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UQAM-NTL: Named entity recognition in Twitter messages

2016-12-01WS 2016Unverified0· sign in to hype

Ngoc Tan Le, Fatma Mallek, Fatiha Sadat

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Abstract

This paper describes our system used in the 2nd Workshop on Noisy User-generated Text (WNUT) shared task for Named Entity Recognition (NER) in Twitter, in conjunction with Coling 2016. Our system is based on supervised machine learning by applying Conditional Random Fields (CRF) to train two classifiers for two evaluations. The first evaluation aims at predicting the 10 fine-grained types of named entities; while the second evaluation aims at predicting no type of named entities. The experimental results show that our method has significantly improved Twitter NER performance.

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