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He normal initializer.
Inherits From: VarianceScaling
, Initializer
tf.keras.initializers.HeNormal( seed=None )
It draws samples from a truncated normal distribution centered on 0 with stddev = sqrt(2 / fan_in)
where fan_in
is the number of input units in the weight tensor.
Examples:
# Standalone usage:
initializer = HeNormal()
values = initializer(shape=(2, 2))
# Usage in a Keras layer:
initializer = HeNormal()
layer = Dense(3, kernel_initializer=initializer)
Reference:
Methods
clone
clone()
from_config
@classmethod
from_config( config )
Instantiates an initializer from a configuration dictionary.
Example:
initializer = RandomUniform(-1, 1) config = initializer.get_config() initializer = RandomUniform.from_config(config)
Args | |
---|---|
config | A Python dictionary, the output of get_config() . |
Returns | |
---|---|
An Initializer instance. |
get_config
get_config()
Returns the initializer's configuration as a JSON-serializable dict.
Returns | |
---|---|
A JSON-serializable Python dict. |
__call__
__call__( shape, dtype=None )
Returns a tensor object initialized as specified by the initializer.
Args | |
---|---|
shape | Shape of the tensor. |
dtype | Optional dtype of the tensor. |