Adaptive iterative convolution neural network model compression method
A convolutional neural network and self-adaptive iterative technology, applied in the field of convolutional neural network model compression, can solve problems such as inability to model compression algorithms, achieve high accuracy and reduce precision loss
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[0044] The present invention is mainly about the self-adaptive iterative convolutional neural network model compression method, so the implementation of the present invention has certain requirements on the hardware, the implementation example set forth below is on the Ubuntu14.04 platform, the graphics card is NVIDIA TiTan X, 12GB video memory, for The convolutional neural network can be trained normally, so it is recommended that the video memory of the graphics card be at least 6GB. In order to make the features and advantages of the method proposed by the present invention more comprehensible, the following will be described in detail in conjunction with the accompanying drawings and specific implementation examples.
[0045] The adaptive iterative convolutional neural network model compression method of the present invention is as follows: figure 1 As shown, it mainly includes the following steps:
[0046] Step 1: Perform data preprocessing on the training data;
[0047...
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