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Assessment of digital camera-derived vegetation indices in quantitative monitoring of seasonal rice growth

机译:数码相机衍生的植被指数在水稻季节性生长定量监测中的评估

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A commercially available digital camera can be used in a low-cost automatic observation system for monitoring crop growth change in open-air fields. We developed a prototype Crop Phenology Recording System (CPRS) for monitoring rice growth, but the ready-made waterproof cases that we used produced shadows on the images. After modifying the waterproof cases, we repeated the fixed-point camera observations to clarify questions regarding digital camera-derived vegetation indices (V Is), namely, the visible atmospherically resistant index (VARI) based on daytime normal color images (RGB image) and the nighttime relative brightness index (NRBI_(NIR)) based on nighttime near infrared (NIR) images. We also took frequent measurements of agronomic data such as plant length, leaf area index (LAI), and aboveground dry matter weight to gain a detailed understanding of the temporal relationship between the VIs and the biophysical parameters of rice. In addition, we conducted another nighttime outdoor experiment to establish the link between NRBInir and camera-to-object distance. The study produced the following findings. (1) The customized waterproof cases succeeded in preventing large shadows from being cast, especially on nighttime images, and it was confirmed that the brightness of the nighttime NIR images had spatial heterogeneity when a point light source (flashlight) was used, in contrast to the daytime RGB images. (2) The additional experiment using a forklift showed that both the ISO sensitivity and the calibrated digital number of the NIR (cDN_(NnR)) had significant effects on the sensitivity of NRBI_(NIR) to the camera-to-object distance. (3) Detailed measurements of a reproductive stem were collected to investigate the connection between the morphological feature change caused by the panicle sagging process and the downtrend in NRB1_(NIR) during the reproductive stages. However, these agronomic data were not completely in accord with NRBI_(NIR) in terms of the temporal pattern. (4) The time-series data for the LAI, plant length, and aboveground dry matter weight could be well approximated by a sigmoid curve based on NRBI_(NIR) and VARI. The results confirmed that NRBI_(NIR)was more sensitive to all of the agronomic data for overall season, including the early reproductive stages. VARI had an especially high correlation with LAI, unless yellow panicles appeared in the field of view.
机译:可以在低成本的自动观察系统中使用市售的数码相机,以监视露天田地中作物的生长变化。我们开发了用于监测水稻生长的原型作物物候记录系统(CPRS),但我们使用的现成的防水箱在图像上产生阴影。修改防水套后,我们重复进行定点相机观察,以阐明有关数码相机衍生的植被指数(V Is)的问题,即基于白天正常彩色图像(RGB图像)的可见大气耐受指数(VARI)和基于夜间近红外(NIR)图像的夜间相对亮度指数(NRBI_(NIR))。我们还经常测量农艺数据,例如植物长度,叶面积指数(LAI)和地上干物质重量,以详细了解VI与水稻的生物物理参数之间的时间关系。此外,我们进行了另一个夜间户外实验,以建立NRBInir与相机到物体距离之间的联系。该研究得出以下发现。 (1)定制的防水盒成功地防止了大阴影的投射,尤其是在夜间图像上,并且确认了与使用点光源(手电筒)相比,夜间NIR图像的亮度具有空间异质性。白天的RGB图像。 (2)使用叉车的另一项实验表明,ISO感光度和近红外光谱的校准数字(cDN_(NnR))均对NRBI_(NIR)对相机到物体的距离的感光度有显着影响。 (3)收集了生殖茎的详细测量数据,以研究由穗垂过程引起的形态特征变化与生殖阶段NRB1_(NIR)下降趋势之间的联系。但是,这些农艺学数据在时间模式上并不完全符合NRBI_(NIR)。 (4)基于NRBI_(NIR)和VARI的S形曲线可以很好地估计LAI,植物长度和地上干物质重量的时间序列数据。结果证实,NRBI_(NIR)对整个季节的所有农艺数据更为敏感,包括生殖的早期阶段。除非视野中出现黄色圆锥花序,否则VARI与LAI的相关性特别高。

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