4.7 Article

Accurate Localization of Tagged Objects Using Mobile RFID-Augmented Robots

Journal

IEEE TRANSACTIONS ON MOBILE COMPUTING
Volume 20, Issue 4, Pages 1273-1284

Publisher

IEEE COMPUTER SOC
DOI: 10.1109/TMC.2019.2962129

Keywords

Radiofrequency identification; Antennas; Three-dimensional displays; Two dimensional displays; Robot kinematics; Servers; RFID; mobile robot; localization; phase profile

Funding

  1. National Key R&D Program of China [2019YFB2102404]
  2. NSFC [61772251]
  3. Hong Kong RGC Research Impact Fund [R5034-18]
  4. Shenzhen Basic Research Funding Scheme [JCYJ20170818104222072]
  5. National Science Foundation [CNS1837146]
  6. Canada NSERC Discovery Grant
  7. Technology Demonstration Program (TDP) Grant
  8. Key Research and Development Program for Guangdong Province [2019B010136001]
  9. Science Innovation Foundation of Dalian [2019J12GX037]

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This paper investigates the problem of tag localization using RFID technology and robots, proposing a new Mobile RF-robot Localization (MRL) system. By specific operational steps and theoretical analysis, the paper demonstrates how to achieve high-accuracy localization of target tags in both 2D and 3D space.
This paper studies the problem of tag localization using RFID-augmented robots, which is practically important for promising warehousing applications, e.g., automatic item fetching and misplacement detection. Existing RFID localization systems suffer from one or more of following limitations: requiring specialized devices; only 2D localization is enabled; having blind zone for mobile localization; low scalability. In this paper, we use Commercial Off-The-Shelf (COTS) robot and RFID devices to implement a Mobile RF-robot Localization (MRL) system. Specifically, when the RFID-augmented robot moves along the straight aisle in a warehouse, the reader keeps reading the target tag via two vertically deployed antennas (R-1 and R-2) and returns the tag phase data with timestamps to the server. We take three points in the phase profile of antenna R-1 and leverage the spatial and temporal changes inherent in this phase triad to construct an equation set. By solving it, we achieve the location of target tag relative to the trajectory of antenna R-1. Based on different phase triads, we can have candidate locations of the target tag with different accuracy. Then, we propose theoretical analysis to quantify the deviation of each localization result. A fine-grained localization result can be achieved by assigning larger weights to the localization results with smaller deviations. Similarly, we can also calculate the relative location of target tag with respect to the trajectory of antenna R-2. Leveraging the geometric relationships among target tag and antenna trajectories, we eventually calculate the location of target tag in 3D space. We perform various experiments to evaluate the performance of the MRL system and results show that the proposed MRL system can achieve high accuracy in both 2D and 3D localization.

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