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Crowdsourcing Semantic Label Propagation in Relation Classification

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arxiv 1809.00537 v1 pith:NLCVJQTI submitted 2018-09-03 cs.CL

classification cs.CL
keywords relationclassificationlabelsannotationscrowdsourcingextractionambiguityannotation
verification ladder T0 review T1 audit T2 compute T3 formal
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Distant supervision is a popular method for performing relation extraction from text that is known to produce noisy labels. Most progress in relation extraction and classification has been made with crowdsourced corrections to distant-supervised labels, and there is evidence that indicates still more would be better. In this paper, we explore the problem of propagating human annotation signals gathered for open-domain relation classification through the CrowdTruth methodology for crowdsourcing, that captures ambiguity in annotations by measuring inter-annotator disagreement. Our approach propagates annotations to sentences that are similar in a low dimensional embedding space, expanding the number of labels by two orders of magnitude. Our experiments show significant improvement in a sentence-level multi-class relation classifier.

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