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Distant Supervision for Relation Extraction via Piecewise Convolutional Neural Networks

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Abstract

Two problems arise when using distant supervision for relation extraction. First, in this method, an already existing knowledge base is heuristically aligned to texts, and the alignment results are treated as labeled data. However, the heuristic alignment can fail, resulting in wrong label problem. In addition, in previous approaches, statistical models have typically been applied to ad hoc features. The noise that originates from the feature extraction process can cause poor performance.

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DOI
10.18653/v1/d15-1203
OpenAlex
W2251135946
Document type
conference-paper
Language
EN
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