pytorch
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Add volume Bar
some recordings have low volume so the output can be sometimes really quiet. how about we add a volume bar so we can make the output louder/quieter?
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We keep this issue open to collect feature requests from users and hear your voice. Our monthly release plan is also available here.
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Sep 27, 2020 - JavaScript
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Sep 8, 2020
Change tensor.data
to tensor.detach()
due to
pytorch/pytorch#6990 (comment)
tensor.detach()
is more robust than tensor.data
.
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more details at: allenai/allennlp#2264 (comment)
Bug Report
These tests were run on s390x. s390x is big-endian architecture.
Failure log for helper_test.py
________________________________________________ TestHelperTensorFunctions.test_make_tensor ________________________________________________
self = <helper_test.TestHelperTensorFunctions testMethod=test_make_tensor>
def test_make_tensor(self): # type: () -> None
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Sep 27, 2020 - Python
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🚀 Feature
Enable training purely based on number of iterations instead of epochs
Motivation
This can be useful for certain training runs. Without this feature, the user must set an unreachably high value for max_epochs
and set max_steps
to the desired iteration count. With this setup, the trainer will break from the training loop based on max_steps
since we'd never reach `max_e
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What would you like to be added: As title
Why is this needed: All pruning schedule except AGPPruner only support level, L1, L2. While there are FPGM, APoZ, MeanActivation and Taylor, it would be much better if we can choose any pruner with any pruning schedule.
**Without this feature, how does current nni
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Jul 5, 2020 - Python
To begin I tried logging in with GitHub and also creating an account on the pyro forums, but neither of those is working.
Problem
I need to fit a batch of four independent Gaussian Processes and I don't want to have to use for loops for fitting each one. The current GP's are able to broadcast properly to my outputs, but I can't batch them so that the inputs are independent.
My input d
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Jan 31, 2019 - Python
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A very good first issue IMO!
See huggingface/transformers#4829 (comment)
Optionally, use the
huggingface/nlp
library to get the eval dataset, and hook it into the Trainer.Also referenced in huggingface/transformers#6997 (comment)