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基于介电特性的灵武长枣新鲜度预测

Prediction on freshness degree of Lingwu long jujube on dielectric properties

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【作者】 沈静波张海红马雪莲王慧倩李子文周世平

【Author】 SHEN Jing-bo;ZHANG Hai-hong;MA Xue-lian;WANG Hui-qian;LI Zi-wen;ZHOU Shi-ping;College of Agriculture,Ningxia University;

【机构】 宁夏大学农学院

【摘要】 为了研究灵武长枣新鲜度与介电特性参数的关系,利用LCR测试仪在1.995kHz下测试长枣的介电特性参数,并对其介电特性参数和品质参数进行相关性分析。结果表明:长枣的介电损耗因子ε″与可溶性固形物含量、硬度、失重率、可滴定酸含量和丙二醛含量呈极显著相关(P<0.01),相对相对介电常数ε′仅与呼吸强度显著相关(P<0.01)。根据可溶性固形物含量、硬度和失重率的变化规律,将长枣分为3个新鲜度等级。以介电损耗因子ε″为BP神经网络的输入特征参数,利用BP神经网络结构建立长枣的新鲜度预测模型,新鲜度等级平均识别率达到81.67%,可用来预测灵武长枣的新鲜度。

【Abstract】 In order to study the relationship between freshness degree and dielectric properties of Lingwulong jujube,the dielectric properties parameters of long jujube were measured using(LCR)on1.995 kHz,and the correlation analysis between dielectric properties parameters and quality parameters was conducted.The results indicated that correlations between long jujube’s dielectric loss factorε″and soluble solids content,hardness,weight loss,titratable acids content & MDA content were very significant(P<0.01),and the correlation between relative dielectric constantε′and respiration intensity was very significant(P<0.01).The long jujube were divided into three freshness grades according to the change rules of soluble solids content,hardness and weight loss rate.Using dielectric loss factorε″as the input characteristic parameters,the prediction model of long jujube freshness was established by BP neural network structure. The average distinguishing rate of freshness grades was81.67%.The results indicated that the freshness degree of long jujube could be predicted by dielectric properties parameters.

【基金】 国家自然科学基金资助项目(编号:31160346)
  • 【文献出处】 食品与机械 ,Food & Machinery , 编辑部邮箱 ,2016年01期
  • 【分类号】TS255.7
  • 【被引频次】21
  • 【下载频次】199
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