支撑面估计用于地板检测,以了解区域的空间组织

Lei Wang, Zhimin Zhou, Jun Wu, Yuncai Liu, Xu Zhao
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引用次数: 2

摘要

平面拟合在图像处理和计算机视觉中起着重要的作用。这是具有挑战性的,因为异常值不遵循平面模式。在这项工作中,我们解决了从深度图像生成的点云进行房间地板检测的支撑平面拟合问题。基于数据的几何布局,导出了一个优化问题来估计支撑面。本文还提出了处理数据噪声的算法。通过支撑平面拟合实现地板检测,并以此作为分析房间场景空间组织的参考。提出了一种构造组织图的投影方法。实验表明,该方法具有较强的鲁棒性,在空间组织理解方面取得了显著的效果。
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Support-plane estimation for floor detection to understand regions' spatial organization
Plane fitting plays an important role in image processing and computer vision. It is challenging because of the outliers that do not follow the plane pattern. In this work, we address the problem of support-plane fitting for room floor detection from point clouds that are generated from depth image. Based on the geometric layout of data, an optimization problem is derived to estimate the support-plane. Algorithms are also proposed to deal with data noise. The floor detection is achieved by support-plane fitting, and is employed as a reference to analyze the spatial organization of room scene. A projection method is presented to form the organization map. Experiments demonstrate the proposed method is more robust, and it achieves remarkable performance in understanding the spatial organization.
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