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Statistical Properties and Temporal Properties of Calling Behavior

机译:呼叫行为的统计特性和时间特性

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Modern information technology makes it possible to understand, model and predict human activities by analyzing electronic traces of human behavior. In this work, we analyze more than 30 million Call Data Records (CDRs) to investigate statistical properties and temporal properties of calling behavior. We find that ranked call frequency of each number can be described by a two-stage power law function. The distribution of call duration is much different and can be described by a bimodal log-normal function. Further, we confirm that both call frequency and call duration are related with circadian cycles. During daylight, call duration is strongly correlated with call frequency. However, during evening and midnight, the pattern of call duration is much different with the pattern of call frequency. Our findings have significant impact on modeling human calling activity and optimizing telecommunication services.
机译:现代信息技术可以通过分析人类行为的电子痕迹来理解,建模和预测人类活动。在这项工作中,我们分析了超过3000万个呼叫数据记录(CDR),以研究呼叫行为的统计特性和时间特性。我们发现,每个号码的排名呼叫频率可以通过两级幂律函数来描述。呼叫持续时间的分布有很大不同,可以用双峰对数正态函数描述。此外,我们确认呼叫频率和呼叫持续时间都与昼夜节律周期有关。在白天,通话时间与通话频率密切相关。但是,在傍晚和午夜,呼叫持续时间的模式与呼叫频率的模式有很大不同。我们的发现对模拟人类呼叫活动和优化电信服务具有重大影响。

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