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福建铁帽山钼矿床围岩蚀变的短波红外光谱学研究 被引量:7
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作者 刘鹤 马宇 +1 位作者 任宏 刘碧洪 《矿物学报》 CAS CSCD 北大核心 2015年第2期221-228,共8页
短波红外光谱分析技术是近年来兴起并逐渐走向成熟的一种热液矿床围岩蚀变研究方法。铁帽山斑岩型钼矿床的围岩蚀变作用强烈,主要蚀变类型包括钾化、硅化、伊利石化、蒙脱石化等,并具有明显的分带性特征。其中,伊利石-蒙脱石类蚀变与斑... 短波红外光谱分析技术是近年来兴起并逐渐走向成熟的一种热液矿床围岩蚀变研究方法。铁帽山斑岩型钼矿床的围岩蚀变作用强烈,主要蚀变类型包括钾化、硅化、伊利石化、蒙脱石化等,并具有明显的分带性特征。其中,伊利石-蒙脱石类蚀变与斑岩型钼矿化作用密切相关。经过对钻孔岩心开展系统的短波红外光谱测量,准确地鉴定了蚀变矿物类型,划分了蚀变带,并且根据短波红外光谱测量结果计算了样品的伊利石结晶度(SWIR-IC),定量地研究了伊利石化蚀变作用的强度。结果表明,在伊利石-蒙脱石化作用范围内,伊利石结晶度越高钼矿化作用越强,但在强硅化蚀变带内,伊利石含量会有所降低,而在钾化带内,伊利石结晶度与钼矿化作用无关。在斑岩型钼矿床的找矿勘查工作中,系统地开展短波红外光谱测量,一方面可以准确鉴别蚀变矿物的类型,另一方面可以根据伊利石结晶度的指标来判断含矿热液活动中心,指导勘查工程的布设。 展开更多
关键词 短波红外光谱学 伊利石结晶度 斑岩型钼矿 围岩蚀变
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Neural network and principal component regression in non-destructive soluble solids content assessment:a comparison 被引量:4
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作者 Kim-seng CHIA Herlina ABDUL RAHIM Ruzairi ABDUL RAHIM 《Journal of Zhejiang University-Science B(Biomedicine & Biotechnology)》 SCIE CAS CSCD 2012年第2期145-151,共7页
Visible and near infrared spectroscopy is a non-destructive,green,and rapid technology that can be utilized to estimate the components of interest without conditioning it,as compared with classical analytical methods.... Visible and near infrared spectroscopy is a non-destructive,green,and rapid technology that can be utilized to estimate the components of interest without conditioning it,as compared with classical analytical methods.The objective of this paper is to compare the performance of artificial neural network(ANN)(a nonlinear model)and principal component regression(PCR)(a linear model)based on visible and shortwave near infrared(VIS-SWNIR)(400-1000 nm)spectra in the non-destructive soluble solids content measurement of an apple.First,we used multiplicative scattering correction to pre-process the spectral data.Second,PCR was applied to estimate the optimal number of input variables.Third,the input variables with an optimal amount were used as the inputs of both multiple linear regression and ANN models.The initial weights and the number of hidden neurons were adjusted to optimize the performance of ANN.Findings suggest that the predictive performance of ANN with two hidden neurons outperforms that of PCR. 展开更多
关键词 Artificial neural network (ANN) Principal component regression (PCR) Visible and shortwave nearinfrared (VIS-SWNIR) Spectroscopy APPLE Soluble solids content (SSC)
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