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제방 균열의 분광정보 및 반사율 특성에 관한 연구

A Study on the Spectral Information and Reflectance Characteristic of Levee Crack

  • Kim, Jong-Tae (Nature and Technology Inc.) ;
  • Lee, Chang-Hun (Nature and Technology Inc.) ;
  • Kang, Joon-Gu (Department of Land, Water and Environment Research, Korea Institute of Civil Engineering and Building Technology)
  • 투고 : 2020.06.25
  • 심사 : 2020.09.04
  • 발행 : 2020.09.30

초록

본 연구는 제방 균열의 탐지를 위해 드론 기반의 초분광 영상을 활용하여 균열의 분광정보 및 반사율을 분석하는 것이 목적이다. 초분광 센서는 드론에 탑재된 Nano-Hyperspec을 사용하였으며 안동댐 하류 제방 균열을 대상으로 조도별 초분광 영상을 촬영하였다. 조도와 최대강도에 대한 분석 결과 상관관계를 보였으며 비균열 영역과 균열 영역의 결정계수는 각각 0.9864, 0.9851로 계산되었다. 각 영역별 같은 포인트의 반사율은 조도에 상관없이 유사한 값과 패턴을 보였으며 반사율 계산 시 기준이 되는 백색판이 조도에 따라 변하기 때문인 것으로 판단된다. 균열 영역에서 반사율은 비균열 영역에 비해 가시광선에서는 5.65%, 근적외선에서는 4.58% 낮게 나타났다. 향후 드론 촬영을 위한 짐벌 방향과 카메라 각도 등이 보정되면 좀더 정확한 균열 탐지가 가능하며 특히 초분광 영상은 일반 RGB 영상으로 확인이 어려운 균열 심도, 점토광물 종류 등에 대한 탐지가 가능하기 때문에 제방 안정성 평가를 위한 선제적 대응방법이 될 것으로 판단된다.

This study examined the spectral information and reflectance of cracks of an embankment with drone-based hyperspectral imagery for crack detection. A Nano-Hyperspec mounted on a drone was used as a sensor, and hyperspectral videos of different intensities of illumination of the cracks on the embankment located in the downstream of Andong-Dam were obtained. An analysis of the data value of the illumination and peak data-value, the coefficients of determination were calculated to be 0.9864 of the uncracked areas and 0.9851 of the cracked area. The reflectance of each area showed a similar value and pattern, regardless of the intensity of illumination. This result may have occurred because the reference values of the white reference as the calculation criteria of reflectance varied according to the intensity of illumination. The reflectance at the cracked area was 5.65% lower in visible light and 4.58% lower in near-infrared light than that at the uncracked area. The detection of cracks may offer more precise results in further studies when the gimbal direction and camera angles of the drone are calibrated. Because hyperspectral imagery enables the detection of crack depths and types of clay minerals, which are difficult to identify in general RGB imagery, it can serve as a preemptive measure for evaluating the embankment stability.

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참고문헌

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