Collaborative Detection of Cyber Security Threats in Big Data

Collaborative Detection of Cyber Security

Threats in Big Data

Jiange Zhang, Yuanbo Guo, and Yue Chen

State Key Laboratory of Mathematical Engineering and Advanced Computing, Zhengzhou Information Science and Technology Institute, China

Abstract: In the era of big data, it is a problem to be solved for promoting the healthy development of the Internet and the Internet+, protecting the information security of individuals, institutions and countries. Hence, this paper constructs a collaborative detection system of cyber security threats in big data. Firstly, it describes the log collection model of Flume, the data cache of Kafka, and the data process of Esper; then it designs one-to-many log collection, consistent data cache, Complex Event Processing (CEP) data process using event query and event pattern matching; finally, it tests on the datasets and analyzes the results from six aspects. The results demonstrate that the system has good reliability, high efficiency and accurate detection results; moreover, the system has the advantages of low cost and flexible operation.

Keywords: Big data, cyber security, threat, collaborative detection.

Received July 20, 2016; accepted February 15, 2017
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