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Characterization of colorimetric sensor arrays by a multi-spectral technique

机译:比色传感器阵列的多光谱表征

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摘要

A new method based on a multi-spectral technique was proposed to characterize the signal of colorimetric sensor arrays for gas detection. Firstly, the characteristic wavelengths, which are most relevant to the detected substance, were extracted from the hyperspectral information of the colorimetric sensor arrays. Then, narrowband filters with the corresponding central wavelengths were selected to isolate the effective signal of the sensor arrays. In this study, ammonia (NH3) was taken as an example to test the performance of the proposed multi-spectral method. Prediction of NH3 concentration based on the hyperspectral method and normal tri-color (R/G/B) method was also performed for comparison. Compared with the tri-color method, the correlation coefficient for the testing set (R-t) based on the multi-spectral method increased from 0.902 to 0.976, root mean squared error of prediction (RMSEP) decreased from 1.213 to 0.548, and residual predictive deviation for the testing set (RPDt) increased from 2.903 to 6.151, which means that the results were notably improved both in accuracy and stability. Furthermore, the multi-spectral method possesses the advantages of low cost, easy operation and greatly reduced data size. The proposed multi-spectral method could be used to characterize the signal of colorimetric sensor arrays for gas detection.
机译:提出了一种基于多光谱技术的气体检测比色传感器阵列信号表征的新方法。首先,从比色传感器阵列的高光谱信息中提取与检测到的物质最相关的特征波长。然后,选择具有相应中心波长的窄带滤光片以隔离传感器阵列的有效信号。在本研究中,以氨水(NH3)为例,测试了所提出的多光谱方法的性能。为了进行比较,还根据高光谱法和常规三色(R / G / B)法对NH3浓度进行了预测。与三色方法相比,基于多光谱方法的测试集的相关系数(Rt)从0.902增至0.976,预测的均方根误差(RMSEP)从1.213降低至0.548,并且残留预测偏差测试集(RPDt)的值从2.903增加到6.151,这意味着结果的准确性和稳定性均得到显着提高。此外,多光谱方法具有成本低廉,操作简便,数据量大大减小的优点。所提出的多光谱方法可用于表征用于气体检测的比色传感器阵列的信号。

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