Method for classifying hyperspectral images on basis of combination of unmixing and adaptive end member extraction
A hyperspectral image and endmember extraction technology, which is applied in the direction of instruments, character and pattern recognition, computer components, etc., can solve problems such as large errors
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[0029] 1. Rough classification of images.
[0030] In order to make the obtained endmember sets more reliable, this embodiment adopts a statistical theory-based maximum likelihood classification algorithm to roughly classify the original hyperspectral image. After classification, each pixel has a unique class label, and the confusion matrix obtained from the classification results will be used as the basis for subsequent endmember screening. In order to meet the actual data requirements, when the number of samples N satisfies N>1000, 5‰ pixels of each class are randomly selected as training samples; if 100<N<1000, 5% of the pixels of each class are randomly selected as training samples; otherwise, 5% of the pixels are randomly selected for each class. pixels as training samples. In addition, in order to reduce spectral redundancy and reduce noise influence, the present invention adopts principal component analysis (PCA) to realize data dimensionality reduction on the original...
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