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A rule-based approach to indoor localization based on WiFi signal strengths.

机译:基于规则的基于WiFi信号强度的室内定位方法。

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摘要

Location plays a very important role in location-aware computing systems, in which objects are retrieved based on their physical locations. For example, finding the nearest objects around a person requires knowledge about the locations of the objects and the location of the person. The identification of the location of an object is known as localization. GPS (Global Positioning System) is widely used for localizing outdoor objects. Unfortunately, it does not work indoor because GPS signal cannot penetrate into buildings.;This thesis investigates localization methods in indoor environments. Since GPS is not available, a sensor infrastructure must be available to make indoor localization possible. This thesis focuses on approaches based on the Received Signal Strength (RSS) of WiFi signals because WiFi is widely available in indoor spaces. The main application scenario of this research is to identify the location of a user inside a building. To achieve this goal, RSSs are measured at each location of a space and stored in the server. The measurements are called location signatures of the space. When localization is performed, the user obtains the RSS signature at her (unknown) location, and compares it with the location signatures at the server. The location with signature matching the user's signature the best is returned as the location of the user.;Traditional localization methods aim to improve localization accuracy, i.e., the error between the estimated location and the actual location. However, they assume that the location signatures are accurate. Unfortunately, RSSs are unstable due to noise, obstacles and environmental changes, causing localization accuracy to deteriorate quickly. Thus, regular calibration on the location signatures, which is prohibitively expensive, is required to maintain high localization accuracy.;This thesis aims to improve both the accuracy and the stability of indoor localization. Instead of using absolute RSSs in comparing the location signatures, we propose a rule- based approach to achieve high localization accuracy and stability. The main idea is to maintain the relations (i.e., “less than”, “equal to”, and “greater than”) of the RSSs of the access points (APs) received at a location and to set up rules to match the RSS signatures based on the relations. The rule-based approach enhances stability because the relation between two RSS signals could remain stable even when their values are changing constantly.;To further address the stability problem, we introduce two important notions, the stability and sensibility of an AP, at a location. Although the RSSs from APs change over time, some APs change less than the others, thus having higher stability, and some APs have stronger signals than the others, thus having higher sensibility. We introduce methods to estimate the stability and sensibility of APs. We present an effective and simple approach to create the relations and rules, as well as heuristics to select the rules for use in localization. We develop a suite of rule-based localization methods based on different combinations of the techniques, including pure matching of location signatures, rule-based system with and without AP stability, and rule-based systems with and without rule stability. We implemented the location methods and tested them in the Department's Lab area and the results show that rule-based systems with stability consideration perform better than those without stability consideration, which in turn perform better than methods based on pure signature comparison.
机译:位置在位置感知计算系统中扮演着非常重要的角色,在该系统中,根据对象的物理位置来检索对象。例如,找到人周围最近的物体需要有关物体的位置和人的位置的知识。物体位置的识别称为定位。 GPS(全球定位系统)被广泛用于定位室外物体。不幸的是,由于GPS信号无法穿透建筑物,因此无法在室内工作。由于无法使用GPS,因此必须具备传感器基础设施才能进行室内定位。由于WiFi在室内空间中广泛可用,因此本文重点研究基于WiFi信号的接收信号强度(RSS)的方法。这项研究的主要应用场景是识别建筑物内用户的位置。为了实现此目标,在空间的每个位置都测量RSS,并将其存储在服务器中。这些测量称为空间的位置标记。执行本地化后,用户会在其(未知)位置获得RSS签名,并将其与服务器上的位置签名进行比较。具有与用户的签名最匹配的签名的位置作为用户的位置返回。传统的定位方法旨在提高定位精度,即估计位置和实际位置之间的误差。但是,他们认为位置签名是准确的。不幸的是,由于噪声,障碍物和环境变化,RSS不稳定,从而导致定位精度迅速下降。因此,为了保持较高的定位精度,就需要对定位签名进行定期校准,而这种校准本来就昂贵得多。本论文旨在提高室内定位的准确性和稳定性。我们不是使用绝对RSS来比较位置签名,而是提出了一种基于规则的方法来实现较高的定位精度和稳定性。主要思想是维护在某个位置接收的接入点(AP)的RSS的关系(即“小于”,“等于”和“大于”),并设置规则以匹配RSS基于关系的签名。基于规则的方法提高了稳定性,因为即使两个RSS信号的值不断变化,它们之间的关系也可以保持稳定。为了进一步解决稳定性问题,我们在位置上引入了两个重要的概念,即AP的稳定性和敏感性。 。尽管来自AP的RSS随时间变化,但是某些AP的变化少于其他AP,因此具有更高的稳定性,并且某些AP的信号比其他AP更强,因此具有更高的灵敏度。我们介绍了估计AP的稳定性和敏感性的方法。我们提供了一种有效且简单的方法来创建关系和规则,以及启发式方法来选择用于本地化的规则。我们基于技术的不同组合开发了一套基于规则的本地化方法,包括位置签名的纯匹配,具有和不具有AP稳定性的基于规则的系统以及具有和不具有规则稳定性的基于规则的系统。我们实施了定位方法,并在美国国防部实验室区域对它们进行了测试,结果表明,考虑到稳定性的基于规则的系统比没有考虑稳定性的基于规则的系统要好,反之则比基于纯签名比较的方法要好。

著录项

  • 作者

    Chen, Qiuxia.;

  • 作者单位

    Hong Kong University of Science and Technology (Hong Kong).;

  • 授予单位 Hong Kong University of Science and Technology (Hong Kong).;
  • 学科 Computer Science.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 114 p.
  • 总页数 114
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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