Aggregate Two-Way Co-Clustering of Ads and User Data for Online Advertisements

نویسندگان

  • Meng-Lun Wu
  • Chia-Hui Chang
  • Rui-Zhe Liu
  • Teng-Kai Fan
چکیده

Clustering plays an important role in data mining, as it is used by many applications as a preprocessing step for data analysis. Traditional clustering focuses on grouping similar objects, while two-way co-clustering can group dyadic data (objects as well as their attributes) simultaneously. In this research, we apply two-way co-clustering to the analysis of online advertising where both ads and users need to be clustered. However, in addition to the ad-user link matrix that denotes the ads which a user has linked, we also have two additional matrices, which represent extra information about users and ads. In this paper, we proposed a 3-staged clustering method that makes use of the three data matrices to enhance clustering performance. In addition, an Iterative Cross Co-Clustering (ICCC) algorithm is also proposed for two-way co-clustering. The experiment is performed using the advertisement and user data from Morgenstern, a financial social website that focuses on the agency of advertisements. The result shows that iterative cross co-clustering provides better performance than traditional clustering and completes the task more efficiently.

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عنوان ژورنال:
  • J. Inf. Sci. Eng.

دوره 28  شماره 

صفحات  -

تاریخ انتشار 2012