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논문 기본 정보

자료유형
학술대회자료
저자정보
Na Kyoung You (Seoul National University) Byungki Jin (Seoul National University) Yong Min Kim (Seoul National University) Myung Hwan Yun (Seoul National University)
저널정보
대한인간공학회 대한인간공학회 학술대회논문집 2017 대한인간공학회 추계학술대회
발행연도
2017.11
수록면
115 - 119 (5page)

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초록· 키워드

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Objective: The aim of this study is to create a posture monitoring system by classifying the sitting postures of children so that they can develop proper postural habits. Background: Modern people spend a lot of time sitting on chairs in various situation. Since sitting in improper postures can cause musculoskeletal disorders, it is important to have proper sitting habits to prevent negative health issues. In addition, it can be difficult for adults to habituate themselves to proper sitting posture away from their posture habits established in childhood. Therefore, developing proper postural habits from childhood is essential, which can be assisted by the posture monitoring system for children to establish their proper life-time posture habits. Method: A pressure sensing mattress was mounted in a seating cushion to obtain the pressure distribution data. A total of 32 children participated in the experiment and pressure data for seven sitting postures of each participant was obtained. LeNet-5, one of the early CNN (Convolutional Neural Network) algorithm, was applied in order to predict t he postures. Results: As a result of cross validations, the average accuracy was 62% and the standard deviation of accuracy was 0.11. Conclusion: In this study, the applicability of deep-learning technique to classify the sitting postures of children was investigated to be feasible. Further studies may focus on the enhancement of model’s accuracy and the experiment environment to be more context-based. Application: The study results are expected to be used in posture monitoring system that assist children in establishing a recommendable sitting posture habit.

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ABSTRACT
1. Introduction
2. Method
3. Results
4. Discussion
5. Conclusion
References

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UCI(KEPA) : I410-ECN-0101-2018-530-001741939