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Detection and correction of AMSR-E radio-frequency interference

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Abstract

Radio-frequency interference (RFI) affects greatly the quality of the data and retrieval products from space-borne microwave radiometry. Analysis of the Advanced Microwave Scanning Radiometer on the Earth Observing System (AMSR-E) Aqua satellite observations reveals very strong and widespread RFI contaminations on the C- and X-band data. Fortunately, the strong and moderate RFI signals can be easily identified using an index on observed brightness temperature spectrum. It is the weak RFI that is difficult to be separated from the nature surface emission. In this study, a new algorithm is proposed for RFI detection and correction. The simulated brightness temperature is used as a background signal (B) and a departure of the observation from the background (O-B) is utilized for detection of RFI. It is found that the O-B departure can result from either a natural event (e.g., precipitation or flooding) or an RFI signal. A separation between the nature event and RFI is further realized based on the scattering index (SI). A positive SI index and low brightness temperatures at high frequencies indicate precipitation. In the RFI correction, a relationship between AMSR-E measurements at 10.65 GHz and those at 18.7 or 6.925 GHz is first developed using the AMSR-E training data sets under RFI-free conditions. Contamination of AMSR-E measurements at 10.65 GHz is then predicted from the RFI-free measurements at 18.7 or 6.925 GHz using this relationship. It is shown that AMSR-E measurements with the RFI-correction algorithm have better agreement with simulations in a variety of surface conditions.

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Correspondence to Ying Wu  (吴 莹).

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Supported by the National Key Basic Research and Development (973) Program of China (2010CB951600), National Natural Science Foundation of China (40875015, 40875016, and 40975019), Special Fund for University Doctoral Students of China (20060300002), Chinese Academy of Meteorological Sciences “Application of Meteorological Data in GRAPES-3DVar” Program, and NOAA/NESDIS/Center for Satellite Applications and Research (STAR) CalVal Program.

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Wu, Y., Weng, F. Detection and correction of AMSR-E radio-frequency interference. Acta Meteorol Sin 25, 669–681 (2011). https://doi.org/10.1007/s13351-011-0510-0

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  • DOI: https://doi.org/10.1007/s13351-011-0510-0

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