• Title/Summary/Keyword: infrared image analysis

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Analysis of Geometric Calibration Accuracy using the Results from IR Channel Nominal Radiometric Calibration (적외채널 기본 복사보정 결과를 이용한 기하보정 처리의 정확도 분석)

  • Seo, Seok-Bae;Kwon, Eun-Joo;Jin, Kyoung-Wook
    • Aerospace Engineering and Technology
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    • v.12 no.2
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    • pp.147-155
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    • 2013
  • The nominal radiometric calibration equation and additional five algorithms are applied in the infrared channel radiometric calibration for the COMS (Communication, Ocean, Meteorological Satellite) MI (Meteorological Imager). The processing end time of the radiometric calibration is directly related with the start time of geometric calibration processing since the geometric calibration processing is followed by that of the radiometric calibration. This paper describes comparison and analysis results for geometric calibration processing using two types of the radiometric calibration results, outputs from only the nominal radiometric calibration equation and outputs from the complete one (the nominal radiometric calibration equation with additional five algorithms), to propose a method with the earlier start time of the geometric calibration processing. Experimental results show that both of radiometric calibration results, from the nominal radiometric calibration equation with a fast processing speed and from the complete one with accurate radiometric values, can be used in the geometric calibration as the appropriate inputs because those processing results satisfied the requirements of geometric calibration processing accuracy. Thus the radiometric calibration results from the nominal radiometric calibration equation can be used to improve geometric calibration processing time.

Comparison between Possibilistic c-Means (PCM) and Artificial Neural Network (ANN) Classification Algorithms in Land use/ Land cover Classification

  • Ganbold, Ganchimeg;Chasia, Stanley
    • International Journal of Knowledge Content Development & Technology
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    • v.7 no.1
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    • pp.57-78
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    • 2017
  • There are several statistical classification algorithms available for land use/land cover classification. However, each has a certain bias or compromise. Some methods like the parallel piped approach in supervised classification, cannot classify continuous regions within a feature. On the other hand, while unsupervised classification method takes maximum advantage of spectral variability in an image, the maximally separable clusters in spectral space may not do much for our perception of important classes in a given study area. In this research, the output of an ANN algorithm was compared with the Possibilistic c-Means an improvement of the fuzzy c-Means on both moderate resolutions Landsat8 and a high resolution Formosat 2 images. The Formosat 2 image comes with an 8m spectral resolution on the multispectral data. This multispectral image data was resampled to 10m in order to maintain a uniform ratio of 1:3 against Landsat 8 image. Six classes were chosen for analysis including: Dense forest, eucalyptus, water, grassland, wheat and riverine sand. Using a standard false color composite (FCC), the six features reflected differently in the infrared region with wheat producing the brightest pixel values. Signature collection per class was therefore easily obtained for all classifications. The output of both ANN and FCM, were analyzed separately for accuracy and an error matrix generated to assess the quality and accuracy of the classification algorithms. When you compare the results of the two methods on a per-class-basis, ANN had a crisper output compared to PCM which yielded clusters with pixels especially on the moderate resolution Landsat 8 imagery.

Analysis of a Spatial Distribution and Nutritional Status of Chlorophyll-a Concentration in the Jinyang Lake Using Landsat 8 Satellite Image (Landsat 8호 영상을 이용한 진양호의 클로로필 a 농도의 공간분포와 영양상태 분석)

  • Jang, Min Won;Cho, Hyun Kyung;Kim, Sang Min
    • Journal of Korean Society on Water Environment
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    • v.35 no.1
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    • pp.1-8
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    • 2019
  • The purpose of this study is to evaluate the nutritional status of Lake Jinyang using Landsat 8 satellite image band correlated with chlorophyll-a, which is also related to algae proliferation. We selected 20 Landsat 8 images dating from 2013 to 2017, taken close to water quality measurement date when the cloud cover was less than 20 %. Based on the results of the previous studies, analyzing the correlation between chlorophyll-a, and Landsat 8 satellite image band, we selected near infrared wavelength, band 5 which is closely related to the population of algae. The nutritional status was classified using the Aizaki trophic state index (TSIm). The results of the regression equation between band 5 and the observed chlorophyll-a data was used to calculate chlorophyll-a for the image data from 2013 to 2017. The concentration of chlorophyll-a ranged from 3 to $16.1mg/m^3$. To illustrate the spatial distribution of chlorophyll-a within the lake, the chlorophyll-a concentration was divided into five grades. The images on October 14, 2014 and April 10, 2016 showed relatively high value of chlorophyll-a, while January 18, 2015 and December 6, 2016 chlorophyll-a value were below 5. The images on October 14, 2014 and April 10, 2016 were rated as eutrophic status in most areas. The results of simulating water quality for the day when the water quality was not measured resulted to an approximate value for the Panmun station while the Naedong station needed some corrections.

FIR VIEW OF DISKS OF WEAK-LINE T TAURI STARS

  • Takita, Satoshi;Doi, Yasuo;Arimatsu, Ko;Ootsubo, Takafumi;AKARI Team
    • Publications of The Korean Astronomical Society
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    • v.32 no.1
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    • pp.127-129
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    • 2017
  • We have observed ~60 Weak-line T Tauri stars (WTTSs) toward the Chamaeleon star forming region using the AKARI Far-Infrared Surveyor (FIS) All-Sky maps. We could not detect any significant emission from each source even at the most sensitive WIDE-S band. Then, we have performed stacking analysis of these WTTSs using the WIDE-S band images to improve the sensitivity. However, we could not detect any significant emission in the resultant image with a noise level of $0.05MJy\;sr^{-1}$, or 3 mJy for a point source. The three-sigma upper limit of 9 mJy leads to the disk dust mass of $0.01M_{\oplus}$. This result suggests that the disks around Chamaeleon WTTSs are already evolved to debris disks.

UPDATES OF IRC IMAGING TOOLKIT AND DATA ARCHIVE

  • Egusa, Fumi;AKARI/IRC team
    • Publications of The Korean Astronomical Society
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    • v.32 no.1
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    • pp.33-35
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    • 2017
  • We have been working on data processing and calibration of AKARI/IRC images from pointed observations. As of September 2014, a data package for each pointing only contains raw data and quick-look data, so that users have to process them using the toolkit by themselves. We plan to change this situation and to provide science-ready data sets, which are easy-to-use for non-AKARI experts. For Phase 1&2, we have updated dark and flat calibrations, and also the toolkit itself to produce images more reliable and easier to use. A new data package includes fully calibrated images with WCS information. We released it for about 4000 pointings at the end of March 2015.

Optimal Tongue Image Analysis for recognizing a Coated Tongue in the Tongue Diagnosis (설진에서 설태 인식을 위한 최적 혀 영상 분석)

  • Choi, chang-yur;Lee, woo-beom;Hong, you-sik;Lee, sang-suk;Nam, dong-hyun
    • Proceedings of the Korea Contents Association Conference
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    • 2011.05a
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    • pp.533-534
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    • 2011
  • 본 논문에서 적외선(IR; Infrared), 자외선(UV; Ultraviolet), 가시광선(VR; Visible ray)의 영역에서 촬영한 설진 영상으로부터 가장 효과적인 설태 인식을 위한 최적 혀 영상 분석 방법을 제안한다. 제안한 방법은 설진에서 혀 영상 촬영을 위한 최적 파장 범위와 해당 파장에서 설태 분석에 최적의 컬러 영상을 선정한다. 최적 영상 선정을 위해서는 각 파장별로 촬영한 혀 영상을 LAB, HSV, YcBcR, RGB 컬러모델로 변환하고, 변환된 영상들로부터 설태와 비설태 영역의 히스토그램(Histogram)을 분석에 의해서 영역-분별력을 측정한다. 실험 결과 설진에서 설태 인식을 위한 최적 혀 영상은 자외선 영역에서의 RGB 컬러모델로 나타났다.

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Analysis of Texture Information with High Resolution Imagery for Characterizing Forest Stand

  • KIM T. G.;LEE K. S.
    • Proceedings of the KSRS Conference
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    • 2004.10a
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    • pp.14-16
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    • 2004
  • Although there have been wide range of studies to characterize forest stands based upon spectral information of satellite image, it was not fully understood the texture information of forest stand using high resolution data. The objective of this study is to evaluate several texture measures for characterizing forest stand structure, such as species composition, diameter at breast height(DBH), stand density, and age. High resolution IKONOS satellite imagery data were acquired in August 200 lover the forested area near Ulsan, Korea. Primary forest types were plantation pine, mixed forest, and natural deciduous forest of stand age ranging from 10 to 50 years old. Several GLCM-based texture measures were compared with forest stand characteristics. In overall, a texture measure (contrast) calculated using red band were better to differentiate species and age group than other texture measures and near infrared bands.

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A STUDY ON THE ASTRONOMICAL OBSERVATIONAL ENVIRONMENTS AT THE CHOEJUNG-SAN GEODSS SITE: II. METEOROLOGICAL STUDY (최정산 위성추적소의 천체관측 환경에 관한 조사 연구: II. 천문 관측환경에 대한 기상학적 연구)

  • Yun, Il-Hui;An, Byeong-Ho;Kang, Yong-Hui;Yun, Tae-Seok
    • Publications of The Korean Astronomical Society
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    • v.11 no.1
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    • pp.197-220
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    • 1996
  • The climatological characteristics at the Choejung-san site were statistically analyzed using monthly normals for the various meteorological elements at Taegu meteorological station for 30 years from January 1960 to December 1990. Various synoptic weather conditions were classified by the estimated geostrophic wind speeds and direction determined using the 850 hPa geopotential height field for 10 years from December 1980 to November 1989. Also the analysis of number of clear days were monthly and seasonally performed using the satellite infrared image data which were obtained from GMS 5 for 5 years from December 1990 to November 1995. The results reveal that the meteorological environments of astronomical observation at Choejung-san site were very good conditions during three hours after midnight except for summer season.

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A Cloud Analysis Using Near Infrared Image and Fuzzy Logic (근적외 영상과 퍼지 퍼지 논리를 이용한 구름 분석)

  • Hwang, Jin-Kun;Kim, Kwang-Baek
    • Proceedings of the Korean Institute of Information and Commucation Sciences Conference
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    • 2009.10a
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    • pp.261-263
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    • 2009
  • 본 논문에서는 퍼지 기법을 이용하여 구름의 종류를 분석하는 방법을 제안한다. 제안된 방법은 각각 영상에 대해 R채널의 임계치를 적용하여 잡음을 제거하며, 잡음 영역이 제거된 각각의 근적외 영상과 가시 영상의 반사 특성 및 근적외 영상과 적외 영상의 방출 특성의 특징을 구한 후, 각각의 임계치를 적용하여 1차적으로 구름을 판별한다. 1차적으로 구름 판별에서 제외된 영역에 대해서는 가시 및 적외 영상의 R 채널 값을 퍼지 기법에 적용하여 2차적으로 구름의 종류를 판별한다. 1차적으로 판별된 구름 영역과 2차적으로 판별된 구름 영역을 합성하여 최종 구름 영역을 도출한다. 제안된 방법을 실험한 결과, 기존의 구름 분류 방법보다 제안된 방법이 구름 분류의 성능이 개선된 것을 확인하였다.

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A Sensor Module Overcoming Thick Smoke through Investigation of Fire Characteristics (화재 특성 고찰을 통한 농연 극복 센서 모듈)

  • Cho, Min-Young;Shin, Dong-In;Jun, Sewoong
    • The Journal of Korea Robotics Society
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    • v.13 no.4
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    • pp.237-247
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    • 2018
  • In this paper, we describe a sensor module that monitors fire environment by analyzing fire characteristics. We analyzed the smoke characteristics of indoor fire. Six different environments were defined according to the type of smoke and the flame, and the sensors available for each environment were combined. Based on this analysis, the sensors were selected from the perspective of firefighter. The sensor module consists of an RGB camera, an infrared camera and a radar. It is designed with minimum weight to fit on the robot. the enclosure of sensor is designed to protect against the radiant heat of the fire scene. We propose a single camera mode, thermal stereo mode, data fusion mode, and radar mode that can be used depending on the fire scene. Thermal stereo was effectively refined using an image segmentation algorithm, SLIC (Simple Linear Iterative Clustering). In order to reproduce the fire scene, three fire test environments were built and each sensor was verified.