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Hello, the weights of your score_fr35 layer are all zeroes. You may want to initialize them with a "Xavier" weight filler. Also, the weights for your deconv layer are probably zeroes too, consider using a bilinear interpolation weight filler. More details on https://devblogs.nvidia.com/parallelforall/image-segmentation-using-digits-5/
On Fri, Jan 6, 2017 at 12:56 PM, Johannes Kolbe <kolbe.j...@gmail.com> wrote:
Hi,
I got the FCN AlexNet semantic segmentation working quite well and even trained it with the cityscapes dataset (cityscapes-dataset.com) with some good results. But now I wanted to go a step further and use the FCN-8s based on VGG-16 as given in this thread: https://groups.google.com/forum/#!topic/digits-users/0UF-xD-yGuY and using the pre-trained model from http://dl.caffe.berkeleyvision.org/fcn8s-heavy-pascal.caffemodel
The problem is, the score_fr layer always gives zero as an output and I really can't figure out where I went wrong. I attached my network and solver. Would be great if somebody can give me a hint for what might go wrong.
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