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User profiling and classification for fraud detection in mobile communications networks

机译:用于移动通信网络中欺诈检测的用户配置文件和分类

摘要

The topic of this thesis is fraud detection in mobile communications networks by means of user profiling and classification techniques. The goal is to first identify relevant user groups based on call data and then to assign a user to a relevant group. Fraud may be defined as a dishonest or illegal use of services, with the intention to avoid service charges. Fraud detection is an important application, since network operators lose a relevant portion of their revenue to fraud. Whereas the intentions of the mobile phone users cannot be observed, it is assumed that the intentions are reflected in the call data. The call data is subsequently used in describing behavioral patterns of users. Neural networks and probabilistic models are employed in learning these usage patterns from call data. These models are used either to detect abrupt changes in established usage patterns or to recognize typical usage patterns of fraud. The methods are shown to be effective in detecting fraudulent behavior by empirically testing the methods with data from real mobile communications networks.
机译:本文的主题是通过用户配置文件和分类技术在移动通信网络中进行欺诈检测。目标是首先根据通话数据识别相关的用户组,然后将用户分配给相关的组。欺诈可被定义为不诚实或非法使用服务,目的是避免收取服务费。欺诈检测是一项重要的应用,因为网络运营商会因欺诈而损失一部分收入。尽管不能观察到移动电话用户的意图,但是假定该意图反映在呼叫数据中。呼叫数据随后用于描述用户的行为模式。神经网络和概率模型用于从呼叫数据中学习这些使用模式。这些模型用于检测已建立的使用模式中的突然变化,或者用于识别欺诈的典型使用模式。通过对来自真实移动通信网络的数据进行经验测试,该方法可有效检测欺诈行为。

著录项

  • 作者

    Hollmén Jaakko;

  • 作者单位
  • 年度 2000
  • 总页数
  • 原文格式 PDF
  • 正文语种 en
  • 中图分类

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