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        利用馬爾科夫鏈修正的變維分形模型及其應(yīng)用

        2017-01-06 13:41:17葉偉馬福恒周海嘯
        南水北調(diào)與水利科技 2016年6期

        葉偉++馬福恒++周海嘯

        摘要:以往的預(yù)測模型對數(shù)據(jù)長度有較強的依賴性,且數(shù)據(jù)出現(xiàn)較強的非線性時,將增加預(yù)測的復(fù)雜程度。為使監(jiān)測數(shù)據(jù)呈現(xiàn)出一定的線性關(guān)系,基于分形理論,將常維分形改進(jìn)為變維分形,并據(jù)此建立相應(yīng)的數(shù)學(xué)模型,通過短期監(jiān)測數(shù)據(jù)進(jìn)行預(yù)測??紤]到變維分形得到的預(yù)測結(jié)果不可避免地存在一定的波動誤差,對此,利用馬爾科夫鏈(Markov)無后效性的特點對預(yù)測結(jié)果進(jìn)行修正,從而提高預(yù)測精度。以西溪水庫的監(jiān)測資料數(shù)據(jù)為樣本,建立其馬爾科夫鏈變維分形預(yù)測模型,結(jié)果顯示最大誤差修正值可達(dá)089%,占原預(yù)測誤差的679%,表明利用馬爾科夫鏈修正的變維分形模型能有效地減小誤差,提高預(yù)測精度。

        關(guān)鍵詞:大壩安全監(jiān)測;變維分形;馬爾科夫鏈;誤差修正

        中圖分類號:TV698.1文獻(xiàn)標(biāo)志碼:A文章編號:

        16721683(2016)06011105

        Application of modified variable dimension fractal method by Markov chain in dam safety monitoring

        YE Wei,MA Fuheng,ZHOU Haixiao

        (Dam Safety Management Department,Nanjing Hydraulic Research Institute,Nanjing 210029,China)

        Abstract:Previous forecast models have strong dependence on the length of the data,and the data often appears strong nonlinear.Both of these will increase the complexity of the prediction.So in order to make the monitoring data to show a certain linear relationship,this paper changed constant dimension fractal method to variable dimension fractal method to predict shortterm monitoring data based on fractal theory shortterm monitoring data.The corresponding mathematical model was set up.However,inevitably,there were some fluctuation errors in the results predicted by the variable dimension fractal method.This paper used the Markov chain to modify these predicted results based on the characteristic of no aftereffect.The results analyzed by Xixi reservoir monitoring data showed that the revised error could be optimized by 0.89%.Obviously,it could be concluded that the variable dimension fractal method modified by Markov chain could effectively reduce error and improve the precision of prediction.

        Key words:dam safety monitoring;variable dimension fractal;Markov chain;error correction

        基于實測時間序列的安全監(jiān)測模型對大壩的安全運行有著重要的意義,現(xiàn)階段已有多種安全預(yù)測模型。劉健等[1]采用遺傳神經(jīng)網(wǎng)絡(luò)對大壩變形進(jìn)行預(yù)測;宋志宇等[2]采用混沌優(yōu)化支持向量機對大壩安全進(jìn)行監(jiān)控預(yù)測;謝榮安等[3]采用灰色理論,建立灰色模型對大壩變形進(jìn)行預(yù)測。但以上的預(yù)測模型均需要較長的時間序列數(shù)據(jù)。

        根據(jù)分形理論進(jìn)行預(yù)測則可以避免對數(shù)據(jù)長度的依賴性。常維分形適用于具有線性特征的數(shù)據(jù)序列,但一方面大壩監(jiān)測數(shù)據(jù)常表現(xiàn)出較強的非線性,另一方面隨著時間的推移,數(shù)據(jù)還出現(xiàn)一定的波動性,因此有必要將常維分形改進(jìn)為變維分形,考慮到馬爾科夫鏈能很好地適應(yīng)數(shù)據(jù)波動的特點,同時引入馬爾科夫鏈用以修正分形模型的預(yù)測結(jié)果。為此,本文建立利用馬爾科夫鏈修正的變維分形大壩安全監(jiān)測模型,以達(dá)到提高預(yù)測精度的目的。

        5結(jié)論

        本文通過馬爾科夫鏈修正的分形模型的預(yù)測值能較準(zhǔn)確地進(jìn)行大壩安全監(jiān)測值預(yù)測。變維分形模型不需要冗長的時間序列數(shù)據(jù),采用短期數(shù)據(jù)即可實現(xiàn)預(yù)測,并且憑借馬爾科夫鏈的無后效性的特點可使大壩安全監(jiān)測值預(yù)測受外界因素影響變小,預(yù)測精度較高,兩種方法的結(jié)合使得預(yù)測過程簡便可靠,具有實際使用價值。

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