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d76f8a8f
编写于
6月 12, 2018
作者:
Q
qiaolongfei
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差异文件
refine doc of polynomial_decay
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dde0a280
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python/paddle/fluid/layers/learning_rate_scheduler.py
python/paddle/fluid/layers/learning_rate_scheduler.py
+18
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未找到文件。
python/paddle/fluid/layers/learning_rate_scheduler.py
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d76f8a8f
...
@@ -162,22 +162,27 @@ def polynomial_decay(learning_rate,
...
@@ -162,22 +162,27 @@ def polynomial_decay(learning_rate,
end_learning_rate
=
0.0001
,
end_learning_rate
=
0.0001
,
power
=
1.0
,
power
=
1.0
,
cycle
=
False
):
cycle
=
False
):
"""Applies polynomial decay to the initial learning rate.
"""
**polynomial_decay**
Applies polynomial decay to the initial learning rate.
.. code-block::python
if cycle:
decay_steps = decay_steps * ceil(global_step / decay_steps)
else:
global_step = min(global_step, decay_steps)
decayed_learning_rate = (learning_rate - end_learning_rate) *
(1 - global_step / decay_steps) ^ power + end_learning_rate
>>> if cycle:
>>> decay_steps = decay_steps * ceil(global_step / decay_steps)
>>> else:
>>> global_step = min(global_step, decay_steps)
>>> decayed_learning_rate = (learning_rate - end_learning_rate) *
>>> (1 - global_step / decay_steps) ^ power +
>>> end_learning_rate
Args:
Args:
learning_rate: A scalar float32 value or a Variable. This
learning_rate
(Variable|float32)
: A scalar float32 value or a Variable. This
will be the initial learning rate during training
will be the initial learning rate during training
decay_steps: A Python `int32` number.
decay_steps
(int32)
: A Python `int32` number.
end_learning_rate: A Python `float` number.
end_learning_rate
(float)
: A Python `float` number.
power: A Python `float` number
power
(float)
: A Python `float` number
cycle: Boolean. If set true, decay the learning rate every decay_steps.
cycle
(bool, Default False)
: Boolean. If set true, decay the learning rate every decay_steps.
Returns:
Returns:
The decayed learning rate
The decayed learning rate
...
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