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基于IGSA優(yōu)化的LSSVM制冷系統故障診斷研究
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Fault diagnosis of LSSVM refrigeration system based on IGSA optimization
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    摘要:

    為提高制冷系統故障診斷的準確率,提出一種基于改進(jìn)引力搜索算法(IGSA)優(yōu)化的最小二乘支持向量機(LSSVM)的制冷系統故障診斷方法。首先,引入粒子群算法的速度更新機制對引力搜索算法進(jìn)行改進(jìn),增加粒子的記憶性和信息共享能力,提高了算法的收斂速度和搜索精度;其次,利用IGSA對LSSVM的核參數與正則化參數進(jìn)行優(yōu)化,得到最優(yōu)的IGSA-LSSVM故障診斷模型。最后,利用故障模擬實(shí)驗臺模擬制冷系統的四種典型故障,將優(yōu)化好的LSSVM模型對其進(jìn)行分類(lèi)識別,并與標準LSSVM、GSA-LSSVM和PSO-LSSVM模型進(jìn)行比較。仿真結果表明,基于IGSA優(yōu)化的LSSVM方法具有良好的辨識能力和泛化能力,能夠更好地對制冷系統故障進(jìn)行診斷。

    Abstract:

    To improve the diagnosis accuracy of refrigeration system faults, an optimized Least Squares Support Vector Machine (LSSVM) based fault diagnosis method using the improved gravity search algorithm (IGSA) was proposed. Firstly, to increase the memory and information sharing ability of the particles, the gravitational search algorithm was further developed using the speed updating mechanism in particle swarm optimization algorithm, so that its calculation convergence and the search accuracy were improved. Through optimizing the kernel parameters and regularization parameters of LSSVM using IGSA, the proposed IGSA-LSSVM fault diagnosis model was then developed. Finally, using the experimental data obtained from a real refrigeration system, four typical faults of the refrigeration system were successfully identified by the optimized IGSA-LSSVM model. The fault diagnosis results, in comparison with that using the standard LSSVM, GSA-LSSVM and PSO-LSSVM models, showed that the proposed IGSA-LSSVM method was better as expressed in terms of its identification ability and generalization ability.

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謝偉,丁強,江愛(ài)朋,姜周曙.基于IGSA優(yōu)化的LSSVM制冷系統故障診斷研究計算機測量與控制[J].,2019,27(3):14-18.

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  • 收稿日期:2018-09-04
  • 最后修改日期:2018-09-14
  • 錄用日期:2018-09-17
  • 在線(xiàn)發(fā)布日期: 2019-03-15
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