Dissolved Oxygen Prediction Model Which Based on Fuzzy Neural Network
Abstract
In crab ponds, dissolved oxygen is the foundation for pond
cultivation’s survival. The changes of dissolved oxygen content
are influenced by multiple factors. Higher levels of dissolved oxygen
content are crucial to maintaining healthy growth of crab breeding.
Affected by physic-chemical process of aquatic water, the changes of
dissolved oxygen content have a large lag. In order to solve the problem
of dissolved oxygen forecast, the prediction model which based on fuzzy
neural network has been proposed in this paper. It integrated the
characteristic of learning fuzzy logic and neural networks optimized
performance to realize the dissolved oxygen prediction. The prediction
results have shown it more suitable for dissolved oxygen prediction than
grey neural network method. The prediction accuracy can meet the need of
dissolved control.
Domains
Computer Science [cs]Origin | Files produced by the author(s) |
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