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New SST correction method from multi-satellite based on the coefficient of variation 被引量:1

New SST correction method from multi-satellite based on the coefficient of variation
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摘要 In remote sensing sea surface temperature (SST), the traditional fusion method is used to compute the dot product of a subjective weight vector with a satellite measurement vector, while the result requires validation by field measurement. However, field measurement that relative to the satellite measurement is very sparse, many information may not be verified. A relative objective weight vector is constructed by using the limited field measurement, which is based on coefficient of variation method. And then it make an application of the data fusion by the weighted average method in the SST data. fuse SST data with the weighted average method. In this way, some posteriori information can be added to the fusion process. The model reduces the dependence on verification, and some of the satellite measurement can be handled without corresponding to the field measurement, and the fusion result matches transfer errors theory. In remote sensing sea surface temperature (SST), the traditional fusion method is used to compute the dot product of a subjective weight vector with a satellite measurement vector, while the result requires validation by field measurement. However, field measurement that relative to the satellite measurement is very sparse, many information may not be verified. A relative objective weight vector is constructed by using the limited field measurement, which is based on coefficient of variation method. And then it make an application of the data fusion by the weighted average method in the SST data. fuse SST data with the weighted average method. In this way, some posteriori information can be added to the fusion process. The model reduces the dependence on verification, and some of the satellite measurement can be handled without corresponding to the field measurement, and the fusion result matches transfer errors theory.
出处 《Journal of Shanghai University(English Edition)》 CAS 2011年第5期463-466,共4页 上海大学学报(英文版)
基金 Project supported by the National Natural Science Foundation of China(Grant No.40976108) the Shanghai Leading Academic Discipline Project(Grant No.J50103)
关键词 coefficient of variation method error propagation sea surface temperature (SST) data fusion coefficient of variation method, error propagation, sea surface temperature (SST), data fusion
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