Comments (6)
Hi @minar09
There are 20 labels in total. Here is a reference repo about the total parsing labels. Self-Correction-Human-Parsing However, we only use the most common 11 labels for VITON dataset.
Actually, different numbers are assigned to different parts of humans. The reconstructed parsing labels are presented in the README. Thus, the order of label numbers is quite different from Self-Correction-Human-Parsing.
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Hi @ChongjianGE , thank you so much for the answer. I think I understand why you used different labels, since VITON dataset does not have images including coat, scarf, glove etc. However, I think VITON dataset has some skirt images which could be included in your ACGPN, but maybe that's okay regarding the try-on cloth is only for upper-body. Thank you.
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what's label 7 Noise?
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Hi @Learningchen,
You can ignore the label 7. It does no harm to try-on performance.
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First I want to tell you that I am very surprised by the excellent results in the inference, thank you very much for contributing with this architecture, I admire you very much.
After making inferences with custom images I get an unexpected result with some images as shown below:
Couldn't this be because you don't have the nose tag?
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@josearangos Hi, were u able to figure out the reason for problem in nose generation? Kindly let us know.
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Related Issues (20)
- The certain pose point in Dataset Partition
- pose_iter_440000.caffemodel file missing.
- 403. Thatβs an error.
- Google colab link error HOT 2
- How much time does it take in training? Additionally, why is this code implemented in an end-to-end manner? HOT 2
- SSIM HOT 2
- How to train for 20 epochs HOT 1
- detect ours HOT 3
- Colab Notebook with expired Model Drive Links HOT 2
- What is STN Second-Order Difference Constraint? HOT 1
- Second-order constraint constants HOT 1
- Result is not showing HOT 1
- test.py showing error HOT 2
- Generating densepose at different resolutions HOT 1
- Error with the 16th block HOT 4
- Error with train.py file HOT 2
- Error with test.py file HOT 2
- the difficulty of try-on reference image HOT 1
- Inference images=0?
- Data processing HOT 2
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