TY - JOUR
T1 - A Novel Intercalibration Method for Fengyun(FY)-3 VIRR Using MERSI Onboard the Same Satellite Based on Pseudo-Invariant Pixels
AU - Wang, Junwei
AU - Hu, Xiuqing
AU - Gao, Kun
AU - He, Yuqing
AU - Wang, Ling
AU - Li, Guorong
AU - Xu, Na
AU - Zhang, Peng
N1 - Publisher Copyright:
© 2024 The Authors.
PY - 2024
Y1 - 2024
N2 - This study presents a novel approach to the radiometric intercalibration between two sensors onboard the same satellite based on pseudo-invariant pixels (PIPs) using iteratively reweighted multivariate alteration detection (IR-MAD) method. The IR-MAD algorithm can statistically select PIPs from the multispectral image pair to assess the radiometric differences between them. Analysis of multiple image pairs from different acquisition times can provide long-term intercalibration results for the two sensors. The procedure is applied to Fengyun(FY)3A&3B visible infrared radiometer (VIRR), with the medium resolution spectral imager (MERSI) onboard the same platform as the reference. Consistency of the spatial distribution of the PIPs selected by IR-MAD with pseudo-invariant calibration sites (PICSs) given by other scientists demonstrates the effectiveness of our method. The long-term time series trending of top-of-atmosphere (TOA) VIRR reflectance over LIBYA1 and LIBYA4 after intercalibration correction shows that the intercalibrated VIRR has good agreement with MERSI, with a mean bias of less than 1% and an uncertainty of less than 2% for most channels. The approach requires no prior knowledge of the intercalibration targets and extends PICS to the pixel-level targets, which results in more diverse samples, broader dynamic ranges, and lower uncertainty, yielding consistent and reliable long-term intercalibration results.
AB - This study presents a novel approach to the radiometric intercalibration between two sensors onboard the same satellite based on pseudo-invariant pixels (PIPs) using iteratively reweighted multivariate alteration detection (IR-MAD) method. The IR-MAD algorithm can statistically select PIPs from the multispectral image pair to assess the radiometric differences between them. Analysis of multiple image pairs from different acquisition times can provide long-term intercalibration results for the two sensors. The procedure is applied to Fengyun(FY)3A&3B visible infrared radiometer (VIRR), with the medium resolution spectral imager (MERSI) onboard the same platform as the reference. Consistency of the spatial distribution of the PIPs selected by IR-MAD with pseudo-invariant calibration sites (PICSs) given by other scientists demonstrates the effectiveness of our method. The long-term time series trending of top-of-atmosphere (TOA) VIRR reflectance over LIBYA1 and LIBYA4 after intercalibration correction shows that the intercalibrated VIRR has good agreement with MERSI, with a mean bias of less than 1% and an uncertainty of less than 2% for most channels. The approach requires no prior knowledge of the intercalibration targets and extends PICS to the pixel-level targets, which results in more diverse samples, broader dynamic ranges, and lower uncertainty, yielding consistent and reliable long-term intercalibration results.
KW - Intercalibration
KW - iteratively reweighted multivariate alteration detection (IR-MAD)
KW - medium resolution spectral imager (MERSI)
KW - pseudo-invariant pixels (PIPs)
KW - visible infrared radiometer (VIRR)
UR - http://www.scopus.com/inward/record.url?scp=85188433281&partnerID=8YFLogxK
U2 - 10.1109/TGRS.2024.3376580
DO - 10.1109/TGRS.2024.3376580
M3 - Article
AN - SCOPUS:85188433281
SN - 0196-2892
VL - 62
SP - 1
EP - 17
JO - IEEE Transactions on Geoscience and Remote Sensing
JF - IEEE Transactions on Geoscience and Remote Sensing
ER -