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Data fusion of multiple kinect sensors for a rehabilitation system

Huibin Du, Yiwen Zhao, Jianda Han, Zheng Wang, Guoli Song

Year
2016
Citations
9

Abstract

Kinect-like depth sensors have been widely used in rehabilitation systems. However, single depth sensor processes limb-blocking, data loss or data error poorly, making it less reliable. This paper focus on using two Kinect sensors and data fusion method to solve these problems. First, two Kinect sensors capture the motion data of the healthy arm of the hemiplegic patient; Second, merge the data using the method of Set-Membership-Filter (SMF); Then, mirror this motion data by the Middle-Plane; In the end, control the wearable robotic arm driving the patient's paralytic arm so that the patient can interactively and initiatively complete a variety of recovery actions prompted by computer with 3D animation games.

Keywords

Merge (version control)Computer scienceSensor fusionComputer visionWearable computerMotion captureArtificial intelligenceFocus (optics)Motion (physics)Embedded system

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