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Cell-based visual surveillance with active cameras for 3D human gaze computation

机译:基于主动摄像机的基于单元的视觉监控,可进行3D人眼凝视

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Capturing fine resolution and well-calibrated video images with good object visual coverage in a wide space is a tough task for visual surveillance. Although the use of active cameras is an emerging method, it suffers from the problems of online camera calibration difficulty, mechanical delay handling, image blurring from motions, and algorithm un-friendly due to dynamic backgrounds, etc. This paper proposes a cell-based visual surveillance system by using N (N a parts per thousand yenaEuro parts per thousand 2) active cameras. We propose the camera scan speed map (CSSM) to deal with the practical mechanical delay problem for active camera system design. We formulate the three mutually-coupled problems of camera layout, surveillance space partition with cell sequence, and camera parameter control, into an optimization problem by maximizing the object resolution while meeting various constraints such as system mechanical delay, full visual coverage, minimum object resolution, etc. The optimization problem is solved by using a full searching approach. The cell-based calibration method is proposed to compute both the intrinsic and exterior parameters of active cameras for different cells. With the proposed system, the foreground object is detected based on motion and appearance features and tracked by dynamically switching the two groups of cameras across different cells. The proposed algorithms and system have been validated by an in-door surveillance experiment, where the surveillance space was partitioned into four cells. We used two active cameras with one camera in one group. The active cameras were configured with the optimized pan, tilt, and zooming parameters for different cells. Each camera was calibrated with the cell-based calibration method for each configured pan, tilt, and zooming parameters. The algorithms and system were applied to monitor freely moving peoples within the space. The system can capture good resolution, well-calibrated, and good visual coverage video images with static background in support of automatic object detection and tracking. The proposed system performed better than traditional single or multiple fixed camera system in term of image resolution, surveillance space, etc. We further demonstrated that advanced 3D features, such as 3D gazes, were successfully computed from the captured good-quality images for intelligent surveillance.
机译:要在宽广的空间中捕获良好的对象视觉覆盖范围,以捕获高分辨率和经过良好校准的视频图像,对于视觉监视来说是一项艰巨的任务。尽管主动摄像机的使用是一种新兴方法,但它存在在线摄像机标定困难,机械延迟处理,运动引起的图像模糊以及由于动态背景而导致算法不友好等问题。本文提出了一种基于单元的方法视觉监视系统,使用N个(每N个千分之几a欧元每千个2的欧元)主动摄像机。我们提出了相机扫描速度图(CSSM)来解决主动相机系统设计中的实际机械延迟问题。我们将摄像机布局,具有单元序列的监视空间划分以及摄像机参数控制这三个相互关联的问题表述为一个优化问题,即在满足各种限制(例如系统机械延迟,全视觉覆盖范围,最小目标分辨率)的同时最大化对象分辨率等等。通过使用完整搜索方法可以解决优化问题。提出了基于单元的校准方法,以计算不同单元的活动相机的内部和外部参数。使用提出的系统,可以基于运动和外观特征检测前景物体,并通过在不同单元格之间动态切换两组摄像机进行跟踪。所提出的算法和系统已通过室内监视实验进行了验证,该监视实验将监视空间划分为四个单元。我们使用了两台主动摄像机,而一组则使用了一台摄像机。活动摄像机配置了针对不同单元的优化的平移,倾斜和缩放参数。使用基于单元格的校准方法针对每个配置的平移,倾斜和缩放参数对每个摄像机进行校准。该算法和系统被应用于监视空间内自由移动的人。该系统可以捕获具有静态背景的高分辨率,良好校准和良好视觉覆盖的视频图像,以支持自动对象检测和跟踪。在图像分辨率,监视空间等方面,该系统的性能优于传统的单机或多机固定摄像机系统。我们进一步证明,可以从捕获的高质量图像中成功计算出高级3D功能(例如3D凝视),以进行智能监视。

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