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Bootstrapping Sentiment Labels For Unannotated Documents With Polarity PageRank

2012-05-01LREC 2012Unverified0· sign in to hype

Christian Scheible, Hinrich Sch{\"u}tze

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Abstract

We present a novel graph-theoretic method for the initial annotation of high-confidence training data for bootstrapping sentiment classifiers. We estimate polarity using topic-specific PageRank. Sentiment information is propagated from an initial seed lexicon through a joint graph representation of words and documents. We report improved classification accuracies across multiple domains for the base models and the maximum entropy model bootstrapped from the PageRank annotation.

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