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Self-Configuring Indoor Localization Based on Low-Cost Ultrasonic Range Sensors

机译:基于低成本超声波测距传感器的自配置室内定位

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摘要

In smart environments, target tracking is an essential service used by numerous applications from activity recognition to personalized infotaintment. The target tracking relies on sensors with known locations to estimate and keep track of the path taken by the target, and hence, it is crucial to have an accurate map of such sensors. However, the need for manually entering their locations after deployment and expecting them to remain fixed, significantly limits the usability of target tracking. To remedy this drawback, we present a self-configuring and device-free localization protocol based on genetic algorithms that autonomously identifies the geographic topology of a network of ultrasonic range sensors as well as automatically detects any change in the established network structure in less than a minute and generates a new map within seconds. The proposed protocol significantly reduces hardware and deployment costs thanks to the use of low-cost off-the-shelf sensors with no manual configuration. Experiments on two real testbeds of different sizes show that the proposed protocol achieves an error of 7.16∼17.53 cm in topology mapping, while also tracking a mobile target with an average error of 11.71∼18.43 cm and detecting displacements of 1.41∼3.16 m in approximately 30 s.
机译:在智能环境中,目标跟踪是从活动识别到个性化信息娱乐的众多应用程序使用的一项基本服务。目标跟踪依赖于具有已知位置的传感器来估计和跟踪目标所走的路径,因此,获得此类传感器的准确地图至关重要。但是,需要在部署后手动输入其位置并期望它们保持固定,这大大限制了目标跟踪的可用性。为了弥补这一缺陷,我们提出了一种基于遗传算法的自配置且无需设备的本地化协议,该协议可自动识别超声波测距传感器网络的地理拓扑结构,并在不到一分钟的时间内自动检测已建立的网络结构中的任何变化。分钟,然后在几秒钟内生成新地图。由于使用了无需手动配置的低成本现成传感器,因此所提出的协议可大大降低硬件和部署成本。在两个不同大小的真实测试台上进行的实验表明,该协议在拓扑映射中实现了7.16〜17.53 cm的误差,同时还跟踪了平均误差为11.71〜18.43 cm的移动目标,并在大约1.41〜3.16 m的距离内检测到位移30秒

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