Predicting traffic of online advertising in real-time bidding systems from perspective of demand-side platforms

Hsu Chao Lai, Wen Yueh Shih, Jiun Long Huang, Yi Cheng Chen

研究成果: 書貢獻/報告類型會議論文篇章同行評審

2 引文 斯高帕斯(Scopus)

摘要

Online advertising has been all the rage these years. Budget control and traffic prediction turn out to be important issues for the demand-side platforms (DSPs). However, DSPs cannot easily grab the information of audiences and media platforms. Although DSPs might have the information immediately, it is still hard to response the request of advertisements in real-time due to the high volume of features. Therefore, we propose a method predicting traffic of requests from perspective of DSPs. The features we used are simple to be extracted from historical data. The prediction model we chose is regression model with closed-form solution. Both the features and regression model make our prediction adaptive in real-time systems. Our method can detect traffic anomalies and prevent it from overwhelming prediction. Moreover, our method can also keep pace of the trend. Experiment results show that our method's error rate of prediction is about 0.9% in total, and 10% per time unit.

原文???core.languages.en_GB???
主出版物標題Proceedings - 2016 IEEE International Conference on Big Data, Big Data 2016
編輯Ronay Ak, George Karypis, Yinglong Xia, Xiaohua Tony Hu, Philip S. Yu, James Joshi, Lyle Ungar, Ling Liu, Aki-Hiro Sato, Toyotaro Suzumura, Sudarsan Rachuri, Rama Govindaraju, Weijia Xu
發行者Institute of Electrical and Electronics Engineers Inc.
頁面3491-3498
頁數8
ISBN(電子)9781467390040
DOIs
出版狀態已出版 - 2016
事件4th IEEE International Conference on Big Data, Big Data 2016 - Washington, United States
持續時間: 5 12月 20168 12月 2016

出版系列

名字Proceedings - 2016 IEEE International Conference on Big Data, Big Data 2016

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???event.eventtypes.event.conference???4th IEEE International Conference on Big Data, Big Data 2016
國家/地區United States
城市Washington
期間5/12/168/12/16

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