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Efficient Generic Calibration Method for General Cameras with Single Centre of Projection

机译:具有单射投影中心的通用相机的高效通用校准方法

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Generic camera calibration is a non-parametric calibration technique that is applicable to any type of vision sensor. However, the standard generic calibration method was developed with the goal of generality, and it is therefore sub-optimal for the common case of cameras with a single centre of projection (e.g. pinhole, fisheye, hyperboloidal catadioptric). This paper proposes novel improvements to the standard generic calibration method for central cameras that reduce its complexity, and improve its accuracy and robustness. Improvements are achieved by taking advantage of the geometric constraints resulting from a single centre of projection. Input data for the algorithm is acquired using active grids, the performance of which is characterised. A new linear estimation stage to the generic algorithm is proposed incorporating classical pinhole calibration techniques, and it is shown to be significantly more accurate than the linear estimation stage of the standard method. A linear method for pose estimation is also proposed and evaluated against the existing polynomial method. Distortion correction and motion reconstruction experiments are conducted with real data for a hyperboloidal catadioptric sensor for both the standard and proposed methods. Results show the accuracy and robustness of the proposed method to be superior to those of the standard method.
机译:通用摄像机校准是一种非参数校准技术,适用于任何类型的视觉传感器。然而,标准通用校准方法是通过一般性的目标开发的,因此对于具有单个投影中心的相机的常见情况(例如针孔,Fisheye,Hyper曲线致催化剂)是常见的。本文提出了对中央摄像机标准通用校准方法的新颖改进,从而降低了其复杂性,提高了其准确性和鲁棒性。通过利用由单个投影中心产生的几何约束来实现改进。使用活动网格获取算法的输入数据,其性能表征。提出了一种新的线性估计阶段,包括经典针孔校准技术,并且显示比标准方法的线性估计阶段明显更准确。还提出了一种针对现有多项式方法的姿势估计的线性方法。失真校正和运动重建实验是用用于标准和提出的方法的双曲线偶像传感器进行的实际数据进行。结果表明,所提出的方法优于标准方法的准确性和稳健性。

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