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花生种子含油量近红外测定模型建立.pdf 全文免费

来源:花匠小妙招 时间:2024-12-13 19:44

1414ls08-13 2014 年第 27 卷第 9 期 粮食与油脂 49 花生种子含油量近红外测定模型建立 金华丽,崔彬彬 (河南工业大学粮油食品学院, 河南郑州 450052 ) 摘 要:对69 份花生种子样品进行近红外光谱扫描,结合索氏抽提法测定的花生种子含油量的 化学值,通过多种预处理方法和回归方法建立了较精准的花生种子含油量的近红外测定模型。结 果显示:经过SNV+Detrend 光学处理和“2 ,4 ,4 ,1”数学处理的预处理以及改进偏最小二乘法 (MPLS )的回归处理所建模型的效果最好,其定标相关系数(RSQ )和定标标准误差(SEC )分别 为0.978 7 和0.218 7 ;交叉检验相关系数(1–VR )和交叉检验标准误差(SECV )分别为0.955 0 和 0.320 1。14 份验证样品的预测值和化学法测定值的相关系数(R2 )为0.935 4 ,说明所建模型可以 快速准确地预测花生种子的含油量。 关键词:花生;含油量;索氏抽提;近红外光谱技术 Establishment of testing model of seeds oil content in peanut by near infrared spectrum JIN Hua-li , CUI Bin-bin (College of Food Science and Technology , Henan University of Technology , Zhengzhou 450052 ,Henan ,China ) Abstract : Near–infrared spectroscopy of peanut seed was used to determine its oil content , which was compared with the oil content data of 69 samples of peanut seeds obtained by Soxhlet extraction method. Combined with the corresponding near infrared reflectance spectroscopy , the accurate model was well established with different pretreatment methods and regression analysis. The results demonstrated that the correlation coefficients of calibration (RSQ ) and the root mean square errors of calibration (SEC ) through SNV 、Detrend and 2 ,4 ,4 ,1 filter spectral pretreatment methods and MPLS regression analysis were 0.978 7 and 0.218 7 respectively. The correlation coefficients of cross–validation (1–VR ) and the root mean square errors of cross–validation (SECV ) were 0.955 0 and 0.320 1 respectively. The correlation coefficient (R2 ) between NIRS value and chemical value of 14 samples was 0.935 4 , which indica

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