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基于改進(jìn)禿鷹搜索算法優(yōu)化門(mén)控循環(huán)單元的短期建筑冷負荷預測模型
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西安建筑科技大學(xué)建筑設備科學(xué)與工程學(xué)院

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國家重點(diǎn)研發(fā)計劃資助(2022YFC3802700)


Short-term building cooling load prediction model based on improved bald eagle search algorithm for optimizing gated recurrent unit
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    摘要:

    準確地預測建筑冷負荷對空調系統節能優(yōu)化控制具有重要作用,因此提出一種改進(jìn)禿鷹搜索算法(BES)優(yōu)化門(mén)控循環(huán)單元(GRU)的短期冷負荷預測模型;首先采用完全噪聲輔助聚合經(jīng)驗模態(tài)分解(CEEMDAN)算法,將建筑冷負荷數據分解為不同頻率的分量,采用隨機森林結合遞歸特征消除法為不同頻率的分量選取對應的特征;最后采用改進(jìn)BES算法對GRU模型進(jìn)行參數尋優(yōu),針對BES算法不足進(jìn)行改進(jìn),引入Sobol序列初始化種群、采用非線(xiàn)性控制因子平衡BES算法搜索能力和自適應t分布策略提升算法尋優(yōu)能力;實(shí)驗結果表明,與GRU和改進(jìn)BES算法優(yōu)化后的GRU相比,提出的預測模型均方根誤差下降34.27,22.41、平均百分比誤差下降2.72%,2.63%、平均絕對誤差下降27.25,25.26;相較于其他預測模型,提出的預測模型具有更高的預測準確度,在實(shí)際工程應用中更具優(yōu)勢。

    Abstract:

    Accurately predicting the cooling load of buildings is crucial for energy-efficient control of air conditioning systems, therefore, an improved bald eagle search (BES) algorithm is proposed to optimize the short-term cooling load prediction model of gated recirculation units (GRU); firstly, the complete ensemble empirical mode decomposition with adaptive noise (CEEMDAN) algorithm is used to decompose the building cooling load data into components with different frequencies, and a random forest combined with the recursive feature elimination method is used to select the corresponding features for the components with different frequencies; the improved BES algorithm is used to optimize the GRU model. Finally, the improved BES algorithm is used to optimize the parameters of the GRU model, and the BES algorithm is improved to address the shortcomings of the BES algorithm, by introducing the Sobol sequence to initialize the population, adopting the nonlinear control factor to balance the search capability of the BES algorithm, and the adaptive t-distribution strategy to enhance the algorithm's ability to find the optimal; the experimental results show that compared to the GRU and the optimized GRU, the optimized GRU is more efficient and effective than the optimized GRU. The experimental results show that compared with GRU and GRU with improved BES algorithm, the root mean square error of the proposed prediction model decreases by 34.27, 22.41, the average percentage error decreases by 2.72%, 2.63%, and the average absolute error decreases by 27.25, 25.26; compared with other prediction models, the proposed prediction model has a higher prediction accuracy, which is more advantageous in practical engineering applications.

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于軍琪,代俊偉,權煒,劉海燕.基于改進(jìn)禿鷹搜索算法優(yōu)化門(mén)控循環(huán)單元的短期建筑冷負荷預測模型計算機測量與控制[J].,2024,32(12):191-200.

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  • 收稿日期:2023-10-25
  • 最后修改日期:2023-12-05
  • 錄用日期:2023-12-07
  • 在線(xiàn)發(fā)布日期: 2024-12-24
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