• 제목/요약/키워드: Radiometric Model

검색결과 69건 처리시간 0.02초

ERROR PROPAGATION ANALYSIS FOR IN-ORBIT GOCI RADIOMETRIC CALIBRATION

  • Kang, Gm-Sil;Youn, Heong-Sik
    • 대한원격탐사학회:학술대회논문집
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    • 대한원격탐사학회 2008년도 International Symposium on Remote Sensing
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    • pp.92-95
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    • 2008
  • The Geostationary Ocean Color Imager (GOCI) is under development to provide a monitoring of ocean-color around the Korean Peninsula from geostationary platforms. It is planned to be loaded on Communication, Ocean, and Meteorological Satellite (COMS) of Korea. The GOCI has been designed to provide multi-spectral data to detect, monitor, quantify, and predict short term changes of coastal ocean environment for marine science research and application purpose. The target area of GOCI observation covers sea area around the Korean Peninsula. Based on the nonlinear radiometric model, the GOCI calibration method has been derived. The radiometric model of GOCI has been validated through radiometric ground test. From this ground test result, GOCI radiometric model has been changed from second order to third order. In this paper, the radiometric test performed to evaluate the radiometric nonlinearity is described and the GOCI radiometric error propagation is analyzed. The GOCI radiometric calibration is based on onboard calibration devices; solar diffuser, DAMD (Diffuser Aging Monitoring Device). The radiometric model error due to the dark current nonlinearity is considered as a systematic error. Also the offset correction error due to gain/offset instability is considered. The radiometric accuracy depends mainly on the ground characterization accuracies of solar diffuser and DAMD.

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ERROR ANALYSIS FOR GOCI RADIOMETRIC CALIBRATION

  • Kang, Gm-Sil;Youn, Heong-Sik
    • 대한원격탐사학회:학술대회논문집
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    • 대한원격탐사학회 2007년도 Proceedings of ISRS 2007
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    • pp.187-190
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    • 2007
  • The Geostationary Ocean Color Imager (GOCI) is under development to provide a monitoring of ocean-color around the Korean Peninsula from geostationary platforms. It is planned to be loaded on Communication, Ocean, and Meteorological Satellite (COMS) of Korea. The GOCI has been designed to provide multi-spectral data to detect, monitor, quantify, and predict short term changes of coastal ocean environment for marine science research and application purpose. The target area of GOCI observation covers sea area around the Korean Peninsula. Based on the nonlinear radiometric model, the GOCI calibration method has been derived. The nonlinear radiometric model for GOCI will be validated through ground test. The GOCI radiometric calibration is based on on-board calibration devices; solar diffuser, DAMD (Diffuser Aging Monitoring Device). In this paper, the GOCI radiometric error propagation is analyzed. The radiometric model error due to the dark current nonlinearity is analyzed as a systematic error. Also the offset correction error due to gain/offset instability is considered. The radiometric accuracy depends mainly on the ground characterization accuracies of solar diffuser and DAMD.

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Radiometric Calibration Method of the GOCI (Geostationary Ocean Color Imager)

  • Kang, Gumsil;Myung, Hwan-Chun;Youn, Heong-Sik
    • 대한원격탐사학회:학술대회논문집
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    • 대한원격탐사학회 2006년도 Proceedings of ISRS 2006 PORSEC Volume I
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    • pp.60-63
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    • 2006
  • Geostationary Ocean Color Imager (GOCI) is under development to provide a monitoring of oceancolor around the Korean Peninsula from geostationary platforms. It is planned to be loaded on Communication, Ocean, and Meteorological Satellite (COMS) of Korea. In this paper radiometric calibration concept of the GOCI is introduced. The GOCI radiometric response is modeled as a nonlinear system in order to reflect a nonlinear characteristic of detector. In this paper estimation approaches for radiometric parameters of GOCI model are discussed. For the GOCI, the offset signal depends on each spectral channel because dark current offset signal is a function of integration time which is different from channel to channel. The offset parameter can be estimated by using offset signal measurements for two integration time setting is described.

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POST-LAUNCH RADIOMETRIC CALIBRATION OF KOMPSAT2 HIGH RESOLUTION IMAGE

  • Yoon, Jong-Suk;Lee, Kyu-Sung;Chi, Jun-Hwa;Lee, Dong-Han
    • 대한원격탐사학회:학술대회논문집
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    • 대한원격탐사학회 2006년도 Proceedings of ISRS 2006 PORSEC Volume I
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    • pp.402-405
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    • 2006
  • Radiometric calibration of optical image data is necessary to convert raw digital number (DN) value of each pixel into a physically meaningful measurement (radiance). To extract rather quantitative information regarding biophysical characteristics of the earth surface materials, radiometric calibration is often essential procedure. A sensor detects the radiation of sunlight interacted atmospheric constituents. Therefore, the amount of the energy reaching at the sensor is quite different from the initial amount reflected from the surface. To achieve the target reflectance after atmospheric correct, an initial step is to convert DN value to at-sensor radiance. A linear model, the simplest radiometric model, is applied to averaged spectral radiance for this conversion. This study purposes to analyze the sensitivity of several factors affecting on radiance for carrying out absolute radiometric calibration of panchromatic images from KOMPSAT2 launched at July, 2006. MODTRAN is used to calculate radiance at sensor and reflectance of target is measured by a portable spectro-radiometer at the same time the satellite is passing the target for the radiometric calibration. As using different contents of materials composing of atmosphere, the differences of radiance are investigated. Because the spectral sensitivity of panchromatic images of KOMPSAT2 ranges from 500 to 900 nm, the materials causing scattering in visible range are mainly considered to analyze the sensitivity. According to the verified sensitivity, direct measurement can be recommenced for absolute radiometric calibration.

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Radiometric Characteristics of KOMPSAT EOC Data Assessed by Simulating the Sensor Received Radiance

  • Kim, Jeong-Hyun;Lee, Kyu-Sung;Kim, Du-Ra
    • 대한원격탐사학회지
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    • 제18권5호
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    • pp.281-289
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    • 2002
  • Although EOC data have been frequently used in several applications since the launch of the KOMPSAT-1 satellite in 1999, its radiometric characteristics are not clear due to the inherent limitations of the on-board calibration system. The radiometric characteristics of remotely sensed imagery can be measured by the sensitivity of radiant flux coming from various surface features on the earth. The objective of this study is to analyze the radiometric characteristics of EOC data by simulating the sensor- received radiance. Initially, spectral reflectance values of reference targets were measured on the ground by using a portable spectre-radiometer at the EOC spectrum. A radiative transfer model, LOWTRAN, then simulated the sensor-received radiance values of the same reference target. By correlating the digital number (DN) extracted from the EOC image to the corresponding radiance values simulated from LOWTRAN, we could find the radiometric calibration coefficients for EOC image. The radiometric gain coefficients of EOC are very similar to those of other panchromatic optical sensors.

Noise PDF Analysis of Nonlinear Image Sensor Model with Application: Iterative Radiometric Calibration Method

  • Myung, Hwan-Chun;Youn, Heong-Sik
    • 대한원격탐사학회:학술대회논문집
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    • 대한원격탐사학회 2008년도 International Symposium on Remote Sensing
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    • pp.247-250
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    • 2008
  • The paper presents the advanced radiometric calibration method, called the lRCM (Iterative Radiometric Calibration Method), in order to avoid an operational constraint (solar source) for calibration. The IRCM assumes that an optical instrument is equipped with a filter assembly which consists of same band filters with different transmission ratios. Given all the noise sources (including the artificial one caused by the filters) of an image sensor, the noncentral ${\chi}^2$ distribution of the output result is induced by the approach of a noise PDF (Power Density Function). Finally, the radiometric calibration problem is transformed into equating two independent relations for the image sensor gains through the specified distribution.

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RADIOMETRIC CHARACTERISTICS OF KOMPSAT-2 HIGH RESOLUTION IMAGES

  • Chi, Jun-Hwa;Yoon, Jong-Suk;Lee, Kyu-Sung
    • 대한원격탐사학회:학술대회논문집
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    • 대한원격탐사학회 2007년도 Proceedings of ISRS 2007
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    • pp.390-393
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    • 2007
  • KOMPSAT-2, the first Korean high resolution earth observing satellite, continuously acquires high resolution images since July 2006. The quality of satellite images should be geometrically and radiometrically ensured before distribution to users. This study focused on absolute radiometric calibration which is a prerequisite procedure to ensure the radiometric quality of optical satellite images. In this study, we performed reflectance-based vicarious calibration methods on several uniform targets collected through several field campaigns in 2007. The radiative transfer model, MODTRAN, was used to estimate the amount of energy received at the sensor. The energy reached at the sensor are affected by several factors such as reflectance of targets, atmospheric condition, geometry condition between Sun and the sensor, etc. This study proposes the absolute radiometric calibration coefficients of KOMPSAT-2 MSC images combining several types of collected data through field works and tried to compare dynamic range of sensor-detected energy with other commercial high resolution sensors.

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GOCI-II 태양광 보정시스템을 활용한 가시 채널 복사 보정 개선 및 센서 안정성 분석 (GOCI-IIVisible Radiometric Calibration Using Solar Radiance Observations and Sensor Stability Analysis)

  • 김민상;박명숙;안재현;강금실
    • 대한원격탐사학회지
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    • 제39권6_2호
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    • pp.1541-1551
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    • 2023
  • 해색위성 원격탐사에서 광학센서에서 측정된 전자기 시그날을 태양광 복사휘도로 산출하는 것은 해양 환경 모니터링의 시작이 되는 중요 단계이다. 일반적으로 광학센서가 임무 기간 수많은 촬영을 하면서 감쇄가 일반적이며 이로 인해 발생하는 복사 보정의 불확도는 해수원격반사도, 엽록소-a 농도, 유색용존유기물 등 최종 산출물에 영향을 미치기 때문에, 국제적으로 해색위성의 임무기간 중 자료 연속성을 위한 복사보정의 중요성을 강조해 왔다. 본 연구는 Geostationary Ocean Color Imager-II (GOCI-II) 위성의 지속적인 품질과 정확성을 확보하기 위해 GOCI-II의 복사 보정 알고리즘을 개선 방법을 제시한다. GOCI-II는 궤도상 복사 보정 장치인 태양광 확산기(Solar Diffuser, SD)를 사용하여 gain을 지속적으로 측정하였다. 시계열 분석 결과 gain이 방위각에 따라 계절적 변동을 보임과 동시에 센서의 노후화 가능성을 고려해야 함을 확인하였다. 본 연구에서는 방위각 보정 모델을 도입하여 계절 주기성을 제거하였고, 센서 감쇄 보정 모델을 통해 복사 이득의 비선형적 추세를 산출하였다. 본 연구에서 개선된 복사 보정 알고리즘을 적용하여 대기 최상층(Top of Atmosphere, TOA) 복사휘도의 스펙트럼에 미치는 영향을 확인하였고, 이는 GOCI-II 데이터의 장기적인 안정성 확보를 통해 신뢰성 있는 위성 산출물을 제공함으로써 장기간 트렌드 분석 및 해양 환경 모니터링에 기여할 것으로 기대된다.

Radiometric Tarp를 이용한 현장관측 기반의 차세대중형위성 1호 절대복사보정 사례 연구 (A Case Study on Field Campaign-Based Absolute Radiometric Calibration of the CAS500-1 Using Radiometric Tarp)

  • 전우진;염종민;정재헌;진경욱;한경수
    • 대한원격탐사학회지
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    • 제39권6_1호
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    • pp.1273-1281
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    • 2023
  • 절대복사검보정은 위성 센서에서 얻은 전자기 신호의 물리량 변환을 위해 절대복사보정 계수를 결정하는 작업으로 위성 데이터의 정확도 개선 및 다른 위성 데이터와의 비교 및 통합을 위해 수행되어야 한다. 또한, 위성 센서는 시간에 따른 센서 노후화나 환경 조건의 영향을 받아 초기 설정된 보정 계수가 변화할 수 있으므로 주기적으로 이러한 변화를 모니터링 하는 것이 필수적이다. 이 연구에서는 차세대중형위성 1호(CAS500-1)의 다중 분광 채널에 대한 vicarious calibration을 수행하기 위해 필드 캠페인을 수행하였다. 구름이 없는 맑은 날의 조건 하에 총 두 차례의 유효한 현장 관측 자료를 얻었으며, MODTRAN 6 복사전달모델을 활용하여 대기 상단(top-of-atmosphere, TOA) radiance를 모의하였다. 모의된 TOA radiance와 CAS500-1의 digital number (DN)는 선형성은 보였지만, CAS500-1 영상의 넓은 시야각과 saturation 발생으로 향후 변환 계수의 보완이 필요한 것으로 보인다. 하지만, 본 연구는 CAS500-1의 절대복사보정에 대한 첫 시도를 하였으며, 향후 높은 신뢰성을 가진 계수 결정을 목표로 하는 연구들에 유용한 정보를 제공할 것으로 기대된다.