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Model-based 3D object recognition using intensity and range images

机译:使用强度和距离图像的基于模型的3D对象识别

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Abstract: This paper describes a model based vision system in which a commercial 3-D computer graphics system has been used for object modeling and visual clue generation. Given the computer generated model image (i.e., color, depth, ...) a conventional CCD camera image and the corresponding scanned 3-D dense range map of the real scene, the object can be located in it. Our system, called three dimensional model based approach (3D-MBA), uses image pyramid of resolution and prediction-verification processes. To optimize the object recognition scheme, it first forms a set of hypotheses about the objects present in the scene and then proceeds by trying to confirm/reject them. If any part of the object hypothesis is missing, the system uses the object model to predict the shape, location, and orientation of that missing part. This paper focuses on how this is done using newly developed segmentation algorithms extracting `regions of interest' from range images (depth map) of the scene. Illustrative examples of object recognition in simple and complex scenes are presented. !17
机译:摘要:本文描述了一种基于模型的视觉系统,其中商用3D计算机图形系统已用于对象建模和视觉线索生成。给定计算机生成的模型图像(即颜色,深度等),常规的CCD摄像机图像以及真实场景的相应扫描3-D密集范围图,就可以将对象放置在其中。我们的系统称为基于三维模型的方法(3D-MBA),它使用分辨率和预测验证过程的图像金字塔。为了优化对象识别方案,它首先形成一组有关场景中存在的对象的假设,然后通过尝试确认/拒绝它们来进行操作。如果缺少对象假设的任何部分,则系统将使用对象模型来预测该丢失部分的形状,位置和方向。本文重点介绍如何使用新开发的分割算法从场景的距离图像(深度图)中提取“感兴趣区域”来完成此操作。给出了简单和复杂场景中物体识别的说明性示例。 !17

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