Anomaly Detection In Cellular Network Data Using Big Data Analytics

نویسندگان

  • Ilyas Alper Karatepe
  • Engin Zeydan
چکیده

Anomaly detection is a key component in which perturbations from a normal behavior suggests a misconfigured/mismatched data in related systems. In this paper, we present a call detail record based anomaly detection method (CADM) that analyzes the users’s calling activities and detects the abnormal behavior of user movements in a real cellular network. CADM is capable of detecting the location of the site that an anomaly has occurred. We evaluate the proposed CADM by performing experiments over the call-detail records of AVEA, a mobile service provider in Turkey.

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تاریخ انتشار 2014