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Myoelectric Potential Visualization Using Butterworth Band pass Filter

    Authors

    • Puviyarasan. S 1
    • Muthukumaran S 2
    • Pratheen raj B 1

    1 Department of Biomedical Engineering, Salem college of Engineering and Technology , Tamilnadu , India

    2 Department of Biomedical Engineering, Salem college of Engineering and Technology , Tamilnadu , India .

,

Document Type : Review Article

10.47392/irjash.2020.220
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Abstract

Electrical revelation of neuromuscular information transmission generated in muscles contraction and relaxation is known as EMG signals. Electromyography (EMG) is real-time based method to assess and observe a series of electrical signals that expressed from body muscular cells. In recent researchers had provided many systems for monitoring myoelectric signals (EMG) to identify various abnormalities such as EMG, Microcontroller sensors technology, EMG software signal processor (SPU), PWM method, capacitive sensing method, UML method, EIM method, ADU integration, MC sensors method, Human computer interfacing (HCI) technology and Functional electrical stimulation (FES). This paper proposes a system to implement a wireless transformation technology for monitoring the electrical potential from muscles to identify internal injuries, blood clots, muscle cramps, muscle fatigue, muscle contraction, limb stiffness, and immobility. In this paper, electrical signals acquired from the muscles are detected using EMG sensors. These occurring signals transmitted by using wireless method and processed by using MAT Lab tool. This technique makes our system more unique from the previous methodologies. Finally accurate EMG signals are displayed graphically. Thus the expected configuration result will be with an accuracy of 98.74%, mean specificity of 99% and with a mean sensitivity of 96.58%.So the error occurrence will be Approximately 0.5% and also system is low cost, electrical safety, low power consumption, and can identify muscle disorders through observed abnormal EMGrange.

Keywords

  • Myoelectric potential
  • EMG sensors
  • Transmitter
  • Receiver
  • MAT lab tool
  • Butter worth band pass filter
  • amplifier
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International Research Journal on Advanced Science Hub
Volume 2, Issue 11 - Issue Serial Number 11
November 2020
Page 47-52
Files
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  • PDF 422.88 K
History
  • Receive Date: 05 November 2020
  • Revise Date: 19 November 2020
  • Accept Date: 26 November 2020
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  • Article View: 377
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APA

S, P. , S, M. and B, P. R. (2020). Myoelectric Potential Visualization Using Butterworth Band pass Filter. International Research Journal on Advanced Science Hub, 2(11), 47-52. doi: 10.47392/irjash.2020.220

MLA

S, P. , , S, M. , and B, P. R. . "Myoelectric Potential Visualization Using Butterworth Band pass Filter", International Research Journal on Advanced Science Hub, 2, 11, 2020, 47-52. doi: 10.47392/irjash.2020.220

HARVARD

S, P., S, M., B, P. R. (2020). 'Myoelectric Potential Visualization Using Butterworth Band pass Filter', International Research Journal on Advanced Science Hub, 2(11), pp. 47-52. doi: 10.47392/irjash.2020.220

CHICAGO

P. S , M. S and P. R. B, "Myoelectric Potential Visualization Using Butterworth Band pass Filter," International Research Journal on Advanced Science Hub, 2 11 (2020): 47-52, doi: 10.47392/irjash.2020.220

VANCOUVER

S, P., S, M., B, P. R. Myoelectric Potential Visualization Using Butterworth Band pass Filter. International Research Journal on Advanced Science Hub, 2020; 2(11): 47-52. doi: 10.47392/irjash.2020.220

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