Image identification method based on Spiking neural network
A neural network and image recognition technology, applied in character and pattern recognition, instruments, computer parts, etc., can solve the problems of inaccurate image recognition, low network recognition accuracy, low image recognition efficiency, etc., and achieve simple and clear model structure, The effect of reducing complexity and improving efficiency
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[0052] (1) For example Figure 5 The three sample images shown are processed separately, the images are uniformly sized, and converted into grayscale images;
[0053] (2) Set the relevant parameters of the entire calculation model as shown in Table 1
[0054] Table 1 Parameter settings of the calculation model
[0055]
[0056] (3) Select a 16×16 receptive field to perform feature extraction on a 256×256 image, and the Gaussian difference weight product is as follows image 3 The original image in (a) will be converted to image 3 Feature image shown in (b);
[0057] (4) Use 2×2 maximum pooling to sample the obtained feature image, and get as follows image 3 The sampled image shown in (c);
[0058] (5) Align and adjust the obtained feature intensity information using delayed phase encoding, such as Figure 4 shown. The image information is re-arranged into the subthreshold membrane voltage oscillation function, and the time series is adjusted and then compressed to ...
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