A Pattern Recognition Method Based on Deep Convolutional Neural Network
A neural network and pattern recognition technology, which is applied in character and pattern recognition, instruments, computing, etc., can solve problems such as complex images, achieve high robustness, avoid gradient disappearance problems, model volume explosion, and avoid overfitting risk effect
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[0032] The present invention will be described in further detail below in conjunction with specific embodiments and with reference to the accompanying drawings.
[0033] The hardware equipment used in the present invention has 1 PC machine with Ubuntu operating system, two GTX1080 (8G), and the auxiliary tool used is the deep learning training framework Pytorch.
[0034] The pattern recognition method based on deep convolutional neural network provided by the present invention mainly comprises the following steps:
[0035] Step 1. Build a 169-layer DenseNet model. The backbone structure of the model is composed of 4 densely connected dense blocks and 4 transition layers alternately spliced. There will be several convolution kernels between layers. The basic structure of the DenseNet network is as follows figure 1 . In each dense block, before the start of each convolution operation, all previous results must be spliced in the channel direction to achieve densely connected ...
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