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Research and Application Based on Adaptive Boosting Strategy and Modified CGFPA Algorithm: A Case Study for Wind Speed Forecasting

机译:基于自适应提升策略和改进的CGFPA算法的研究与应用-以风速预报为例

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Wind energy is increasingly considered one of the most promising sustainable energy sources for its characteristics of cleanliness without any pollution. Wind speed forecasting is a vital problem in wind power industry. However, individual forecasting models ignore the significance of data preprocessing and model parameter optimization, which may lead to poor forecasting performance. In this paper, a novel hybrid [k, B t ] -ABBP (back propagation based on adaptive strategy with parameters k and B t ) model was developed based on an adaptive boosting (AB) strategy that integrates several BP (back propagation) neural networks for wind speed forecasting. The fast ensemble empirical mode decomposition technique is initially conducted in the preprocessing stage to reconstruct data, while a novel modified FPA (flower pollination algorithm) incorporating a conjugate gradient (CG) is proposed for searching for the optimal parameters of the [k, B t ] -ABBP mode. The case studies of five wind power stations in Penglai, China are used as illustrative examples for evaluating the effectiveness and efficiency of the developed hybrid forecast strategy. Numerical results show that the developed hybrid model is simple and can satisfactorily approximate the actual wind speed series. Therefore, the developed hybrid model can be an effective tool in mining and analysis for wind power plants.
机译:风能以其清洁,无污染的特性越来越被认为是最有希望的可持续能源之一。风速预测是风力发电行业的重要问题。但是,单个预测模型忽略了数据预处理和模型参数优化的重要性,这可能会导致预测性能下降。在本文中,基于整合了多个BP(反向传播)神经网络的自适应提升(AB)策略,开发了一种新型的混合[k,B t] -ABBP(基于带有参数k和B t的自适应策略的反向传播)模型风速预测网络。最初在预处理阶段进行快速整体经验模式分解技术以重建数据,同时提出了一种新的结合共轭梯度(CG)的改进的FPA(花粉传粉算法)来搜索[k,B t ] -ABBP模式。以中国蓬莱市五个风力发电站的案例研究为例,评估了已开发的混合预测策略的有效性和效率。数值结果表明,所建立的混合模型简单,可以令人满意地逼近实际风速序列。因此,开发的混合模型可以成为风电厂采矿和分析的有效工具。

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