Comments (4)
Were you able to finetune deconvnet network and the FCN network for you own dataset? If yes, how did you do that.
from deconvnet.
Yes I was able to do that. Regarding my question earlier on, I fine tune it using 'stage_2_train_result.caffemodel'. What have you tried and what's your problem?
from deconvnet.
Thanks for the reply. Can you please share your skype id on my email address: [email protected]? I am having the following problems:-
1-This implementation needs a trained FCN too, how were you able to train that? Because there is no code for its training in this branch
2- The format of training data for second stage is very odd and the pixels aren't labeled, instead it is binary image with just the boundries of the object. There is also a bounding box argument added to the train.txt file which has negative coordinates which quite confusing.
3- This implementation is using edge box proposals, wouldn't that make this implementation slow?
I'll be really glad if you can reply back asap. Thanks in advance.
from deconvnet.
@hussamullah Have you already solved your problem No.2 and No.3? I am confused by the same problems as you. If yes, how did you do that.
I'll be very glad if you can reply back. Thanks in advance.
from deconvnet.
Related Issues (14)
- error at cudaSuccess? HOT 2
- In generate_EDeconvNet_CRF_results.m line 115
- What do these four numbers stand for? HOT 1
- Converting caffe model to Keras
- Unknown enumeration value of "BN" for field "type".
- Download training set
- MEX-file segmentation violation is detected during running demo
- How to produce boxes_padded? HOT 1
- Detecting tiny objects?
- Using results of stage1 directly HOT 1
- Makefile:479: recipe for target '.build_release/src/caffe/layers/euclidean_loss_layer.o' failed
- Out of memory error while there is enough memory
- Data URL is down HOT 2
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