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A Statistic Correlation Analysis Algorithm Between Land Surface Temperature and Vegetation Index
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  • A Statistic Correlation Analysis Algorithm Between Land Surface Temperature and Vegetation Index
  • A Statistic Correlation Analysis Algorithm Between Land Surface Temperature and Vegetation Index
저자명
Kim. Hyung-Moo,Kim. Beob-Kyun,You. Kang-Soo
간행물명
International journal of information processing systems
권/호정보
2005년|1권 1호|pp.102-106 (5 pages)
발행정보
한국정보처리학회
파일정보
정기간행물|ENG|
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기타
이 논문은 한국과학기술정보연구원과 논문 연계를 통해 무료로 제공되는 원문입니다.
서지반출

기타언어초록

As long as the effective contributions of satellite images in the continuous monitoring of the wide area and long range of time period, Landsat TM and Landsat ETM+ satellite images are surveyed. After quantization and classification of the deviations between TM and ETM+ images based on approved thresholds such as gains and biases or offsets, a correlation analysis method for the compared calibration is suggested in this paper. Four time points of raster data for 15 years of the highest group of land surface temperature and the lowest group of vegetation of the Kunsan city Chollabuk_do Korea located beneath the Yellow sea coast, are observed and analyzed their correlations for the change detection of urban land cover. This experiment based on proposed algorithm detected strong and proportional correlation relationship between the highest group of land surface temperature and the lowest group of vegetation index which exceeded R=(+)0.9478, so the proposed Correlation Analysis Model between the highest group of land surface temperature and the lowest group of vegetation index will be able to give proof an effective suitability to the land cover change detection and monitoring.