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Multi-objective supervised clustering GA and microthermal climate forecast

机译:多目标监督聚类遗传算法与微热气候预报

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A new multi-objective supervised clustering genetic algorithm is proposed in this paper. Training samples are supervised clustered by attribute similarity and class label. The number and center of class family can be determined automatically by using the fitness vector function. The two key elements have optimization nature and can be unaffected by subjective factors. Use the nearest neighbor rule and the class label to estimate the class families of test samples. The early warning model is implemented by C#, using the data of summery abnormal microthermal climate in Zhejiang province. The experiment results indicate that this algorithm has a unique intelligence and high accuracy.
机译:提出了一种新的多目标监督聚类遗传算法。通过属性相似性和类别标签对训练样本进行监督。可以使用适应度矢量功能自动确定班级家庭的数量和中心。这两个关键元素具有优化性质,并且不受主观因素的影响。使用最近邻居规则和类别标签来估计测试样本的类别族。 C#利用浙江省夏季异常微热气候数据,实现了预警模型。实验结果表明,该算法具有独特的智能性和较高的准确性。

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