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SemEval-2012 Task 6: A Pilot on Semantic Textual Similarity

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2012

Year

Abstract

Semantic Textual Similarity (STS) measures the degree of semantic equivalence between two texts. This paper presents the results of the STS pilot task in Semeval. The training data contained 2000 sentence pairs from pre-viously existing paraphrase datasets and ma-chine translation evaluation resources. The test data also comprised 2000 sentences pairs for those datasets, plus two surprise datasets with 400 pairs from a different machine trans-lation evaluation corpus and 750 pairs from a lexical resource mapping exercise. The sim-ilarity of pairs of sentences was rated on a 0-5 scale (low to high similarity) by human judges using Amazon Mechanical Turk, with high Pearson correlation scores, around 90%. 35 teams participated in the task, submitting 88 runs. The best results scored a Pearson correlation>80%, well above a simple lexical baseline that only scored a 31 % correlation. This pilot task opens an exciting way ahead, although there are still open issues, specially the evaluation metric. 1

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