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Single camera-based vision systems for ground & aerial robots.

机译:用于地面和空中机器人的基于单相机的视觉系统。

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摘要

Efficient and effective vision systems are proposed in this work for object detection for ground & aerial robots venturing into unknown environments with minimum vision aids, i.e. a single camera. The first problem attempted is that of object search and identification in a situation similar to a disaster site. Based on image analysis, typical pixel-based characteristics of a visual marker have been established to search for, using a block based search algorithm, along with a noise and interference filter. The proposed algorithm has been successfully utilized for the International Aerial Robotics competition 2009.;The second problem deals with object detection for collision avoidance in 3D environments. It has been shown that a 3D model of the scene can be generated from 2D image information from a single camera flying through a very small arc of lateral flight around the object, without the need of capturing images from all sides. The forward flight simulations show that the depth extracted from forward motion is usable for large part of the image. After analyzing various constraints associated with this and other existing approaches, Motion Estimation has been proposed. Implementation of motion estimation on videos from onboard cameras resulted in various undesirable and noisy vectors. An in depth analysis of such vectors is presented and solutions are proposed and implemented, demonstrating desirable motion estimation for collision avoidance task.
机译:在这项工作中,提出了一种高效且有效的视觉系统,用于对进入未知环境的地面和空中机器人的物体进行检测,并使用最少的视觉辅助设备,即单个摄像机。尝试的第一个问题是在类似于灾难现场的情况下进行对象搜索和识别的问题。基于图像分析,已经建立了视觉标记的典型的基于像素的特征,以使用基于块的搜索算法以及噪声和干扰滤波器进行搜索。所提出的算法已成功用于2009年国际空中机器人竞赛。第二个问题涉及在3D环境中避免碰撞的目标检测。已经显示,可以从来自单个照相机的2D图像信息生成场景的3D模型,该2D图像通过围绕对象的很小的横向飞行弧线飞行,而无需从所有侧面捕获图像。前向飞行模拟表明,从前向运动中提取的深度可用于大部分图像。在分析了与此方法和其他现有方法相关的各种约束之后,提出了运动估计。对来自车载摄像机的视频进行运动估计会导致各种不良和嘈杂的向量。提出了对此类矢量的深入分析,并提出并实现了解决方案,从而证明了避免碰撞任务所需的运动估计。

著录项

  • 作者

    Shah, Syed Irtiza Ali.;

  • 作者单位

    Georgia Institute of Technology.;

  • 授予单位 Georgia Institute of Technology.;
  • 学科 Engineering Aerospace.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 172 p.
  • 总页数 172
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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