PicPose: Using Picture Posing for Localization Service on IoT Devices

Yu Meng, Kwei-Jay Lin, Bo-Lung Tsai, C. Shih, Bin Zhang
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引用次数: 2

Abstract

Device self-localization is an important capability for many IoT applications that require mobility in service capabilities. In our previous work, we have designed the ArPico method for robot indoor localization. By placing and recognizing pre-installed pictures on walls, robots can use low-cost cameras to identify their positions by referencing to pictures' precise locations. However, using ArPico, all pictures need to have clear rectangular borders for the pose computation. But some real-world pictures does not have clear thick borders. Moreover, some pictures may have odd shapes or are only partially visible. To address these problems, a new picture-based localization service PicPose is presented. PicPose relies on the feature points extracted from a camera-captured image and conducts feature point matching with the original wall picture to conduct pose calculation. Using PicPose, even partially visible pictures can be used for localization, which is impossible for ArPico and ArUco. We present our implementation and experiment results in this paper.
PicPose:在物联网设备上使用图片摆姿势进行定位服务
对于许多需要移动性服务能力的物联网应用来说,设备自定位是一项重要的功能。在我们之前的工作中,我们设计了用于机器人室内定位的ArPico方法。通过在墙上放置和识别预先安装的图片,机器人可以使用低成本的摄像头,通过参考图片的精确位置来确定自己的位置。然而,使用ArPico,所有的图片都需要有清晰的矩形边界来进行姿态计算。但是一些真实世界的图片并没有清晰的厚边框。此外,有些图片可能有奇怪的形状或只能部分看到。为了解决这些问题,提出了一种新的基于图片的定位服务PicPose。PicPose依赖于从相机捕获的图像中提取的特征点,并与原始墙壁图片进行特征点匹配,进行位姿计算。使用PicPose,即使是部分可见的图片也可以用于定位,这是ArPico和ArUco无法做到的。本文给出了我们的实现和实验结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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