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A practical comparison between filtering algorithms for enhanced RFID localization in smart environments

机译:智能环境中增强RFID本地化的过滤算法的实际比较

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The rapid adoption of wireless technologies has increased the interest of many laboratories about the field of Wireless Sensor Network (WSN) or the Radio-Frequency Identification (RFID) technology which has emerged as a winning combination for the implementation of an advanced assistance system within smart environments. To fulfill the important mission of a technological assistance, an algorithm first had to identify the ongoing activities of its user by tracking everyday life objects in real time using, for example, passive RFID tags. To increase the quality of information extracted from the objects localization by properly using the Received Signal Strength Indicator (RSSI), this paper explores Kalman filter, particle filter and few others filtering algorithm that enhances the tracking performance. It also discusses three of the most interesting methods that can be applied for the localization of objects in smart environments without requiring the installation of references tags everywhere. Finally, to increase the value, we include experiments that were conducted within a real smart home infrastructure to review the positive and negative elements of each method.
机译:迅速普及的无线技术增加了许多实验室的约已经成为一个成功的组合为一个先进的辅助系统内的智能实施的无线传感器网络(WSN)或射频识别(RFID)技术领域的兴趣环境。履行技术援助的重要使命,算法首先必须通过使用实时跟踪日常生活中的对象以识别其用户正在进行的活动,例如,无源RFID标签。为了增加从通过适当地使用接收信号强度指示器(RSSI)中的对象定位信息中提取质量,本文探讨卡尔曼滤波,颗粒过滤器和其他几个滤波算法增强跟踪性能。它还讨论了三种可应用在智能环境中的物体的定位而不需要到处引用标签的安装最有趣的方法。最后,增加价值,我们有一个真正的智能家居内的基础设施进行了审查每种方法的积极和消极元素的实验。

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