深度学习——参数共享(parameter sharing)

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note:

neral network for example:  intput --> 1 layer -->  2 layer--> 3layer -->      4 layer -->  output

layer 1:have many feature maps input into layer 2.

layer2: have feature maps ,each feature map connect with layer1, do many convolution, each convolution have the same parameter. 

 That is,  parameter sharing is within a feature map.

each feature map in layer2 will detect the same feature in all layer1 feature maps, so the feature move , layer2 will have the same result..

lay1's feature maps becomes input chinnels  to layer2.

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