在智能手机中使用WiFi和地磁传感器的富背景混合导航和使用激光雷达生成地图

A. Jayakody, S. Lokuliyana, V.N.N. Weerawardene, K.D.P.S. Somathilake, A.M.D.D.U. Ishara
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引用次数: 0

摘要

导航系统在旅行中扮演着重要的角色。最重要的是,它可以帮助人们到达地方,即使在外国或不熟悉的环境。这项研究介绍了一种更省力的绘制环境的方法,这表明绘制室内环境是一项简单的任务,任何精通技术的人都可以完成。这是通过审查包括NASA在内的各种人员和组织进行的几个项目和研究来完成的。很明显,“激光雷达”技术显然可以满足室内地图生成的需求。后来开发了一款软件,以适应使用激光雷达构建的设备,并为用户提供更好的地图生成体验。该软件有助于克服设备所施加的限制。整体产品与设备和软件集成为用户提供了一个理想的低预算的解决方案。提出的系统服务具有三个非常理想的特性,即准确性、可扩展性和众包。IPS通过一套支持众包的机制来处理大量的原始数据,过滤不正确的用户贡献,并利用来自不同移动设备的Wi-Fi数据。此外,它使用大数据架构来高效存储和检索定位和地图数据。在这项研究中,这项服务依赖于智能手机收集的敏感数据(Wi-Fi信号强度和地磁测量)来提供可靠的室内地理位置信息。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Context Rich Hybrid Navigation Using WiFi and Geomagnetic Sensors in Smartphones and Map Generation Using Lidar
Navigation systems perform a huge role in traveling component of life. Most importantly it helps people to get to places even in foreign or unfamiliar environments. This research introduces a way of mapping environments with less effort, which shows that mapping an indoor environment is an easy task that could be performed by any tech savvy individual. This has been done by examining several projects and researches conducted by various personnel and organizations including NASA. It has become clear that the technology ‘LIDAR,’ is clearly feasible for the requirement of indoor map generation. A software was later built to accommodate the device which is built using LIDAR and to give the user a better experience in map generation. The software helps to overcome the limitations that are imposed by the device. The overall product with the device and software integrated provides an ideal low-budget solution for the users. The proposed system service features three highly desirable properties, namely accuracy, scalability, and crowdsourcing. IPS is implemented with a set of crowdsourcing-supportive mechanisms to handle the collective amount of raw data, filter incorrect user contributions and exploit Wi-Fi data from diverse mobile devices. Furthermore, it uses a big-data architecture for efficient storage and retrieval of localization and mapping data. In this research, the service relies on the sensitive data collected by smartphones (Wi-Fi signal strength and geomagnetic measurements) to deliver reliable indoor geolocation information.
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