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Background correction in near-infrared spectra of plant extracts by orthogonal signal correction

机译:通过正交信号校正在植物提取物近红外光谱中的背景校正

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摘要

In near-infrared (NIR) analysis of plant extracts, excessive background often exists in near-infrared spectra. The detection of active constituents is difficult because of excessive background, and correction of this problem remains difficult. In this work, the orthogonal signal correction (OSC) method was used to correct excessive background. The method was also compared with several classical background correction methods, such as offset correction, multiplicative scatter correction (MSC), standard normal variate (SNV) transformation, de-trending (DT), first derivative, second derivative and wavelet methods. A simulated dataset and a real NIR spectral dataset were used to test the efficiency of different background correction methods. The results showed that OSC is the only effective method for correcting excessive background.
机译:在近红外(NIR)植物提取物分析中,过度背景通常存在于近红外光谱中。由于过度的背景,难以检测活性成分,并且纠正该问题仍然困难。在这项工作中,正交信号校正(OSC)方法用于校正过多的背景。还将该方法与若干经典背景校正方法进行比较,例如偏移校正,乘法散射校正(MSC),标准正常变化(SNV)变换,去趋势(DT),第一导数,第二导数和小波方法。模拟数据集和实际的NIR光谱数据集用于测试不同背景校正方法的效率。结果表明,OSC是纠正过度背景的唯一有效方法。

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