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Study on de-noising of near infrared spectrum for wood based on wavelet transform modulus maximum

机译:基于小波变换模极大值的木材近红外光谱降噪研究

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Spectral data of wood samples gathered by spectrometers are disturbed by a series of noise and interferences, therefore a proper data preprocessing is very important for model establishment and achievement of accurate analytical result. This paper directly applies wavelet transform and first derivative in spectrum preprocessing of Chinese fir. The results show that the combination of first derivative and wavelet transform modulus maximum can eliminate spectral noise and interference but reserve major information. It contributes to increase analysis quality and precision of the near infrared.
机译:光谱仪收集的木材样品的光谱数据会受到一系列噪声和干扰的干扰,因此正确的数据预处理对于建立模型和获得准确的分析结果非常重要。本文将小波变换和一阶导数直接应用于杉木的光谱预处理中。结果表明,一阶导数和小波变换模极大值的结合可以消除频谱噪声和干扰,但保留了主要信息。它有助于提高近红外的分析质量和精度。

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