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Software Design of Sand-Dust Strom Warning System based on Grey Correlation Analysis and Particle Swarm Optimization Support Vector Machine

机译:基于灰色关联分析的沙尘暴警告系统软件设计及粒子群优化支持向量机

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This paper proposes the design concept of sand-dust storm warning system based on data collection techniques, grey relation analysis and support vector machine classification forecasting model. We have successfully designed sand-dust storm warning system by the three sub-modules that they are the analysis, classification and forecasting system, and the article details grey relation analysis, support vector machine classification and forecasting module. According to the characteristics of sand-dust storm and the advantages of support vector machine (SVM) in solving learning problems with fewer samples, sand-dust storm classification and forecasting model based on PSO-SVM is proposed. We use the grey relation analysis to find the several major factors of sandstorm happening. The input of model is the major factors of sandstorm happening, and the output results are sand-dust storm grade and forecasting results for aim to achieve sand-dust storm early warning.
机译:本文提出了基于数据收集技术,灰色关系分析和支持向量机分类预测模型的沙尘暴警告系统设计理念。我们已经成功设计了三个子模块的沙尘暴警告系统,它们是分析,分类和预测系统,以及文章详细信息灰色关系分析,支持向量机分类和预测模块。根据沙尘暴的特点及支持向量机(SVM)解决学习问题,提出了基于PSO-SVM的砂尘风暴分类和预测模型。我们使用灰色关系分析来找到发生沙尘暴的几个主要因素。模型的输入是发生沙尘暴的主要因素,输出结果是沙尘暴级和预测结果,以实现沙尘暴预警。

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