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10.1109/SMC.2015.404guideproceedingsArticle/Chapter ViewAbstractPublication PagesConference Proceedingsacm-pubtype
research-article

Improvement of Fuzzy Neural Network Based Human Activity Estimation System

Published: 01 October 2015 Publication History

Abstract

In our past works, a standard three-layer feed forward neural network based human activity estimation method has been proposed. The proposed method aims to record the subject activity automatically. The recorded data by MEMS based monitoring devices include raw accelerometer data of his/her activity. From these data, we need to determine what the subject person was doing. In our conventional methods, some numerical datasets of accelerometer which are measured for every subject person were needed to train neural networks. In this paper, we propose an estimation method of subject behavior using fuzzy neural networks. The proposed fuzzy neural network based method can be trained by using fuzzy if-then rules which represent action primitives instead of numerical datasets from subject person.

References

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M. Nii, K. Nakai, T. Fujita and Y. Takahashi, “Action Estimation from Human Activity Monitoring Data using Soft Computing Approach”, Proc. of Third International Conference on Emerging Trends in Engineering and Technology, 2010, pp. 434–439.
[2]
M. Nii, K. Nakai, Y. Takahashi, K. Higuchi, and K. Mae-naka, “A Human State Estimation Method using Fuzzy based System”, Proc. of 2011 Fourth International Conference on Emerging Trends in Engineering & Technology, pp. 151–155.
[3]
M. Nii, K. Nakai, Y. Takahashi, K. Higuchi, and K. Mae-naka, “Behavior Extraction from Multiple Sensors Information for Human Activity Monitoring”, Proc. of 2011 IEEE International Conference on Systems, Man, and Cybernetics, pp. 1157–1161.
[4]
M. Nii, K. Nakai, Y. Takahashi, K. Maenaka, and K. Higuchi, “Human Action Classification for a Small Size Physical Condition Monitoring System”, Proc. of 2012 World Automation Congress, Puerto Vallarta, Mexico, 2012, WAC 2012 1569535303.
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M. Nii, Y. Kakiuchi, T. Tanaka, K. Maenaka, K. Higuchi, “Implementation of a Intelligent System into a Small Physical Condition Monitoring Device for Healthcare”, 2012 IEEE International Conference on Systems, Man, and Cybernetics, pp. 2052–2057.
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M. Nii, Y. Kakiuchi, K. Takahama, K. Maenaka, K. Higuchi, T. Yumoto, “Human Activity Monitoring Using Fuzzified Neural Networks”, Procedia Computer Science, Volume 22, 2013, pp. 960–967.
[7]
M. Nii, Y. Kakiuchi, T. Toshinobu, K. Takahama, T. Yumoto, “Fuzzified Neural Network Based Human Physical Condition Monitoring Using MEMS Based Monitoring Devices”, Proc. of 2013 IEEE International Conference on Systems, Man, and Cybernetics, pp. 2146–2151.
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T. Fujita, K. Kanda, K. Maenaka, J. Okada, S. Okochi, and K. Higuchi, “Multi-Environmental Sensing device for Human Monitoring Applications”, The 4 th International Symposium on Computational Intelligence and Industrial Applications, Aug. 2010, pp. 65–69.
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T. Tanaka, K. Sonoda, S. Okochi, A. Chan, M. Nii, K. Kanda, T. Fujita, K. Higuchi, and K. Maenaka, “Wearable Health Monitoring System and its Applications”, Proc. of 2011 Fourth International Conference on Emerging Trends in Engineering & Technology, pp. 143–146.
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T. Tanaka, T. Fujita, K. Sonoda, M. Nii, K. Kanda, K. Mae-naka, A. C. C. Kit, S. Okochi, K. Higuchi, “Wearable Health Monitoring System by Using Fuzzy Logic Heart - Rate Extraction”, Proc. of 2012 World Automation Congress, Puerto Vallarta, Mexico, 2012, WAC-2012-1569536039.
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M. Nii, T. Tanaka, Y. Matsumoto, T. Bartley, U. Mak-sudi, O. Nizhnik, K. Sonoda, H. Takao, K. Maenaka, K. Higuchi, “Heart Rate Extraction Hardware from ECG Data”, 2013 IEEE EMBC Short Papers, No. 0615.

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          2015 IEEE International Conference on Systems, Man, and Cybernetics
          3240 pages

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          Published: 01 October 2015

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