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基于各向異性核擴(kuò)散法的楊樹(shù)葉特征降維
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國(guó)家高技術(shù)研究發(fā)展計(jì)劃(863計(jì)劃)資助項(xiàng)目(2012AA102002-4)、國(guó)家自然科學(xué)基金資助項(xiàng)目(31300471)和江蘇高校優(yōu)勢(shì)學(xué)科建設(shè)工程資助項(xiàng)目


Dimensionality Reduction for Poplar Leaves Features Based on Anisotropic Kernel Diffusion Map
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    摘要:

    對(duì)缺水與正常楊樹(shù)苗葉片進(jìn)行特征分析與降維處理。首先對(duì)樣本進(jìn)行光照補(bǔ)償并去除奇異性;然后對(duì)樣本數(shù)據(jù)空間進(jìn)行歸一化處理,提出采用基于各向異性核擴(kuò)散法對(duì)缺水與正常樣本數(shù)據(jù)空間進(jìn)行降維,核參數(shù)采用最大類間距離法自適應(yīng)調(diào)整;最后根據(jù)最大信噪比原則選擇降維子空間維數(shù),獲得識(shí)別特征。分別對(duì)各向異性核擴(kuò)散法、LE、LTSA以及PCA進(jìn)行分析比較,對(duì)于葉脈較粗的楊樹(shù)葉片,采用各向異性核擴(kuò)散法效果較好,能保持空間的幾何關(guān)系。采用SVM分類法對(duì)不同算法提取的特征進(jìn)行分類,結(jié)果表明本文提出的算法提取的楊樹(shù)葉特征分類效果較好。

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    Dimensionality reduction approach was proposed based on anisotropic kernel diffusion map to extract the features of poplar leaves, in which the kernel parameters were adjusted adaptively. In order to improve the accuracy and efficiency, singularity points were removed and features normalization method was employed to obtain the robust features. The maximum margin criterion method was utilized to obtain anisotropic kernel parameter by gradient descent method. The results show that the anisotropic kernel diffusion map has good performance on efficiency for poplar leaves compared with LE, LTSA and PCA. The comparisons of classification experiments have been conducted, by using SVM (support vector machine) classifier to recognize the water shortage of poplar leaves, and the results validate the accuracy and stability of the proposed method.

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胡春華,李萍萍.基于各向異性核擴(kuò)散法的楊樹(shù)葉特征降維[J].農(nóng)業(yè)機(jī)械學(xué)報(bào),2013,44(11):281-286. Hu Chunhua, Li Pingping. Dimensionality Reduction for Poplar Leaves Features Based on Anisotropic Kernel Diffusion Map[J]. Transactions of the Chinese Society for Agricultural Machinery,2013,44(11):281-286.

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  • 在線發(fā)布日期: 2013-11-07
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