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Automated Mobile System for Accurate Outdoor Tree Crop Enumeration Using an Uncalibrated Camera

机译:自动化的移动系统,使用未校准的摄像机进行精确的室外树木作物枚举

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This paper demonstrates an automated computer vision system for outdoor tree crop enumeration in a seedling nursery. The complete system incorporates both hardware components (including an embedded microcontroller, an odometry encoder, and an uncalibrated digital color camera) and software algorithms (including microcontroller algorithms and the proposed algorithm for tree crop enumeration) required to obtain robust performance in a natural outdoor environment. The enumeration system uses a three-step image analysis process based upon: (1) an orthographic plant projection method integrating a perspective transform with automatic parameter estimation; (2) a plant counting method based on projection histograms; and (3) a double-counting avoidance method based on a homography transform. Experimental results demonstrate the ability to count large numbers of plants automatically with no human effort. Results show that, for tree seedlings having a height up to 40 cm and a within-row tree spacing of approximately 10 cm, the algorithms successfully estimated the number of plants with an average accuracy of 95.2% for trees within a single image and 98% for counting of the whole plant population in a large sequence of images.
机译:本文演示了用于苗圃中室外树木作物枚举的自动计算机视觉系统。完整的系统结合了在自然室外环境中获得强大性能所需的硬件组件(包括嵌入式微控制器,里程计编码器和未校准的数字彩色相机)和软件算法(包括微控制器算法和建议的树木枚举算法)。 。枚举系统使用基于以下三个步骤的图像分析过程:(1)将透视变换与自动参数估计结合在一起的正交植物投影方法; (2)基于投影直方图的植物计数方法; (3)基于单应性变换的避免重复计数的方法。实验结果表明,无需人工即可自动计数大量植物的能力。结果表明,对于高度不超过40 cm,行内树间距大约为10 cm的树木幼苗,该算法成功地估计了单张图像中树木的植物数量,平均准确度为95.2%,98%用于在大量图像中对整个植物种群进行计数。

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