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Learning-based proximity detection algorithm for device-to-device communications

机译:基于学习的接近检测算法,用于设备到设备通信

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摘要

The popularity of mobile services that make use of user location has increased in recent years. Proximity-based services is a type of location-based services that determine when a pair of users is in proximity to each other. The mechanism sends a trigger once the users are close enough to each other to start communication. Proximity detection enables the cellular traffic offloading onto direct D2D links that may improve quality of service for the users, save the energy of the device and reduce the network load. However, continuous tracking of the user’s position results in considerable loss in device battery life and negatively affects network capacity.This thesis presents a novel learning-based algorithm for proximity detection that uses an intelligent polling policy. Several existing proximity detection strategies are considered. It is demonstrated that the implemented optimization approach may significantly reduce the number of position updates and prolong the battery life of the device.
机译:近年来,利用用户位置的移动服务越来越流行。基于邻近的服务是一种基于位置的服务,可确定一对用户何时彼此接近。一旦用户彼此足够靠近以开始通信,该机制就会发送触发器。接近检测可以将蜂窝流量分流到直接的D2D链路上,从而可以提高用户的服务质量,节省设备的能源并减少网络负载。但是,连续跟踪用户的位置会导致设备电池寿命的大量损失,并对网络容量产生负面影响。本文提出了一种基于学习的,新颖的基于智能轮询策略的近程检测算法。考虑了几种现有的邻近检测策略。已经证明,所实施的优化方法可以显着减少位置更新的次数并延长设备的电池寿命。

著录项

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    Novik Tatiana;

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  • 年度 2016
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  • 原文格式 PDF
  • 正文语种 en
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