Semantic stereo reconstruction method of remote sensing image
A remote sensing image and stereo reconstruction technology, applied in the field of image processing, can solve the problem of large color difference, and achieve the effect of improving parallax precision, improving accuracy, and solving the problem of wrong matching.
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[0025] The semantic segmentation network framework of this example is Tensorflow-gpu1.4.0, and the disparity estimation network framework is Pytorch0.4.1.
[0026] The present invention is described in detail below in conjunction with accompanying drawing:
[0027] refer to figure 1 , the implementation steps of the present invention are as follows:
[0028] Step 1: Obtain the remote sensing image dataset US3D.
[0029] This remote sensing image dataset contains remote sensing images and their semantic segmentation labels. The resolution of remote sensing images is 1024×1024, and the image types include color RGB images, such as image 3 As shown in (a), and the eight-channel multispectral image MSI, each type of remote sensing image contains epipolar-corrected left and right image pairs, and the semantic segmentation labels include: building, ground, high vegetation, elevated road and water. .
[0030] Step 2: Data preprocessing of remote sensing images in sequence.
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