基于卷积神经网络的多光谱相机标定

Iván A. Juárez Trujillo, Jonny P. Zavala de Paz, Omar Palillero Sandoval, Francisco A. Castillo Velásquez
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摘要

提出了一种基于卷积神经网络的多光谱相机标定方法。在相同的光照条件和相同的捕捉角度下,用多光谱相机拍摄各标准的RGB图像。这些图像被分割成小的矩阵大小,添加到一个特定的类中,并保存一个特殊的标签,以区分它与整个类数据库,同样的过程需要剩下的7个Lucideon Std彩色瓷砖。其中一个贴图对应于一个特定的类,所有类的维度都是相等的。最后,基于所提出的方法,可以根据参考标定相机。
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Multispectral Camera Calibration Using Convolutional Neural Networks
A methodology for multispectral camera calibration using convolutional neural networks is presented. RGB images were captured from the multispectral camera for each of the standards, the samples are taken under the same lighting conditions and with the same capture angle. The images are fragmented into small matrix sizes added to a specific class, and saved with a special label to distinguish it from the entire class database, the same process takes the remaining 7 Lucideon Std color tiles. One of the tiles will correspond to a particular class with an equal dimension for all classes. Finally, based on the presented methodology, it is possible to calibrate the camera with respect to the references.
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