Title :
An open and configurable embedded system for EMG pattern recognition implementation for artificial arms
Author :
Jun Liu ; Fan Zhang ; Huang, He Helen
Author_Institution :
Joint Dept. of Biomed. Eng., NC State Univ., Raleigh, NC, USA
Abstract :
Pattern recognition (PR) based on electromyographic (EMG) signals has been developed for multifunctional artificial arms for decades. However, assessment of EMG PR control for daily prosthesis use is still limited. One of the major barriers is the lack of a portable and configurable embedded system to implement the EMG PR control. This paper aimed to design an open and configurable embedded system for EMG PR implementation so that researchers can easily modify and optimize the control algorithms upon our designed platform and test the EMG PR control outside of the lab environments. The open platform was built on an open source embedded Linux Operating System running a high-performance Gumstix board. Both the hardware and software system framework were openly designed. The system was highly flexible in terms of number of inputs/outputs and calibration interfaces used. Such flexibility enabled easy integration of our embedded system with different types of commercialized or prototypic artificial arms. Thus far, our system was portable for take-home use. Additionally, compared with previously reported embedded systems for EMG PR implementation, our system demonstrated improved processing efficiency and high system precision. Our long-term goals are (1) to develop a wearable and practical EMG PR-based control for multifunctional artificial arms, and (2) to quantify the benefits of EMG PR-based control over conventional myoelectric prosthesis control in a home setting.
Keywords :
artificial limbs; electromyography; embedded systems; medical signal processing; pattern recognition; EMG PR control assessment; EMG PR implementation; EMG pattern recognition implementation; Linux Operating System; calibration interfaces; configurable embedded system; control algorithms; conventional myoelectric prosthesis control; daily prosthesis use; designed platform; electromyographic signals; embedded system integration; flexibility; hardware system framework; high-performance Gumstix board; home setting; lab environments; multifunctional artificial arms; open platform; open source; open system; portable system; practical EMG PR-based control; prototypic artificial arms; software system framework; system precision; wearable EMG PR-based control; Control systems; Electromyography; Embedded systems; Pattern recognition; Prosthetics; Real-time systems; Training; EMG pattern recognition; artificial arms; embedded system; open and configurable design;
Conference_Titel :
Engineering in Medicine and Biology Society (EMBC), 2014 36th Annual International Conference of the IEEE
Conference_Location :
Chicago, IL
DOI :
10.1109/EMBC.2014.6944524