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Most Influential CIKM 2010 Paper · 2026-03 edition

Classifying Sentiment In Microblogs: Is Brevity An Advantage?

Adam Bermingham; Alan F. Smeaton

Venue
ACM Conference on Information and Knowledge Management (CIKM) 2010
Recognition
Most Influential CIKM 2010 Paper (Rank No. 4)
Edition
2026-03
Impact factor
6
Certificate ID
4c34174f6b33861b

Abstract

Microblogs as a new textual domain offer a unique proposition for sentiment analysis. Their short document length suggests any sentiment they contain is compact and explicit. However, this short length coupled with their noisy nature can pose difficulties for standard machine learning document representations. In this work we examine the hypothesis that it is easier to classify the sentiment in these short form documents than in longer form documents. Surprisingly, we find classifying sentiment in microblogs easier than in blogs and make a number of observations pertaining to the challenge of supervised learning for sentiment analysis in microblogs.

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