SURE-based optimum-length S-G filter to reconstruct NDVI time series iteratively with outliers removal
2019 ◽
Vol 18
(02)
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pp. 2050001
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Savitzky–Golay (S-G) filter is a method of local polynomial regression, and iterative filtering with S-G filter can be used to smooth out random noise and outliers of cloud noise in NDVI time series. It involves a continuous approximation to the upper envelope of NDVI time series. In this paper, the optimum-length of S-G filter was estimated based on Steinc’s unbiased risk estimator theory when S-G filtering was conducted iteratively, and the reconstruction result was presented. Reconstruction experiments on the simulated data and MODIS NDVI time series of the year 2010–2014 showed that the optimum-length S-G filter can outperform the fixed bandwidth S-G filter.
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2019 ◽
Vol 81
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pp. 27-36
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2019 ◽
Vol 35
(13)
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pp. 1400-1414
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2012 ◽
Vol 47
(9)
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pp. 1270-1278
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