Extension neural network pattern recognition method based on priori knowledge
A neural network and prior knowledge technology, applied in the field of neural network pattern recognition, can solve the problems of extension neural network performance degradation, difficulty in obtaining high-quality sample data, and inability to understand all structures
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[0041] The invention discloses an extension neural network pattern recognition method based on prior knowledge, such as Figure 4 shown, including the following steps:
[0042](1) Prepare the training sample set and the knowledge base. The training sample set is the observation data that has been obtained. It is assumed that the training sample set is where N p is the total number of samples in the sample set, and the i-th sample is expressed as Among them, n is the total number of features contained in the sample feature vector, and the i-th sample category label is p; the knowledge base is to store the prior knowledge information about specific objects; for the knowledge embodied in the extension neural network weights characteristics, select the classic domain extremum of each eigenvalue of the object eigenvector, namely L kj Indicates the quantitative range of the kth mode with respect to the jth feature attribute;
[0043] In the actual processing process, we some...
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