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A Fuzzy Logic-Based System for Indoor Localization Using WiFi in Ambient Intelligent Environments

机译:智能环境下基于模糊逻辑的WiFi室内定位系统

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Ambient intelligence is a new information paradigm, where people are empowered through a digital environment that is “aware” of their presence and context and is sensitive, adaptive, and responsive to their needs. Hence, one of the important requirements for ambient intelligent environments (AIEs) is the ability to localize the whereabouts of the user in the AIE to address her/his needs. In order to protect user privacy, the use of cameras is not desirable in AIEs, and hence, there is a need to rely on nonintrusive sensors. There are various localization means that are available for outdoor spaces such as those which rely on satellite signals triangulation. However, these outdoor localization means cannot be used in indoor environments. The majority of nonintrusive and noncamera-based indoor localization systems require the installation of extra hardware such as ultrasound emitters/antennas, radio-frequency identification (RFID) antennas, etc. In this paper, we propose a novel indoor localization system that is based on WiFi signals which are free to receive, and they are available in abundance in the majority of domestic spaces. However, free WiFi signals are noisy and uncertain, and their strengths and availability are continuously changing. Hence, we present a fuzzy logic-based system which employs free available WiFi signals to localize a given user in AIEs. The proposed system receives WiFi signals from a large number of existing WiFi access points (up to 170 access points), where no prior knowledge of the access points locations and the environment is required. The system employs an incremental lifelong learning approach to adjust its behavior to the varying and changing WiFi signals to provide a zero-cost localization system which can provide high accuracy in real-world living spaces. We have compared our system in both simulated and real environments with other relevant techniques in the literature, and we have found that our system outperfo- ms the other systems in the offline learning process, whereas our system was the only system which is capable of performing online learning and adaptation. The proposed system was tested in real-world spaces from a living lab intelligent apartment (iSpace) to a town center apartment to a block of offices. In all these experiments, our system has been highly accurate in detecting the user in the given AIEs, and the system was able to adapt its behavior to changes in the AIE or the WiFi signals. We envisage that the proposed system will play an important role in AIEs, especially for privacy concerned situations like elderly care scenarios.
机译:环境智能是一种新的信息范式,人们可以通过一个数字环境来增强人们的能力,这种数字环境“意识到”他们的存在和环境,并且敏感,适应和响应他们的需求。因此,对环境智能环境(AIE)的重要要求之一是能够在AIE中定位用户的下落以解决她/他的需求。为了保护用户隐私,在AIE中不希望使用相机,因此需要依靠非侵入式传感器。对于诸如依赖卫星信号三角测量的那些室外空间,存在各种可用的定位方法。但是,这些室外定位装置不能在室内环境中使用。大多数非侵入式且非基于摄像机的室内定位系统都需要安装额外的硬件,例如超声发射器/天线,射频识别(RFID)天线等。在本文中,我们提出了一种基于WiFi信号是免费接收的,并且在大多数家庭空间中都有大量可用。但是,免费的WiFi信号嘈杂且不确定,其强度和可用性也在不断变化。因此,我们提出了一种基于模糊逻辑的系统,该系统采用免费的可用WiFi信号来定位AIE中的给定用户。所提出的系统从大量现有的WiFi接入点(最多170个接入点)接收WiFi信号,而无需事先知道接入点的位置和环境。该系统采用增量式终身学习方法,以针对变化和变化的WiFi信号调整其行为,以提供零成本的定位系统,该系统可以在现实生活空间中提供高精度。我们已经将模拟和真实环境中的系统与文献中的其他相关技术进行了比较,并且发现我们的系统在离线学习过程中的表现优于其他系统,而我们的系统是唯一能够执行的系统在线学习和适应。所提议的系统已在现实环境中进行了测试,从居住在实验室的智能公寓(iSpace)到市中心的公寓再到办公室的一部分。在所有这些实验中,我们的系统在检测给定AIE中的用户方面非常准确,并且该系统能够使其行为适应AIE或WiFi信号的变化。我们设想,拟议的系统将在AIE中扮演重要角色,特别是对于与隐私相关的情况,例如老年护理方案。

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