使用深度学习和图像处理对原木进行分割和计数

João V. C. Mazzochin, Gustavo Tiecker, Erick O. Rodrigues
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引用次数: 0

摘要

图像中的对象计数是一个模式识别问题,重点是识别一个元素以确定其发生率,在文献中被称为视觉对象计数(VOC)。在这项工作中,我们提出了计算原木的方法。首先,从图像背景中分割原木。第一个分割步骤是使用实现条件生成对抗网络(cgan)的Pix2Pixframework获得的。其次,使用连接组件对集群进行计数。分割的平均准确率超过89%,基于总占比的木材平均识别量超过97%。
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Segmentação e contagem de troncos de madeira utilizando deep learning e processamento de imagens
Counting objects in images is a pattern recognition problem that focuses on identifying an element to determine its incidence and is approached in the literature as Visual Object Counting (VOC). In this work, we propose a methodology to count wood logs. First, wood logs are segmented from the image background. This first segmentation step is obtained using the Pix2Pix framework that implements Conditional Generative Adversarial Networks (CGANs). Second, the clusters are counted using Connected Components. The average accuracy of the segmentation exceeds 89% while the average amount of wood logs identified based on total accounted is over 97%.
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