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Improved PSO based clustering fusion algorithm for multimedia image data projection

delete2019-07-23
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F
Feng Pan *
D
Deqiang Chen
L
Lu Lu
DOI:10.1007/s11042-019-08015-zdelete
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摘要

摘要

En 中文
Aiming at the problem that the existing multimedia image clustering fusion algorithm has poor effect on the projection processing of multimedia image data, and the result of the fusion is dispersive, a multimedia image data projection clustering fusion optimization algorithm based on improved particle swarm optimization is proposed. Firstly, using the gradient descent training of error back propagation, the cluster members of the multimedia image data projection are selected to provide an accurate data basis for subsequent cluster fusion. Secondly, each multimedia image data projection base clustering algorithm is selected into the optimized base. Probability of subsets of classes; finally, the improved inertia weight linear decrement PSO algorithm is used for global optimization, and the optimization of multimedia image data projection clustering algorithm is realized. Through experimental verification and analysis, the results show that the algorithm proposed in this paper has high accuracy of projection and clustering of multimedia image data on Data-Set virtual dataset or Iris actual dataset, and the average accuracy is above 90%.
Keyword:
Multimedia image data projection
Clustering fusion
Inertia weight linear decreasing PSO algorithm
Optimized base clustering subset
Global optimization
Error back propagation
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期刊

Multimedia Tools and Applications 封面图
Multimedia Tools and Applications
IF:
3
论文数:
2.0W
被引数:
3.2W

机构

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Guizhou Minzu University
学者数:
1.3K
论文数: 898
被引数: 1.5K
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south china university of technology
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6.8W
论文数: 5.1W
被引数: 85
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