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首页> 外文期刊>Sensors >Comparison of Reflectance Measurements Acquired with a Contact Probe and an Integration Sphere: Implications for the Spectral Properties of Vegetation at a Leaf Level
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Comparison of Reflectance Measurements Acquired with a Contact Probe and an Integration Sphere: Implications for the Spectral Properties of Vegetation at a Leaf Level

机译:用接触探针和积分球获得的反射率测量结果的比较:叶水平上植被光谱特性的含义

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Laboratory spectroscopy in visible and infrared regions is an important tool for studies dealing with plant ecophysiology and early recognition of plant stress due to changing environmental conditions. Leaf optical properties are typically acquired with a spectroradiometer coupled with an integration sphere (IS) in a laboratory or with a contact probe (CP), which has the advantage of operating flexibility and the provision of repetitive in-situ reflectance measurements. Experiments comparing reflectance spectra measured with different devices and device settings are rarely reported in literature. Thus, in our study we focused on a comparison of spectra collected with two ISs on identical samples ranging from a Spectralon and coloured papers as reference standards to vegetation samples with broadleaved ( Nicotiana Rustica L.) and coniferous ( Picea abies L. Karst.) leaf types. First, statistical measures such as mean absolute difference, median of differences, standard deviation and paired-sample t-test were applied in order to evaluate differences between collected reflectance values. The possibility of linear transformation between spectra was also tested. Moreover, correlation between normalised differential indexes (NDI) derived for each device and all combinations of wavelengths between 450 nm and 1800 nm were assessed. Finally, relationships between laboratory measured leaf compounds (total chlorophyll, carotenoids and water content), NDI and selected spectral indices often used in remote sensing were studied. The results showed differences between spectra acquired with different devices. While differences were negligible in the case of the Spectralon and they were possible to be modelled with a linear transformation in the case of coloured papers, the spectra collected with the CP and the ISs differed significantly in the case of vegetation samples. Regarding the spectral indices calculated from the reflectance data collected with the three devices, their mean values were in the range of the corresponding standard deviations in the case of broadleaved leaf type. Larger differences in optical leaf properties of spruce needles collected with the CP and ISs are implicated from the different measurement procedure due to needle-like leaf where shoots with spatially oriented needles were measured with the CP and individual needles with the IS. The study shows that a direct comparison between the spectra collected with two devices is not advisable as spectrally dependent offsets may likely exist. We propose that the future studies shall focus on standardisation of measurement procedures so that open access spectral libraries could serve as a reliable input for modelling of optical properties on a leaf level.
机译:可见光和红外区的实验室光谱学是研究植物生态生理学和早期识别由于环境条件变化而引起的植物胁迫的重要工具。叶片的光学特性通常是通过在实验室中使用积分球(IS)或使用接触探针(CP)的光谱辐射仪获得的,其具有操作灵活性和提供重复的原位反射率测量的优势。很少有文献报道比较用不同设备和设备设置测量的反射光谱的实验。因此,在我们的研究中,我们重点比较了在相同样品(从Spectralon和有色纸作为参考标准)到阔叶(Nicotiana Rustica L.)和针叶(Picea abies L. Karst。)的植被样品上两次IS收集的光谱的比较。叶类型。首先,为了评估收集的反射率值之间的差异,采用了统计方法,例如平均绝对差,差异中位数,标准差和配对样本t检验。还测试了光谱之间线性变换的可能性。此外,评估了为每个设备得出的归一化差异指数(NDI)与450 nm至1800 nm之间的所有波长组合之间的相关性。最后,研究了实验室测得的叶片化合物(总叶绿素,类胡萝卜素和水含量),NDI和常用于遥感的选定光谱指数之间的关系。结果表明,使用不同设备获得的光谱之间存在差异。尽管在Spectralon的情况下差异可以忽略不计,并且在彩色纸的情况下可以通过线性变换进行建模,但是在植被样品的情况下,CP和IS收集的光谱差异很大。关于从用这三种装置收集的反射率数据计算出的光谱指数,在阔叶类型的情况下,它们的平均值在相应标准偏差的范围内。由于针状叶片在叶上用空间取向针的芽用CP来测定,而在IS上用单独的针来测定,因此用不同的测量程序可以暗示用CP和IS收集的云杉针的光学叶片特性差异较大。研究表明,不建议在两个设备收集的光谱之间进行直接比较,因为可能会存在光谱相关的偏移。我们建议未来的研究应集中在测量程序的标准化上,以便开放访问光谱库可以作为叶层光学特性建模的可靠输入。

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