Title :
An accelerometer-based embedded system-on-chip for measuring human-body joint angles
Author :
Caballero, A.D. ; Lopez, J. J. Cabrera
Author_Institution :
Dept. of Autom. & Electron., Biomed. Eng. Res. Group, Univ. Autonoma de Occidente, Cali, Colombia
fDate :
April 29 2013-May 4 2013
Abstract :
Joint angular sensors are widely used in industry, from highly effective robots in product lines and heavy construction machines to different home appliances. Likewise in the medical field, parameters of human motion, especially the orientations of lower limb segments, are crucial in clinical evaluations and therapeutic treatments in the orthopedic and rehabilitation fields. This paper presents the design and implementation of an embedded system-on-chip for measuring human-body joint angles using MEMS accelerometers and PSoC mixed-signal circuits. It focuses on two algorithms, one called CMR and another DCMR, and utilizes the property of rigid body kinematics to explain their advantages and weaknesses. Unlike CMR algorithm, DCMR algorithm has no requirement on placing the sensors close to the joint center. This provides greater flexibility for the sensor installation. An auto-adjustment procedure is described and both algorithms are characterized on a rigid body robot arm model and compared with a reference system. Experimental results showed that the algorithms were able to measure joint angles in real time, and their accuracy was high enough to be used in ambulatory human-body joint angle measurements and feedback control systems for gait assistance.
Keywords :
acceleration control; acceleration measurement; accelerometers; angular measurement; bioMEMS; biomedical electronics; feedback; gait analysis; intelligent sensors; medical robotics; mixed analogue-digital integrated circuits; motion control; orthopaedics; patient rehabilitation; robot kinematics; system-on-chip; CMR; DCMR; MEMS accelerometers; PSoC mixed-signal circuits; accelerometer-based embedded system-on-chip; ambulatory human-body joint angle measurements; autoadjustment procedure; clinical evaluations; feedback control systems; gait assistance; heavy construction machines; highly effective robots; home appliances; human motion parameters; human-body joint angle measurement; joint angular sensors; lower limb segment orientations; medical field; orthopedic fields; rehabilitation fields; rigid body kinematics; rigid body robot arm model; sensor installation; therapeutic treatments; Accelerometers; Biomedical measurement; Joints; Robot sensing systems; Semiconductor device measurement; System-on-chip; Embedded System-on-Chip; Human limbs; Joint Angle; MEMS Accelerometer;
Conference_Titel :
Health Care Exchanges (PAHCE), 2013 Pan American
Conference_Location :
Medellin
Print_ISBN :
978-1-4673-6254-2
DOI :
10.1109/PAHCE.2013.6568247