Seed cotton mulching film hyperspectral visual label algorithm for deep learning
A deep learning and hyperspectral technology, applied in the field of hyperspectral imaging and deep learning, can solve the problem that users cannot mark hyperspectral data, and achieve the effect of saving energy
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[0038] Step 1: Collect hyperspectral images of seed cotton mulch film, and perform data correction and noise reduction;
[0039] The SWIR series hyperspectral imager of Finland SPECIM company was used to obtain the reflection spectrum image of seed cotton mulch film at 1000-2500nm, 5.6nm is a spectrum, and a total of 288 spectrums of data were collected;
[0040] Correction is performed by the pure black frame ID and pure white frame IW, and the related data is averaged, that is, for ID, IW is used in the row direction processed to obtain and After correcting the data, finally use the SG multinomial smoothing method to fit and smooth the data to obtain smooth spectral data, and realize data correction and noise reduction. The results after spectral correction are as follows: figure 1 shown, from figure 1 It can be seen that the corrected spectral curve is smooth and the amplitude is between 0 and 1, which is convenient for the training of the neural network.
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