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Vocabulary Expansion Technique for Advertisement Classification

Authors
Jung, Jin-YongLee, Jung-HyunHa, JongWooLee, SangKeun
Issue Date
25-May-2012
Publisher
KSII-KOR SOC INTERNET INFORMATION
Keywords
Advertisement classification; vocabulary expansion; semantic association; query log; centroid classifier
Citation
KSII TRANSACTIONS ON INTERNET AND INFORMATION SYSTEMS, v.6, no.5, pp.1373 - 1387
Indexed
SCIE
SCOPUS
KCI
OTHER
Journal Title
KSII TRANSACTIONS ON INTERNET AND INFORMATION SYSTEMS
Volume
6
Number
5
Start Page
1373
End Page
1387
URI
https://scholar.korea.ac.kr/handle/2021.sw.korea/108398
DOI
10.3837/tiis.2012.05.007
ISSN
1976-7277
Abstract
Contextual advertising is an important revenue source for major service providers on the Web. Ads classification is one of main tasks in contextual advertising, and it is used to retrieve semantically relevant ads with respect to the content of web pages. However, it is difficult for traditional text classification methods to achieve satisfactory performance in ads classification due to scarce term features in ads. In this paper, we propose a novel ads classification method that handles the lack of term features for classifying ads with short text. The proposed method utilizes a vocabulary expansion technique using semantic associations among terms learned from large-scale search query logs. The evaluation results show that our methodology achieves 4.0% similar to 9.7% improvements in terms of the hierarchical f-measure over the baseline classifiers without vocabulary expansion.
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