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基于鄰域粗糙集和高光譜散射圖像的蘋果粉質(zhì)化檢測
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國家自然科學基金資助項目(60805014)和中央高?;究蒲袠I(yè)務費專項資金資助項目(JUSRP20913、JUSRP21132)


Apple Mealiness Detection Based on Neighborhood Rough Set and Hyperspectral Scattering Image
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    研究了基于鄰域粗糙集理論的高光譜散射圖像蘋果粉質(zhì)化無損檢測方法。以576幅波長范圍為600~1000nm的蘋果高光譜數(shù)據(jù)為研究對象,利用鄰域粗糙集模型對81個原始波段進行選擇,從中選擇出最優(yōu)波長子集;利用支持向量機建立分類模型,隨機選擇526個樣本作為訓練集,其余50個樣本作為測試集,重復仿真10次驗證分類能力。仿真結果表明鄰域粗糙集能夠得到充分表述粉質(zhì)化程度的14個最優(yōu)波長,測試模型的平均精度為75%,高于全波長模型的71%和采用主成分分析法的74%。

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    Nondestructive detection of apple mealiness was investigated by using neighborhood rough set theory and hyperspectral scattering image technology. Spectral scattering profiles between 600nm and 1000nm were acquired by hyperspectral scattering image system for 576 apple samples. The optimal wavelength sets were chosen from 81 raw characteristic attributes by neighborhood rough set. 526 samples were selected randomly for calibration set and 50 samples were selected for validation set to develop classification model using optimal wavelengths coupled with support vector machine (SVM). Simulation was repeated 10 times to investigate the ability of classification model. Results showed that neighborhood rough set could select 14 optimal wavelengths effectively. The validation model using 14 optimal wavelengths yielded better result (classification accuracy 75%) than the full spectrum model (classification accuracy 71%) and the principle component analysis algorithm (classification accuracy 74%).

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朱啟兵,黃敏,趙桂林.基于鄰域粗糙集和高光譜散射圖像的蘋果粉質(zhì)化檢測[J].農(nóng)業(yè)機械學報,2011,42(10):154-157,161. Zhu Qibing, Huang Min, Zhao Guilin. Apple Mealiness Detection Based on Neighborhood Rough Set and Hyperspectral Scattering Image[J]. Transactions of the Chinese Society for Agricultural Machinery,2011,42(10):154-157,161.

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