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首页> 外文期刊>Journal of Advanced Computatioanl Intelligence and Intelligent Informatics >An Improved Algorithm for Detection and Pose Estimation of Texture-Less Objects
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An Improved Algorithm for Detection and Pose Estimation of Texture-Less Objects

机译:一种改进的纹理对象检测和姿态估计算法

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摘要

This paper introduces an improved algorithm for texture-less object detection and pose estimation in industrial scenes. In the template training stage, a multi-scale template training method is proposed to improve the sensitivity of LineMOD to template depth. When this method performs template matching, the test image is first divided into several regions, and then training templates with similar depth are selected according to the depth of each test image region. In this way, without traversing all the templates, the depth of the template used by the algorithm during template matching is kept close to the depth of the target object, which improves the speed of the algorithm while ensuring that the accuracy of recognition will not decrease. In addition, this paper also proposes a method called coarse positioning of objects. The method avoids a lot of useless matching operations, and further improves the speed of the algorithm. The experimental results show that the improved LineMOD algorithm in this paper can effectively solve the algorithm's template depth sensitivity problem.
机译:介绍了一种改进的工业场景无纹理目标检测和姿态估计算法。在模板训练阶段,提出了一种多尺度模板训练方法,以提高LineMOD对模板深度的敏感性。该方法在进行模板匹配时,首先将测试图像划分为多个区域,然后根据每个测试图像区域的深度选择深度相似的训练模板。这样,在不遍历所有模板的情况下,算法在模板匹配过程中使用的模板深度与目标对象的深度保持接近,从而提高了算法的速度,同时保证了识别精度不会降低。此外,本文还提出了一种物体粗定位方法。该方法避免了大量无用的匹配操作,进一步提高了算法的速度。实验结果表明,本文提出的改进LineMOD算法能够有效地解决该算法的模板深度敏感问题。

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