 1
- Chunchuan Lyu 1
- André F. T. Martins 1
- Pedro Martins 1
- Alfonso Mendes 1
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