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def get_lr_lambda(step, warm_up_steps: int, reduce_lr_steps: int):
r"""Get lr_lambda for LambdaLR. E.g.,
.. code-block: python
lr_lambda = lambda step: get_lr_lambda(step, warm_up_steps=1000, reduce_lr_steps=10000)
from torch.optim.lr_scheduler import LambdaLR
LambdaLR(optimizer, lr_lambda)
Args:
warm_up_steps: int, steps for warm up
reduce_lr_steps: int, reduce learning rate by 0.9 every #reduce_lr_steps steps
Returns:
learning rate: float
"""
if step <= warm_up_steps:
return step / warm_up_steps
else:
return 0.9 ** (step // reduce_lr_steps)