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Modeling users' mobility among WiFi access points

机译:建模用户在WiFi接入点之间的移动性

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Modeling movements of users is important for simulating wireless networks, but current models often do not reflect real movements. Using real mobility traces, we can build a mobility model that reflects reality. In building a mobility model, it is important to note that while the number of handheld wireless devices is constantly increasing, laptops are still the majority in most cases. As a laptop is often disconnected from the network while a user is moving, it is not feasible to extract the exact path of the user from network messages. Thus, instead of modeling individual user's movements, we model movements in terms of the influx and outflux of users between access points (APs). We first counted the hourly visits to APs in the syslog messages recorded at APs. We found that the number of hourly visits has a periodic repetition of 24 hours. Based on this observation, we aggregated multiple days into a single day by adding the number of visits of the same hour in different days. We then clusteredAPs based on the different peak hour of visits. We found that this approach of clustering is effective; we ended up with four distinct clusters and a cluster of stable APs. We then computed the average arrival rate and the distribution of the daily arrivals for each cluster. Using a standard method (such as thinning) for generating non-homogeneous Poisson processes, synthetic traces can be generated from our model.
机译:对用户的移动进行建模对于模拟无线网络很重要,但是当前的模型通常无法反映实际的移动。使用真实的移动轨迹,我们可以构建反映现实的移动模型。在建立移动性模型时,需要注意的是,尽管手持无线设备的数量不断增加,但在大多数情况下,笔记本电脑仍然是大多数。由于便携式计算机经常在用户移动时断开与网络的连接,因此从网络消息中提取用户的确切路径是不可行的。因此,我们不对单个用户的移动进行建模,而是根据用户在接入点(AP)之间的流入和流出进行建模。我们首先在AP记录的syslog消息中计算每小时访问AP的次数。我们发现每小时的访问次数有24小时的定期重复。基于此观察,我们通过将不同日期同一小时的访问次数相加,将多天汇总为一天。然后,我们根据访问的高峰时段对AP进行聚类。我们发现这种集群方法是有效的。我们最终得到了四个不同的集群和一个稳定的AP集群。然后,我们计算了每个群集的平均到达率和每日到达的分布。使用标准方法(如稀化)来生成非均匀泊松过程,可以从我们的模型中生成合成迹线。

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