Disease factor extraction method based on improved PSO-BP neural network and Bayesian method
A PSO-BP, BP neural network technology, applied in the design of big data technology and medical fields, can solve the problems of network non-convergence, heavy learning burden, and low training efficiency, so as to improve the convergence accuracy and generalization ability, and solve the impact size Effects of inaccuracy, efficiency, and high data utilization
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[0090] The present invention is based on the disease factor extraction method of improved PSO-BP neural network and Bayesian method, comprises the following contents:
[0091] 1. By introducing an adaptive weight strategy, optimize the particle swarm optimization algorithm (PSO), specifically:
[0092] The position formula of particle swarm algorithm:
[0093] x id (t+1)=X id (t)+V id (t+1)
[0094] Introduce the adaptive inertia weight w(t) in the speed formula:
[0095] V id (t+1)=w(t)V id (t)+c 1 r 1 ·(P best -X id (t))+c 2 r 2 ·(G best -X id (t))
[0096] Among them, the adaptive inertia weight w(t) is:
[0097]
[0098] In the formula, V id and x id are the velocity and position of the i-th particle, respectively; P best is the best position experienced by the i-th particle in the iteration, i.e. the optimal solution, G best is the optimal position in the particle swarm; c 1 、c 2Both are acceleration factors, usually c 1 = c 2 = 1.5; r 1 、r 2 ...
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