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수중 장애물 탐지를 위한 가버필터 기반의 소나 이미지 이진지도 작성법 개발

원문정보

Development of Binarization Method of Sonar Image Based on Gabor Filter for Underwater Obstacle Detection

백선웅, 이세진

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초록

영어

Various underwater studies using underwater sonar sensors are actively in progress. However, unlike the ground, the underwater has a lot of noise. So it is difficult to accurately recognize the underwater environment. The final purpose of this study is to improve the efficiency of the underwater environment recognition using the underwater sonar sensor by developing a filtering algorithm that removes noise and expresses the object from the underwater sonar image captured by the underwater sonar sensor. To develop a filtering algorithm, convolutional calculations were used with three types of filters. This paper is about the case study that conducted to set the parameters of ‘Gabor Filter’ suitable for underwater sonar image during the design process of filtering algorithm. As a result, it was possible to find the most suitable ‘Gabor Filter’ parameters for underwater sonar images. And it showed high accuracy with a binary map of obstacles created by hand using the naked eye. Through this study, it can be utilized not only as a binary map of real-time obstacles, but also as an algorithm for generating object masks in underwater sonar images for deep learning.

목차

ABSTRACT
1. 서론
2. 관련연구
3. 본론
3.1 실험환경과 데이터 수집
3.2 구조
3.3 사례연구
4. 결론
후기
References

저자정보

  • 백선웅 Sun-Woong Park. Undergraduate student, Division of Mechanical & Automotive Engineering, Kongju National University
  • 이세진 Se-Jin Lee. Professor, Division of Mechanical & Automotive Engineering, Kongju National University

참고문헌

자료제공 : 네이버학술정보

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