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논문 기본 정보

자료유형
학술저널
저자정보
Ziyi Zhang (Kyungpook National University) Bo-Yeong Kang (Kyungpook National University)
저널정보
한국정보통신학회JICCE Journal of information and communication convergence engineering Journal of information and communication convergence engineering Vol.18 No.2
발행연도
2020.6
수록면
75 - 81 (7page)

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초록· 키워드

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Approximately 1.3 million people die from traffic accidents each year, and smartphone usage while driving is one of the main causes of such accidents. Therefore, detection of smartphone usage by drivers has become an important part of distracted driving detection. Previous studies have used single camera-based methods to collect the driver images. However, smartphone usage detection by employing a single camera can be unsuccessful if the driver occludes the phone. In this paper, we present a driver smartphone usage detection system that uses multiple cameras to collect driver images from different perspectives, and then processes these images with ensemble convolutional neural networks. The ensemble method comprises three individual convolutional neural networks with a simple voting system. Each network provides a distinct image perspective and the voting mechanism selects the final classification. Experimental results verified that the proposed method avoided the limitations observed in single camera-based methods, and achieved 98.96% accuracy on our dataset.

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Abstract
I. INTRODUCTION
II. RELATED WORK
III. PROPOSED METHOD
IV. EXPERIMENTAL RESULTS
V. CONCLUSION
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