DocumentCode :
3603239
Title :
Depth Sensing for Improved Control of Lower Limb Prostheses
Author :
Krausz, Nili Eliana ; Lenzi, Tommaso ; Hargrove, Levi J.
Author_Institution :
Center for Bionic Med., Rehabilitation Inst. of Chicago, Chicago, IL, USA
Volume :
62
Issue :
11
fYear :
2015
Firstpage :
2576
Lastpage :
2587
Abstract :
Powered lower limb prostheses have potential to improve the quality of life of individuals with amputations by enabling all daily activities. However, seamless ambulation mode recognition is necessary to achieve this goal and is not yet a clinical reality. Current intent recognition systems use mechanical and EMG sensors to estimate prosthesis and user status. We propose to complement these systems by integrating information about the environment obtained through the depth sensing. This paper presents the design, characterization, and the early validation of a novel stair segmentation system based on Microsoft Kinect. Static and dynamic tests were performed. A first experiment showed how the resolution of the depth camera affects the speed and the accuracy of segmentation. A second test proved the robustness of the algorithm to different staircases. Finally, we performed an online walking test with the stair segmentation and related measures recorded online at >5 frames/s. Experimental results show that the proposed algorithm allows for an accurate estimate of distance, angle of intersection, number of steps, stair height, and stair depth for a set of stairs in the environment. The online test produced an estimate of whether the individual was approaching stairs in real time with approximately 98.8% accuracy.
Keywords :
biological organs; biomedical equipment; dynamic testing; electromyography; medical control systems; medical signal processing; prosthetics; EMG sensors; depth camera; depth sensing; dynamic testing; improved control; lower limb prostheses; mechanical sensors; microsoft kinect; online walking test; seamless ambulation mode recognition; stair segmentation; stair segmentation system; static testing; Accuracy; Biomedical measurement; Floors; Image edge detection; Image segmentation; Prosthetics; Sensors; Artificial Limbs; intent recognition; pattern recognition; prosthetics; robot vision systems; sensor fusion; wearable sensors;
fLanguage :
English
Journal_Title :
Biomedical Engineering, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9294
Type :
jour
DOI :
10.1109/TBME.2015.2448457
Filename :
7130596
Link To Document :
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