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A Randomized Combined Channel Approach for the Quantification of Color- and Intensity-Based Assays with Smartphones

机译:随机组合信道方法,用于智能手机量化基于颜色和强度的测定

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摘要

Quantification of colorimetric assays with smartphones is being increasingly reported. However, a complete characterization of the performance of existing color spaces and single-color channels for optimum color/intensity change quantification is absent. Moreover, it has not been ascertained if it is necessary to utilize existing color spaces to reach optimal assay quantification. In this study, a randomized channel approach was adapted utilizing all single channels from RGB, HSV, and CieLab color space and all nonrepeating random combinations of two and three channels of these color spaces. Assays based on color or intensity change using pH strips and gold or carbon black nanoparticle-containing paper strips were optimized using this approach. Several novel channel combinations showed great promise, in terms of prediction error and interphone variation reduction, outperforming RGB, HSV, and CieLab color spaces. These novel combinations were used in a custom-developed smartphone application that performed automated background subtraction and polynomial regression for the quantification of a lateral flow assay for the detection of goat milk adulteration with cow milk and for pH prediction in soil. For the lateral flow assay the channel combination BSA was found optimum (mean average error = 36% +/- 6%; R-2 = 0.97). For the soil pH assay the channel combination RLC was found optimum (mean average error = 1.31% +/- 0.02%; R-2 = 0.997). The study has shown that nonclassical channel combinations for colorimetric quantification of specific assays are very promising and should be considered for smartphone-based analysis.
机译:越来越多地报道了用智能手机进行比色测定的定量。然而,不存在现有颜色空间和单色通道的性能的完整表征,以实现最佳颜色/强度变化量化。此外,如果有必要利用现有的颜色空间来达到最佳测定量化,则尚未确定。在该研究中,使用来自RGB,HSV和Cielab颜色空间的所有单个通道的随机信道方法以及所有这些颜色空间的两个和三个通道的所有非释放随机组合。使用该方法优化基于使用pH条和含金或含金或炭黑纳米粒子纸条的颜色或强度变化的测定。在预测误差和对讲机变化减少,优于RGB,HSV和CIELAB颜色空间方面,几个新颖的频道组合显示出很大的希望。这些新颖的组合用于定制开发的智能手机应用,该应用程序进行自动化背景减法和多项式回归,以定量横向流动测定用于检测牛奶和土壤中pH预测的山羊牛奶掺杂。对于横向流动测定,发现通道组合BSA最佳(平均平均误差= 36%+/- 6%; R-2 = 0.97)。对于土壤pH测定,发现通道组合RLC最佳(平均误差= 1.31%+/- 0.02%; R-2 = 0.997)。该研究表明,特定测定的比色量化的非化学通道组合非常有前途,并且应该考虑基于智能手机的分析。

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  • 来源
    《Analytical chemistry》 |2020年第11期|共9页
  • 作者单位

    Queens Univ Belfast Sch Biol Sci Inst Global Food Secur Belfast BT9 5DL Antrim North Ireland;

    Queens Univ Belfast Sch Biol Sci Inst Global Food Secur Belfast BT9 5DL Antrim North Ireland;

    Univ Parma Dept Food &

    Drug Parma Italy;

    Queens Univ Belfast Sch Elect Elect Engn &

    Comp Sci Belfast BT9 5AH Antrim North Ireland;

    Queens Univ Belfast Sch Biol Sci Inst Global Food Secur Belfast BT9 5DL Antrim North Ireland;

    Queens Univ Belfast Sch Biol Sci Inst Global Food Secur Belfast BT9 5DL Antrim North Ireland;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 分析化学;
  • 关键词

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