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Efficient Location Prediction in Mobile Cellular Networks

机译:移动蜂窝网络中的高效位置预测

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Mobile context-aware applications are capable of predicting the context of the user in order to operate pro-actively and provide advanced services. We propose an efficient spatial context classifier and a short-term predictor for the future location of a mobile user in cellular networks. We introduce different variants of the considered location predictor dealing with location (cell) identifiers and directions. Symbolic location classification is treated as a supervised learning problem. We evaluate the prediction efficiency and accuracy of the proposed predictors through synthetic and real-world traces and compare our solution with existing algorithms for location prediction. Our findings are very promising for the location prediction problem and the adoption of proactive context-aware applications and services.
机译:移动上下文感知应用程序能够预测用户的上下文,以便主动进行操作并提供高级服务。我们为蜂窝网络中移动用户的未来位置提出了一种有效的空间上下文分类器和短期预测器。我们介绍处理位置(小区)标识符和方向的位置预测变量的不同变体。符号位置分类被视为监督学习问题。我们通过合成的和真实的轨迹评估拟议的预测变量的预测效率和准确性,并将我们的解决方案与现有的位置预测算法进行比较。我们的发现对于位置预测问题以及采用主动的上下文感知应用程序和服务非常有前途。

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