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Accompanist recognition and tracking for intelligent wheelchairs

Bing‐Fei Wu, Cheng-Lung Jen, Tai-Yu Tsou, Po-Yen Chen

发表年份
2014
引用次数
4

摘要

Recently, several robotic wheelchairs have been proposed that employ autonomous functions. In designing wheelchairs, it is important to reduce the accompanist load. To provide such a task, the mobile robot needs to recognize and track people. In this paper, we propose to utilize the multisensory data fusion to track a target accompanist. First, the simultaneous localization and map building is achieved by using the laser range finder (LRF) and inertial sensors with the extended Kalman filter recursively. To track the target person robustly, the accompanist, are tracked by fusing laser and vision data. The human objects are detected by LRF, and the identity of accompanist is recognized using a PTZ camera with a pre-defined signature using the speed-up robust features algorithm. The proposed system can adaptively search visual signature and track the accompanist by dynamically zooming the PTZ camera based on LRF detection results to enlarge the range of human following. The experimental results verified and demonstrated the performance of the proposed system.

关键词

Computer visionComputer scienceArtificial intelligenceSensor fusionTask (project management)Track (disk drive)Tracking (education)Engineering

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