Image segmentation method based on reverse attention network
An image segmentation and attention technology, applied in the field of medical image processing, can solve the problems of inaccurate segmentation of polyps and missed detection of polyps.
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[0023] Below in conjunction with accompanying drawing and embodiment, technical solution of the present invention is described further:
[0024] A kind of image segmentation method based on reverse attention network is provided in this embodiment, such as figure 2 shown, including:
[0025] Step 1, obtain the image data set, construct training set and test set.
[0026] In the embodiment of this application, the image data set is obtained from the standard data set Kvasir, and 80% of the image data in the acquired image data set is used as a training set, and 20% of the image data is used as a test set, and the input is adjusted to 352 ×352.
[0027] Step 2, constructing the reverse attention network model, wherein the processing process of the reverse attention network model is as follows:
[0028] Specifically, the reverse attention network model first roughly locates the polyp region, and then accurately extracts its contour template according to the local features.
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