Concept Extraction Using Pointer-Generator Networks

August 25, 2020 ยท Declared Dead ยท ๐Ÿ› International Conference Knowledge Engineering and Knowledge Management

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Authors Alexander Shvets, Leo Wanner arXiv ID 2008.11295 Category cs.CL: Computation & Language Citations 7 Venue International Conference Knowledge Engineering and Knowledge Management Last Checked 5 months ago
Abstract
Concept extraction is crucial for a number of downstream applications. However, surprisingly enough, straightforward single token/nominal chunk-concept alignment or dictionary lookup techniques such as DBpedia Spotlight still prevail. We propose a generic open-domain OOV-oriented extractive model that is based on distant supervision of a pointer-generator network leveraging bidirectional LSTMs and a copy mechanism. The model has been trained on a large annotated corpus compiled specifically for this task from 250K Wikipedia pages, and tested on regular pages, where the pointers to other pages are considered as ground truth concepts. The outcome of the experiments shows that our model significantly outperforms standard techniques and, when used on top of DBpedia Spotlight, further improves its performance. The experiments furthermore show that the model can be readily ported to other datasets on which it equally achieves a state-of-the-art performance.
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