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A partial least squares and wavelet-transform hybrid model to analyze carbon content in coal using laser-induced breakdown spectroscopy

机译:偏最小二乘与小波变换的混合模型,利用激光诱导击穿光谱法分析煤中的碳含量

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摘要

A partial least squares (PLS) and wavelet transform hybrid model are proposed to analyze the carbon content of coal by using laser-induced breakdown spectroscopy (LIBS). The hybrid model is composed of two steps of wavelet analysis procedures, which include environmental denoising and background noise reduction, to pretreat the LIBS spectrum. The processed wavelet coefficients, which contain the discrete line information of the spectra, were taken as inputs for the PLS model for calibration and prediction of carbon element. A higher signal-to-noise ratio of carbon line was obtained after environmental denoising, and the best decomposition level was determined after background noise reduction. The hybrid model resulted in a significant improvement over the conventional PLS method under different ambient environments, which include air, argon, and helium. The average relative error of carbon decreased from 2.74 to 1.67% under an ambient helium environment, which indicated a significantly improved accuracy in the measurement of carbon in coal. The best results obtained under an ambient helium environment could be partly attributed to the smallest interference by noise after wavelet denoising. A similar improvement was observed in ambient air and argon environments, thereby proving the applicability of the hybrid model under different experimental conditions.
机译:提出了偏最小二乘(PLS)和小波变换混合模型,通过激光诱导击穿光谱法(LIBS)分析煤的碳含量。混合模型由两步小波分析程序组成,包括环境降噪和背景噪声降低,以预处理LIBS光谱。处理后的小波系数(包含光谱的离散线信息)被用作PLS模型的输入,用于碳元素的校准和预测。经过环境降噪后,碳线的信噪比更高,并且在降低背景噪声后确定了最佳分解水平。混合模型在不同的周围环境(包括空气,氩气和氦气)下对传统的PLS方法进行了重大改进。在环境氦气环境下,碳的平均相对误差从2.74降低到1.67%,这表明煤中碳的测量精度大大提高。在环境氦气环境下获得的最佳结果可能部分归因于小波去噪后噪声的最小干扰。在环境空气和氩气环境中观察到类似的改善,从而证明了混合模型在不同实验条件下的适用性。

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