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Location Prediction Based on a Sector Snapshot for Location-Based Services

机译:基于扇区快照的基于位置的服务的位置预测

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摘要

In location-based services (LBSs), the service is provided based on the users' locations through location determination and mobility realization. Most of the current location prediction research is focused on generalized location models, where the geographic extent is divided into regular-shaped cells. These models are not suitable for certain LBSs where the objectives are to compute and present on-road services. Such techniques are the new Markov-based mobility prediction (NMMP) and prediction location model (PLM) that deal with inner cell structure and different levels of prediction, respectively. The NMMP and PLM techniques suffer from complex computation, accuracy rate regression, and insufficient accuracy. In this paper, a novel cell splitting algorithm is proposed. Also, a new prediction technique is introduced. The cell splitting is universal so it can be applied to all types of cells. Meanwhile, this algorithm is implemented to the Micro cell in parallel with the new prediction technique. The prediction technique, compared with two classic prediction techniques and the experimental results, show the effectiveness and robustness of the new splitting algorithm and prediction technique.
机译:在基于位置的服务(LBS)中,通过位置确定和移动性实现基于用户的位置提供服务。当前大多数位置预测研究都集中在广义的位置模型上,该模型将地理范围划分为规则形状的单元格。这些模型不适用于某些旨在计算和提供公路服务的LBS。这些技术是新的基于马尔可夫的移动性预测(NMMP)和预测位置模型(PLM),它们分别处理内部单元结构和不同级别的预测。 NMMP和PLM技术存在计算复杂,准确率回归和准确性不足的问题。本文提出了一种新的信元分裂算法。另外,引入了新的预测技术。细胞分裂是普遍的,因此可以应用于所有类型的细胞。同时,该算法与新的预测技术并行地应用于微小区。与两种经典预测技术和实验结果相比,该预测技术表明了新的分割算法和预测技术的有效性和鲁棒性。

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