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Hi, weakly-supervised disentanglement is a nice work. But I am still confused about some concept. Looking forward to your explanation.
in the paper at page 5, you compare the work with prior work. "Our approach critically differs in the sense that S is not known and needs to be estimated for every pair of images." May I ask you about the impletation of S estimation? It seems that I have ignore some crucial details.
What is the meaning of Rnd? Is it an abbreviations?
The text was updated successfully, but these errors were encountered:
Hi, even though I am not an author I think I can still answer your questions:
You can find the answers to this question on page 4: "To obtain an estimate of S we therefore choose for every pair (x_1, x_2) the d−k coordinates with the smallest D_KL"
Hi, even though I am not an author I think I can still answer your questions:
You can find the answers to this question on page 4: "To obtain an estimate of S we therefore choose for every pair (x_1, x_2) the d−k coordinates with the smallest D_KL"
I think Rnd is simply the abbreviation for Random
Hi, Thanks a lot! I am unfamiliar to the area of the disentanglement at the last time. I am sorry to bother you again!
In the training of weakly-vae, pairs are adopted to discover the shared dimensions and specific dimensions. However, if I construct the similar pairs to train, it is necessary to keep them at the valid or test procedure? In other words, What should I do to generate the output focus on the single instance in validate dataset and test dataset? In fact, most of the test instances always are not observed before test procedure.
Hi, weakly-supervised disentanglement is a nice work. But I am still confused about some concept. Looking forward to your explanation.
Rnd
? Is it an abbreviations?The text was updated successfully, but these errors were encountered: