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Identification of aflatoxin B1 on maize kernel surfaces using hyperspectral imaging.

机译:利用高光谱成像技术鉴定玉米籽粒表面黄曲霉毒素B 1

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A shortwave infrared (SWIR) hyperspectral imaging system with wavelength range between 1000 and 2500 nm was used to assess the potential to detect aflatoxin B1 (AFB1) contaminants on the surface of healthy maize kernels. Four different AFB1 solutions were prepared and deposited on kernels surface to achieve 10, 20, 100, and 500 ppb, respectively. A drop of 20% methanol was dipped on the surface of 30 healthy kernels in the same way to generate the control samples. Based on the standard normal variate (SNV) transformation spectra, principal components analysis (PCA) was used to reduce the dimensionality of the spectral data, and then stepwise factorial discriminant analysis (FDA) was performed on latent variables provided by the PCA's. Furthermore, beta coefficients of the first three of four discriminant factors were analyzed and key wavelengths, which can represent AFB1 and be used to differentiate different level of AFB1 were in identified. Furthermore, 150 independent samples were used as verification set to test the reproducibility of the proposed method. A minimum classification accuracy of 88% was achieved for the validation set and verification set. Results indicated that hyperspectral imaging technology, accompanied by the PCA-FDA method, can be used to detect AFB1 at concentrations as low as 10 ppb when applied directly on the maize surface
机译:使用波长范围在1000至2500 nm之间的短波红外(SWIR)高光谱成像系统评估在表面上检测黄曲霉毒素B 1 (AFB 1 )污染物的潜力健康的玉米粒。制备了四种不同的AFB 1 溶液并将其沉积在籽粒表面上,分别达到10、20、100和500 ppb。用相同的方法将20%的甲醇滴入30个健康玉米粒的表面,以产生对照样品。基于标准正态变量(SNV)转换光谱,使用主成分分析(PCA)来减少光谱数据的维数,然后对PCA提供的潜在变量进行逐步阶乘判别分析(FDA)。此外,分析了四个判别因子中前三个的β系数,并确定了可以代表AFB 1 并用于区分AFB 1 的不同水平的关键波长。此外,使用150个独立样本作为验证集,以测试所提出方法的可重复性。验证集和验证集的最低分类精度达到88%。结果表明,高光谱成像技术与PCA-FDA方法相结合,可直接应用于玉米表面,用于检测低至10 ppb的AFB 1

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