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Path Recognition of the Regional Education Expansion Based on Improved Dragonfly Algorithm
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To solve the problems of low recognition rate, high misrecognition rate, and long recognition time, the path recognition method of the regional education scale expansion based on the improved dragonfly algorithm is proposed. Through a variety of different behaviors utilized in the optimization process, the dragonfly algorithm model has been constructed. The step size and the position vector are introduced to update the dragonfly’s location. The dragonfly’s foraging behaviors are accurately simulated. Afterward, the dragonfly algorithm is combined with the flower authorization algorithm. The conversion probability is added, and the dragonfly’s global development ability is adjusted in real-time. Then, the dragonfly algorithm is improved. The improved dragonfly algorithm is employed to extract the features of the expansion path of the regional education scale. The improved support vector machine is utilized as a classifier to realize the recognition of the regional education scale expansion path. The experimental results denote that the proposed method has a high recognition rate of the regional education scale expansion path and can effectively reduce the misrecognition rate and shorten the recognition time.
Title: Path Recognition of the Regional Education Expansion Based on Improved Dragonfly Algorithm
Description:
To solve the problems of low recognition rate, high misrecognition rate, and long recognition time, the path recognition method of the regional education scale expansion based on the improved dragonfly algorithm is proposed.
Through a variety of different behaviors utilized in the optimization process, the dragonfly algorithm model has been constructed.
The step size and the position vector are introduced to update the dragonfly’s location.
The dragonfly’s foraging behaviors are accurately simulated.
Afterward, the dragonfly algorithm is combined with the flower authorization algorithm.
The conversion probability is added, and the dragonfly’s global development ability is adjusted in real-time.
Then, the dragonfly algorithm is improved.
The improved dragonfly algorithm is employed to extract the features of the expansion path of the regional education scale.
The improved support vector machine is utilized as a classifier to realize the recognition of the regional education scale expansion path.
The experimental results denote that the proposed method has a high recognition rate of the regional education scale expansion path and can effectively reduce the misrecognition rate and shorten the recognition time.
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