Classification with two input images using transfer learning
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I have a 3-class classification problem. However, the classification is based on two images rather than the typical one image. How can I use/modify transfer learning models, or otherwise build a model from scratch, that accepts two images as input concurrently.
5 comentarios
Image Analyst
el 12 de Mzo. de 2022
Not sure what you mean. Attach some images to explain. Maybe you can just stitch the images together to form one single image and train with those. Or else you can use SegNet or U-net to do a pixel-by-pixel classification of things in the images.
Mohammad Fraiwan
el 12 de Mzo. de 2022
Mohammad Fraiwan
el 12 de Mzo. de 2022
Image Analyst
el 12 de Mzo. de 2022
See these links on panoramic stitching to build a single image from all your subimages:
Mohammad Fraiwan
el 12 de Mzo. de 2022
Respuestas (1)
yanqi liu
el 14 de Mzo. de 2022
0 votos
yes,sir,may be use image fuse or image mosaic to make two image into one,and then use cnn as normal
1 comentario
Mohammad Fraiwan
el 14 de Mzo. de 2022
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