2020年度 人工知能学会全国大会(第34回)

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国際セッション » E-2 Machine learning

[1K4-ES-2] Machine learning: Social application (1)

2020年6月9日(火) 15:20 〜 17:00 K会場 (jsai2020online-11)

座長:鹿島久嗣(京都大学)

15:40 〜 16:00

[1K4-ES-2-02] Human Action Recognition in Office Environments

〇Soichiro Kuroyanagi1, Takayuki Ito1, Ahmed Moustafa1 (1. Nagoya Institute of Technology)

キーワード:human action recognition, object detection, You Only Look Once(YOLO), Convolutional Neural, Brute Force matcher

This paper proposes an approach for classifying the actions of workers in office environments. The ultimate goal is to automatically calculate the working hours of workers and their other activities. Knowing what the workers are doing from each frame of the video during desk work makes them possible. In order to achieve this goal, we use You Only Look Once(YOLO) as an object detection method and Brute-Force Matcher as a prediction method. Using the proposed approach, videos are classified into six categories: "PC work", "calling", "writing", "stretching", "sleeping", and "others". In order to evaluate the proposed approach, we measure the accuracy by taking videos that assume desk work. The experimental results show that the proposed approach is more accurate than prediction using YOLO only.

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