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On-line learning EMG driven Interface and high speed learning and rule generation

Research Project

Project/Area Number 15300073
Research Category

Grant-in-Aid for Scientific Research (B)

Allocation TypeSingle-year Grants
Section一般
Research Field Sensitivity informatics/Soft computing
Research InstitutionThe University of Tokushima

Principal Investigator

FUKUMI Minoru  The University of Tokushima, Faculty of Engineering, Associate Professor, 工学部, 助教授 (80199265)

Co-Investigator(Kenkyū-buntansha) TAKEDA Fumiaki  Kochi University of Technology, Intelligent Mechanical Systems Engineering, Professor, 知能機械システム工学科, 教授 (40320121)
YAMAMOTO Toru  Hiroshima University, Graduate School of Education, Associate Professor, 大学院・教育学研究科, 助教授 (10200825)
MITSUKURA Yasue  Okayama University, Faculty of Education, Lecturer, 教育学部, 講師 (60314845)
Project Period (FY) 2003 – 2004
Project Status Completed (Fiscal Year 2004)
Budget Amount *help
¥16,600,000 (Direct Cost: ¥16,600,000)
Fiscal Year 2004: ¥5,600,000 (Direct Cost: ¥5,600,000)
Fiscal Year 2003: ¥11,000,000 (Direct Cost: ¥11,000,000)
KeywordsEMG / Neural network / DSP / Rule generation / EMG sensor / Noise elimination
Research Abstract

Recently, information terminals such as a cellular phone have been widely used. According to this, industrial standard of radio communication such as Bluetooth has been established. As a result, it would be possible to combine and to perform various interfaces. However, now a day, the device that has various operations of portable machines and tools and can control networks (call "total operation device" for short) has not been provided yet. Moreover, the wristwatch type is preferable in the viewpoint of operationality. Therefore, we investigate ElectroMyoGram (EMG) which is a signal generated from a living body with movement of a subject.
First, time series data for EMG is measured by electrodes in the input part. Second, this data is amplified and A/D transform is performed in the signal processing part. Next, this amplified data is converted to Fourier power spectra. Finally, we evaluate various data in the learning-evaluation part.
We aim for construction of a high-speed and high-acc … More urate EMG recognition system which can do on-line learning using DSP training board. In order to achieve high accuracy, we used Fast Fourier Transform (FFT) for feature extraction, Simple-PCA (SPCA) for feature compression, and a neural network (NN) for recognition. In particular, we presented a novel method based on Multiple PCA to improve recognition accuracy for EMG. From results of computer simulation, it is shown that our approach is effective for improvement in recognition accuracy and speed.
Furthermore, we used a genetic algorithm for condteracting a rule generation system which can improve recognition accuracy for EMG. This method yielded mathematical functions using input attributes selected by the genetic algorithms. These functions can achieve a high accuracy compared to conventional approach.
Finally we tested noize elimination performance using wavelet transform. In this method, small components after the wavelet transform are eliminated and then signals are inversely transformed. These signals were used for EMG recognition and evaluated its accuracy. Less

Report

(3 results)
  • 2004 Annual Research Report   Final Research Report Summary
  • 2003 Annual Research Report
  • Research Products

    (25 results)

All 2005 2004 2003 Other

All Journal Article (21 results) Publications (4 results)

  • [Journal Article] 遺伝的関数同定による特徴ベクトルを用いたEMG信号認識システム2005

    • Author(s)
      矢間 他
    • Journal Title

      信号処理学会論文誌(JSP) Vol.9,No.3

    • Description
      「研究成果報告書概要(和文)」より
    • Related Report
      2004 Final Research Report Summary
  • [Journal Article] Recognition of Wrist EMG Signal Patterns Using Neural Networks2005

    • Author(s)
      Y.Matsumura, 他
    • Journal Title

      Journal of Intelligent and Fuzzy Systems Vol.15,No.3-4

      Pages: 165-171

    • Related Report
      2004 Annual Research Report
  • [Journal Article] 遺伝的関数同定による特徴ベクトルを用いたEMG信号認識システム2005

    • Author(s)
      矢間, 他
    • Journal Title

      信号処理学会論文誌(JSP) Vol.9,No.3

    • Related Report
      2004 Annual Research Report
  • [Journal Article] Wrist EMG Pattern Recognition System by Neural Networks and Multiple Principal Component Analysis2004

    • Author(s)
      Y.Matsumura 他
    • Journal Title

      Proc.of Knowledge-Based Intelligent Information & Engineering Systems'2004 Conference Vol.1

      Pages: 891-897

    • Description
      「研究成果報告書概要(和文)」より
    • Related Report
      2004 Final Research Report Summary
  • [Journal Article] Analysis and Recognition of Wrist Motions by Using Multidimensional Directed Information and EMG signal2004

    • Author(s)
      Y.Yazama 他
    • Journal Title

      Proc.of North American Fuzzy Information Processing Society'2004

      Pages: 867-870

    • Description
      「研究成果報告書概要(和文)」より
    • Related Report
      2004 Final Research Report Summary
  • [Journal Article] Recognition of Wrist EMG Signal Patterns Using Neural Networks2004

    • Author(s)
      Y.Matsumura 他
    • Journal Title

      Journal of Intelligent and Fuzzy Systems Vol.15,No.3-4

      Pages: 165-171

    • Description
      「研究成果報告書概要(和文)」より
    • Related Report
      2004 Final Research Report Summary
  • [Journal Article] Wrist EMG Pattern Recognition System by Neural Networks and Genetic Algorithms2004

    • Author(s)
      Y.Matsumura, et al.
    • Journal Title

      Proc.of Intelligent Systems and Control'2004

      Pages: 421-426

    • Description
      「研究成果報告書概要(欧文)」より
    • Related Report
      2004 Final Research Report Summary
  • [Journal Article] Wrist EMG Pattern Recognition System by Neural Networks and Multiple Principal Component Analysis2004

    • Author(s)
      Y.Matsumura, et al.
    • Journal Title

      Proc.of 8th International Conference on Knowledge-Based Intelligent Information & Engineering Systems'2004, Wellington, New Zealand Vol.1

      Pages: 891-897

    • Description
      「研究成果報告書概要(欧文)」より
    • Related Report
      2004 Final Research Report Summary
  • [Journal Article] Recognition of Wrist EMG Signal Patterns Using Neural Networks2004

    • Author(s)
      Y.Matsumura, M.Fukumi, N.Akamatsu, K.Nakaura
    • Journal Title

      Journal of Intelligent and Fuzzy Systems 15,No.3-4

      Pages: 165-171

    • Description
      「研究成果報告書概要(欧文)」より
    • Related Report
      2004 Final Research Report Summary
  • [Journal Article] Wrist EMG Pattern Recognition System by Neural Networks and Multiple Principal Component Analysis2004

    • Author(s)
      Y.Matsumura, 他
    • Journal Title

      Proc. of Knowledge-Based Intelligent Information & Engineering Systems'2004 Conference Vol.1

      Pages: 891-897

    • Related Report
      2004 Annual Research Report
  • [Journal Article] Analysis and Recognition of Wrist Motions by Using Multidimensional Directed Information and EMG signal2004

    • Author(s)
      Y.Yazama, 他
    • Journal Title

      Proc. of North American Fuzzy Information Processing Society'2004

      Pages: 867-870

    • Related Report
      2004 Annual Research Report
  • [Journal Article] Recognition of Wrist EMG Signal Patterns by Neural Networks2003

    • Author(s)
      Y.Matsumura 他
    • Journal Title

      Proc.of International Symposium on Intelligent Signal Processing and Communication Systems

    • Description
      「研究成果報告書概要(和文)」より
    • Related Report
      2004 Final Research Report Summary
  • [Journal Article] Recognition of EMG Signal Patterns by Neural Networks2003

    • Author(s)
      Y.Matsumura 他
    • Journal Title

      Proc.of Knowledge-Based Intelligent Information & Engineering Systems'2003 Vol.1

      Pages: 623-630

    • Description
      「研究成果報告書概要(和文)」より
    • Related Report
      2004 Final Research Report Summary
  • [Journal Article] Feature Analysis for the EMG Signals Based on the Class Distance2003

    • Author(s)
      Y.Yazama, et al.
    • Journal Title

      Proc.of CIRA'2003, Kobe

      Pages: 860-863

    • Description
      「研究成果報告書概要(欧文)」より
    • Related Report
      2004 Final Research Report Summary
  • [Journal Article] Recognition system for EMG signals by using nonnegative matrix factorization2003

    • Author(s)
      Y.Yazama, et al.
    • Journal Title

      Proc.IJCNN'2003, Portland, USA

      Pages: 2130-2133

    • Description
      「研究成果報告書概要(欧文)」より
    • Related Report
      2004 Final Research Report Summary
  • [Journal Article] Recognition from EMG signals by an Evolutional Method and Non-Negative Matrix Factorization2003

    • Author(s)
      Y.Yazama, et al.
    • Journal Title

      Proc.of Knowledge-Based Intelligent Information & Engineering Systems'2003, Oxford, England

      Pages: 594-600

    • Description
      「研究成果報告書概要(欧文)」より
    • Related Report
      2004 Final Research Report Summary
  • [Journal Article] Recognition of EMG Signal Patterns by Neural Networks2003

    • Author(s)
      Y.Matsumura, et al.
    • Journal Title

      Proc.of Knowledge-Based Intelligent Information & Engineering Systems'2003, Oxford, England

      Pages: 623-630

    • Description
      「研究成果報告書概要(欧文)」より
    • Related Report
      2004 Final Research Report Summary
  • [Journal Article] Recognition of Wrist EMG Signal Patterns by Neural Networks2003

    • Author(s)
      Y.Matsumura, et al.
    • Journal Title

      Proc.of International Symposium on Intelligent Signal Processing and Communication Systems, Awaji Island, Japan

      Pages: 572-575

    • Description
      「研究成果報告書概要(欧文)」より
    • Related Report
      2004 Final Research Report Summary
  • [Journal Article] Recognition of Wrist EMG Signal Patterns by Neural Networks2003

    • Author(s)
      Y.Matsumura, 他
    • Journal Title

      Proc. of International Symposium on Intelligent Signal Processing and Communication Systems

    • Related Report
      2004 Annual Research Report
  • [Journal Article] Recognition of EMG Signal Patterns by Neural Networks2003

    • Author(s)
      Y.Matsumura, 他
    • Journal Title

      Proc. of Knowledge-Based Intelligent Information & Engineering Systems'2003 Vol.1

      Pages: 623-630

    • Related Report
      2004 Annual Research Report
  • [Journal Article] EMG signal recognition system using feature vectors by genetic function identification

    • Author(s)
      Y.Yazama, et al.
    • Journal Title

      Journal of Signal Processing Vol.9,No.3(Accepted)

    • Description
      「研究成果報告書概要(欧文)」より
    • Related Report
      2004 Final Research Report Summary
  • [Publications] Y.Matsumura 他: "Recognition of Wrist EMG Signal Patterns by Neural Networks"Proc.of International Symposium on Intelligent Signal Processing and Communication Systems. B5-4-B1-4 (2003)

    • Related Report
      2003 Annual Research Report
  • [Publications] Y.Matsumura 他: "Recognition of EMG Signal Patterns by Neural Networks"Proc.of Knowledge-Based Intelligent Information & Engineering Systems' 2003. Vol.1. 623-630 (2003)

    • Related Report
      2003 Annual Research Report
  • [Publications] Y.Matsumura 他: "Wrist EMG Pattern Recognition System by Neural Networks and Multiple Principal Component Analysis"Proc.of Knowledge-Based Intelligent Information & Engineering Systems' 2004 Conference. (発表予定). (2004)

    • Related Report
      2003 Annual Research Report
  • [Publications] Y.Yazama 他: "Analysis and Recognition of Wrist Motions by Using Multidimensional Directed Information and EMG signal"Proc.of NAFIPS'2004 Conference. (発表予定). (2004)

    • Related Report
      2003 Annual Research Report

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Published: 2003-04-01   Modified: 2016-04-21  

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