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Frame-based reflectance estimation from multispectral images for weed identification in varying illumination conditions

机译:来自多光谱图像的基于帧的反射率估计在不同的照明条件下杂草识别

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To prevent the growth of weeds in precision farming, multispectral imaging has gained much interest for its ability to provide vegetation images with a high spectral resolution. However, spectral reflectance computation is an issue when the image is assembled from successive frames acquired under varying illumination conditions. In this study, we present a method to estimate reflectance from images acquired by a linescan camera in such conditions. Because rows in a given channel are associated to different illumination conditions, we process the image row-wise to improve reflectance estimation. Experimental segmentation results show that our method is a good candidate to effectively identify crops from weeds.
机译:为防止杂草的生长在精密养殖中,多光谱成像对其具有高光谱分辨率提供植被图像的能力很多。然而,当从不同照明条件下获取的连续帧组装图像时,光谱反射计算是一个问题。在该研究中,我们介绍一种估计在这种条件下由线路摄像机获取的图像的反射率的方法。因为给定信道中的行与不同的照明条件相关联,所以我们处理图像行,以改善反射率估计。实验分割结果表明,我们的方法是有效识别杂草作物的良好候选者。

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