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Fine Object Detection in Automated Solar Panel Layout Generation

机译:自动太阳能电池板布局生成中的精细目标检测

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A solar panel layout is a diagram of a roof, with the roof edges and obstacles marked. Currently, the user has to manually draw boundary over each obstacle in a tedious and meticulous manner. In this work, we have built a framework using the existing object detection models. We have leveraged the power of traditional edge detection algorithms, fusing with the cutting-edge machine learning based object detection frameworks. This fusion results in a framework capable of detecting objects to their exact edges. Thus, the boundary of each obstacle in a solar panel can be generated automatically with the edge pixel count variation of less than 25% compared to the ground truth.
机译:太阳能电池板布局是屋顶的示意图,其中标记了屋顶边缘和障碍物。当前,用户必须以乏味且细致的方式手动在每个障碍物上绘制边界。在这项工作中,我们使用现有的对象检测模型构建了一个框架。我们利用了传统边缘检测算法的强大功能,并与基于机器学习的尖端对象检测框架相融合。这种融合形成了一个能够检测物体到其精确边缘的框架。因此,可以自动生成太阳能电池板中每个障碍物的边界,其边缘像素数变化与地面真实情况相比小于25%。

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