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Integrated AHP-BPNN Model for Wind Farm Investment Evaluation

机译:用于风电场投资评估的集成AHP-BPNN模型

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The construction of wind farms grows quickly in China. It is necessary for stakeholders to estimate investment costs and to make good decisions about a wind power project by making a budget for the investment. This paper proposed an evaluation method by integrating the analytic hierarchy process (AHP) with back-propagation neural network (BPNN) to evaluate wind farm investment. In the AHP-BPNN model, the AHP method is used to determine the factors of wind farm investment. The factors with high importance are reserved while those with low importance are eliminated, which can decrease the number of inputs of the BPNN. The experiment results show that the integrated model is feasible and effective.
机译:风电场的建设在中国迅速发展。 利益相关者需要估计投资成本,并通过为投资预算提供有关风电项目的良好决定。 本文提出了通过将分析层次处理(AHP)与背传播神经网络(BPNN)集成来评估风电场投资来提出评估方法。 在AHP-BPNN模型中,AHP方法用于确定风电场投资的因素。 保留高度重要的因素,同时消除了低重要性的人,这可以减少BPNN的输入的数量。 实验结果表明,综合模型是可行和有效的。

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