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Could u share trained model? #3
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@xiaomingjie I I'm a newcomer in this field. I download and learn this code also, Can you share your train dataSet or tell me who to get the dataSet? please |
sry.. I use my own dataset that renders images and samples pointclouds from Shapenet Dataset. I suggest that u can dig into Shapenet dataset and see how to deal with it. |
@xiaomingjie thanks for your answer. I'm try to run the "train_base.py", but I miss the "tf_nndistance_so.so". how to get the file? |
@xiaomingjie Do you have the ShapeNet DataSet? Can you share it with me? |
Hi @xiaomingjie , |
HI @luotuoqingshan , |
Hi @xiaomingjie, I really appreciate your quick reply. |
@luotuoqingshan , |
@xiaomingjie , thanks a lot for your suggestions. |
@luotuoqingshan , I regard that parameters as hyper-parameters. As far as I know, only PSGN changes the hyper-parameter between forward and backward. Most works directly define the loss as the formulation of CD. I suppose that it's not that important. |
Hi @xiaomingjie |
@luotuoqingshan
|
@xiaomingjie , thanks a lot for your reply. |
@luotuoqingshan |
@xiaomingjie , thank you. |
Hi @xiaomingjie |
@xiaomingjie Could you share your trained model on this work?I want to calculate the Chamfer Distance with my own code and compare to my recent work. |
@xiaomingjie @BGHB ,我想复现一下DensePCR这个论文,可以指导一下吗,加您个联系方式欧克吗? |
@RenInsist 已弃 |
Hi,@xiaomingjie |
Hi @priyankamandikal
I tried to train your densepcr on my own but I found it difficult to train. Especially while I was training part dense_2 (4k_to_16k), it was so hard to converge and the visualized results were awful. But
dense_1 converged pretty well.
Besides, even with awful visualized results, finally after finetuning, the CD and EMD showed pretty good just as your paper shows...
So I m wondering what if u could share ur trained model so that I can get the results like your paper demonstrated.
Thank u very much
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