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PyTorch implementation of the implicit Q-learning algorithm (IQL)
Hi! Is offline training now fully supported? I am confused because I see the train_offline script but in the README I see that you say that offline training is not implemented. Maybe not with the D4RL dataset, but should it work for any dataset of experiences (s,a,r,s',d)?
Thank you!
Sebastian, thank you for this great code. I am trying to run some examples here (starting from offline training of antmaz) however I receive an error about "assert np.isscalar(low) and np.isscalar(high)" from the BOX space which is returned from line 18th of single_precision.py". is there something I may missed ?
thank you
It works well on mujoco environments, but not on antmze environment .It did not work even if I changed the parameters according to the paper(expectile=0.9, temperature=10). Can you help me please?
Hi,
Thanks for sharing the implementation code.
I have a question about IQL experimental runtime on PyTorch.
Actually, I tried to re-implement it with tensorflow-keras. But the runtime is quite slow. (on HalfCheetah-medium-v2 with GTX 1080TI)
If you don't mind, could you share the the overall runtime on that environment or computing resource you use?
Thanks in advance.
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