Waliner: Lightweight and Resilient Plugin Mapping Method With Wall Features for Visually Challenging Indoor Environments

  • Noh, DongKi; 
  • Lee, Byunguk; 
  • Kim, Hanngyoo; 
  • Lee, SeungHwan; 
  • Kim, HyunSung; 
  • 외 3명
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초록

Vision-based indoor navigation systems have been proposed previously for service robots. However, in real-world scenarios, many of these approaches remain vulnerable to visually challenging environments such as white walls. In-home service robots, which are mass-produced, require affordable sensors and processors. Therefore, this letter presents a lightweight and resilient plugin mapping method called Waliner, using an RGB-D sensor and an embedded processor equipped with a neural processing unit (NPU). Waliner can be easily implemented in existing algorithms and enhances the accuracy and robustness of 2D/3D mapping in visually challenging environments with minimal computational overhead by leveraging a) structural building components, such as walls; b) the Manhattan world assumption; and c) an extended Kalman filter-based pose estimation and map management technique to maintain reliable mapping performance under varying lighting and featureless conditions. As verified in various real-world in-home scenes, the proposed method yields over a 5 % improvement in mapping consistency as measured by the map similarity index (MSI) while using minimal resources.

키워드

Simultaneous localization and mapping; Feature extraction; Sensors; Robots; Three-dimensional displays; Pose estimation; Visualization; Service robots; Laser radar; Odometry; Building components; line measurements; mapping; Manhattan world assumptions; MAP
제목
Waliner: Lightweight and Resilient Plugin Mapping Method With Wall Features for Visually Challenging Indoor Environments
저자
Noh, DongKi; Lee, Byunguk; Kim, Hanngyoo; Lee, SeungHwan; Kim, HyunSung; Kim, JuWon; Choi, Jeongsik; Baek, SeungMin
DOI
10.1109/LRA.2025.3562370
발행일
2025-06
유형
Article
저널명
IEEE Robotics and Automation Letters
권
10
호
6
페이지
5799 ~ 5806