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Automatic Pose Estimation for Range Images on the GPU

机译:GPU上范围图像的自动姿态估计

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摘要

Object pose (location and orientation) estimation is a common task in many computer vision applications. Although many methods exist, most algorithms need manual initialization and lack robustness to illumination variation, appearance change, and partial occlusions. We propose a fast method for automatic pose estimation without manual initialization based on shape matching of a 3D model to a range image of the scene. We developed a new error function to compare the input range image to pre-computed range maps of the 3D model. We use the tremendous data-parallel processing performance of modern graphics hardware to evaluate and minimize the error function on many range images in parallel. Our algorithm is simple and accurately estimates the pose of partially occluded objects in cluttered scenes in about one second.
机译:对象姿势(位置和方向)估计是许多计算机视觉应用中的常见任务。虽然存在许多方法,但大多数算法需要手动初始化并缺乏对照明变化,外观变化和部分闭锁的鲁棒性。我们提出了一种快速的方法,用于自动姿态估计,无需基于3D模型的形状匹配到场景的范围图像的形状匹配,而无需手动初始化。我们开发了一种新的错误功能,可以将输入范围图像与3D模型的预计范围映射进行比较。我们使用现代图形硬件的巨大数据并行处理性能来评估和最小化在许多范围图像上的错误功能并行。我们的算法简单且准确地估计了大约一秒钟内杂乱场景中的部分封闭物体的姿势。

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