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EXPR at SemEval-2018 Task 9: A Combined Approach for Hypernym Discovery
{Nicolas B{\'e}chet Ahmad Issa Alaa Aldine Mounira Harzallah Giuseppe Berio Ahmad Faour}

Abstract
In this paper, we present our proposed system (EXPR) to participate in the hypernym discovery task of SemEval 2018. The task addresses the challenge of discovering hypernym relations from a text corpus. Our proposal is a combined approach of path-based technique and distributional technique. We use dependency parser on a corpus to extract candidate hypernyms and represent their dependency paths as a feature vector. The feature vector is concatenated with a feature vector obtained using Wikipedia pre-trained term embedding model. The concatenated feature vector fits a supervised machine learning method to learn a classifier model. This model is able to classify new candidate hypernyms as hypernym or not. Our system performs well to discover new hypernyms not defined in gold hypernyms.
Benchmarks
| Benchmark | Methodology | Metrics |
|---|---|---|
| hypernym-discovery-on-medical-domain | EXPR | MAP: 13.77 MRR: 40.76 P@5: 12.76 |
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