A NEW OPTIMIZED RFM OF HIGH-RESOLUTION SATELLITE IMAGERY

Over-parameterization and over-correction are two of the major problems in the rational function model (RFM). A new approach of optimized RFM (ORFM) is proposed in this paper. By synthesizing stepwise selection, orthogonal distance regression, and residual systematic error correction model, the pr...

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Main Authors: C. Li, X. J. Liu, T. Deng
Format: Article
Language:English
Published: Copernicus Publications 2016-06-01
Series:The International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences
Online Access:https://www.int-arch-photogramm-remote-sens-spatial-inf-sci.net/XLI-B3/65/2016/isprs-archives-XLI-B3-65-2016.pdf
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spelling doaj-50d0c71747864e9ab30f460f6ea948cc2020-11-24T21:45:06ZengCopernicus PublicationsThe International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences1682-17502194-90342016-06-01XLI-B3656910.5194/isprs-archives-XLI-B3-65-2016A NEW OPTIMIZED RFM OF HIGH-RESOLUTION SATELLITE IMAGERYC. Li0C. Li1X. J. Liu2T. Deng3Key laboratory for Geographical Process Analysis & Simulation, Hubei Province, ChinaCollege of Urban and Environmental Science, Central China Normal University, Wuhan, ChinaCollege of Urban and Environmental Science, Central China Normal University, Wuhan, ChinaSchool of Fine Arts, Central China Normal University, Wuhan, ChinaOver-parameterization and over-correction are two of the major problems in the rational function model (RFM). A new approach of optimized RFM (ORFM) is proposed in this paper. By synthesizing stepwise selection, orthogonal distance regression, and residual systematic error correction model, the proposed ORFM can solve the ill-posed problem and over-correction problem caused by constant term. The least square, orthogonal distance, and the ORFM are evaluated with control and check grids generated from satellite observation Terre (SPOT-5) high-resolution satellite data. Experimental results show that the accuracy of the proposed ORFM, with 37 essential RFM parameters, is more accurate than the other two methods, which contain 78 parameters, in cross-track and along-track plane. Moreover, the over-parameterization and over-correction problems have been efficiently alleviated by the proposed ORFM, so the stability of the estimated RFM parameters and its accuracy have been significantly improved.https://www.int-arch-photogramm-remote-sens-spatial-inf-sci.net/XLI-B3/65/2016/isprs-archives-XLI-B3-65-2016.pdf
collection DOAJ
language English
format Article
sources DOAJ
author C. Li
C. Li
X. J. Liu
T. Deng
spellingShingle C. Li
C. Li
X. J. Liu
T. Deng
A NEW OPTIMIZED RFM OF HIGH-RESOLUTION SATELLITE IMAGERY
The International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences
author_facet C. Li
C. Li
X. J. Liu
T. Deng
author_sort C. Li
title A NEW OPTIMIZED RFM OF HIGH-RESOLUTION SATELLITE IMAGERY
title_short A NEW OPTIMIZED RFM OF HIGH-RESOLUTION SATELLITE IMAGERY
title_full A NEW OPTIMIZED RFM OF HIGH-RESOLUTION SATELLITE IMAGERY
title_fullStr A NEW OPTIMIZED RFM OF HIGH-RESOLUTION SATELLITE IMAGERY
title_full_unstemmed A NEW OPTIMIZED RFM OF HIGH-RESOLUTION SATELLITE IMAGERY
title_sort new optimized rfm of high-resolution satellite imagery
publisher Copernicus Publications
series The International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences
issn 1682-1750
2194-9034
publishDate 2016-06-01
description Over-parameterization and over-correction are two of the major problems in the rational function model (RFM). A new approach of optimized RFM (ORFM) is proposed in this paper. By synthesizing stepwise selection, orthogonal distance regression, and residual systematic error correction model, the proposed ORFM can solve the ill-posed problem and over-correction problem caused by constant term. The least square, orthogonal distance, and the ORFM are evaluated with control and check grids generated from satellite observation Terre (SPOT-5) high-resolution satellite data. Experimental results show that the accuracy of the proposed ORFM, with 37 essential RFM parameters, is more accurate than the other two methods, which contain 78 parameters, in cross-track and along-track plane. Moreover, the over-parameterization and over-correction problems have been efficiently alleviated by the proposed ORFM, so the stability of the estimated RFM parameters and its accuracy have been significantly improved.
url https://www.int-arch-photogramm-remote-sens-spatial-inf-sci.net/XLI-B3/65/2016/isprs-archives-XLI-B3-65-2016.pdf
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