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QC-GO Submission for MADAR Shared Task: Arabic Fine-Grained Dialect Identification

2019-08-01WS 2019Unverified0· sign in to hype

Younes Samih, Hamdy Mubarak, Ahmed Abdelali, Mohammed Attia, Mohamed Eldesouki, Kareem Darwish

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Abstract

This paper describes the QC-GO team submission to the MADAR Shared Task Subtask 1 (travel domain dialect identification) and Subtask 2 (Twitter user location identification). In our participation in both subtasks, we explored a number of approaches and system combinations to obtain the best performance for both tasks. These include deep neural nets and heuristics. Since individual approaches suffer from various shortcomings, the combination of different approaches was able to fill some of these gaps. Our system achieves F1-Scores of 66.1\% and 67.0\% on the development sets for Subtasks 1 and 2 respectively.

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