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Transmission line engineering cost prediction based on principal component analysis and least square support vector machine

机译:基于主成分分析和最小二乘支持向量机的输电线路工程造价预测

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Due to the many factors affecting the cost of transmission line engineering and the lack of mutual independence, it is difficult to predict the cost. Firstly, the principal component analysis is used to process the original indicator data, eliminating the correlation between the original indicators and extracting the potential comprehensive independent indicators. Then, the new indicator is used as the input set to construct the predictive learning model based on the least squares support vector machine, and the predicted output and the actual value are compared and analyzed. The results show that the model can achieve the desired prediction effect in the case of small samples.
机译:由于影响传输线工程成本的因素很多,而且缺乏相互独立性,因此很难预测成本。首先,使用主成分分析法处理原始指标数据,消除原始指标之间的相关性,提取潜在的综合独立指标。然后,将新指标用作输入集,以基于最小二乘支持向量机构建预测学习模型,并对预测输出和实际值进行比较和分析。结果表明,该模型在小样本情况下可以达到预期的预测效果。

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