EMNLP 2021 paper Models and Datasets for Cross-Lingual Summarisation.

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Deep Learningclads
Overview

This repository contains data and code for our EMNLP 2021 paper Models and Datasets for Cross-Lingual Summarisation. Please contact me at [email protected] for any question.

Please cite this paper if you use our code or data.

@InProceedings{clads-emnlp,
  author =      "Laura Perez-Beltrachini and Mirella Lapata",
  title =       "Models and Datasets for Cross-Lingual Summarisation",
  booktitle =   "Proceedings of The 2021 Conference on Empirical Methods in Natural Language Processing ",
  year =        "2021",
  address =     "Punta Cana, Dominican Republic",
}

The XWikis Corpus

You can create the corpus using the instructions below. The original XWikis corpus is available at XWikis.

Instructions to re-create our corpus and extract other languages are available here.

Cross-lingual Summarisation Code

Our code is based on Fairseq and mBART/mBART50. You'll find our clone of Fairseq and the code extension to implement our models here and instructions to pre-process the data, and train and evaluate our models here.

Models' Outputs

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Global Pooling, More than Meets the Eye: Position Information is Encoded Channel-Wise in CNNs, ICCV 2021

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sungjun lee 42 Dec 27, 2022
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Roland 61 Dec 27, 2022
Code for "FGR: Frustum-Aware Geometric Reasoning for Weakly Supervised 3D Vehicle Detection", ICRA 2021

FGR This repository contains the python implementation for paper "FGR: Frustum-Aware Geometric Reasoning for Weakly Supervised 3D Vehicle Detection"(I

Yi Wei 31 Dec 08, 2022
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Marcel Böhme 380 Jan 03, 2023