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Comparison of different chemometric methods in quantifying total volatile basic-nitrogen (TVB-N) content in chicken meat using a fabricated colorimetric sensor array

机译:使用制造的比色传感器阵列对不同化学计量方法在鸡肉中量化总挥发性碱性氮(TVB-N)含量的比较

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摘要

Total Volatile Basic-Nitrogen (TVB-N) content is one of core measures in evaluating chicken freshness. This study reported the feasibility to quantify Total Volatile Basic-Nitrogen (TVB-N) content in chicken meat by a low cost colorimetric sensor array with the help of chemometric analysis. We fabricated a colorimetric sensor array by printing 12 chemically responsive dyes (i.e. 9 porphyrins/metalloporphyrins and 3 pH indicators) on a C2 reverse silica-gel flat plate for the fast and non-destructive quantitative determination of TVB-N content in chicken. A colour change profile for each sample was obtained by differentiating the image of the sensor array before and after exposure to volatile organic compounds (VOCs). Linear algorithm; partial least squares regression (PLSR) and nonlinear algorithms; back propagation artificial neural network (BPANN), Adaptive Boosting BPANN (BP-AdaBoost) and support vector machine regression (SVMR) methods based on particle swarm optimization (PSO) were used to build the TVB-N prediction model. Experimental results showed that the predictive precision of the PSO-SVMR model was superior to linear and classic non-linear models. The optimum PSO-SVMR model was obtained with 4 support vectors and R-p of 0.8981, RMSEP of 5.5255. The overall results are encouraging for the application of low cost colorimetric sensors combined with an appropriate chemometric method in the poultry industry for quality assessment because it is practical, non-invasive, rapid and simple.
机译:总挥发性碱性氮(TVB-N)含量是评估鸡新鲜度的核心措施之一。本研究报告说,在化学计量分析的帮助下,通过低成本比色传感器阵列将鸡肉中总挥发性碱性氮(TVB-N)含量量化的可行性。在C2反向硅胶平板上印刷12个化学响应染料(即9卟啉/金属卟啉和3 pH指示剂),制造了比色传感器阵列,用于快速和无损定量测定鸡肉中的TVB-N含量的快速和无损定量测定。通过在暴露于挥发性有机化合物(VOC)之前和之后,通过区分传感器阵列的图像来获得每个样品的颜色变化轮廓。线性算法;偏最小二乘回归(PLSR)和非线性算法;回到传播人工神经网络(BPANN),基于粒子群优化(PSO)的自适应升压BPANN(BP-Adaboost)和支持向量机回归(SVMR)方法来构建TVB-N预测模型。实验结果表明,PSO-SVMR模型的预测精度优于线性和经典的非线性模型。获得最佳PSO-SVMR模型,其中4个支持载体和0.8981的R-P,RMSEP为5.5255。整体结果令人鼓舞的低成本比色传感器与家禽行业的适当化学计量方法相结合,以获得质量评估,因为它是实用的,无侵入性,快速简单。

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  • 来源
    《RSC Advances》 |2016年第6期|共10页
  • 作者单位

    Jiangsu Univ Sch Food &

    Biol Engn Zhenjiang 212013 Peoples R China;

    Jiangsu Univ Sch Food &

    Biol Engn Zhenjiang 212013 Peoples R China;

    Jiangsu Univ Sch Food &

    Biol Engn Zhenjiang 212013 Peoples R China;

    Jiangsu Univ Sch Food &

    Biol Engn Zhenjiang 212013 Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学;
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