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The Study of Car Detection on the Highway using YOLOv2 and UAVs
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YOLOv2와 무인항공기를 이용한 자동차 탐지에 관한 연구

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Type
Academic journal
Author
Chang-Jin Seo (Sangmyung University)
Journal
The Korean Institute of Electrical Engineers THE TRANSACTION OF THE KOREAN INSTITUTE OF ELECTRICAL ENGINEERS P Vol.67P No.1
Published
2018.3
Pages
42 - 46 (5page)

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The Study of Car Detection on the Highway using YOLOv2 and UAVs
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Abstract· Keywords

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In this paper, we propose fast object detection method of the cars by applying YOLOv2(You Only Look Once version 2) and UAVs (Unmanned Aerial Vehicles) while on the highway. We operated Darknet, OpenCV, CUDA and Deep Learning Server(SDX-4185) for our simulation environment. YOLOv2 is recently developed fast object detection algorithm that can detect various scale objects as fast speed. YOLOv2 convolution network algorithm allows to calculate probability by one pass evaluation and predicts location of each cars, because object detection process has simple single network. In our result, we could find cars on the highway area as fast speed and we could apply to the real time.

Contents

Abstract
1. 서론
2. 관련 연구
3. 제안하는 연구방법
4. 실험결과
5. 결론
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