首页> 外文会议>Intelligent Robots and Systems, 2005. (IROS 2005). 2005 IEEE/RSJ International Conference on >Simultaneously calibrating catadioptric camera and detecting line features using Hough transform
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Simultaneously calibrating catadioptric camera and detecting line features using Hough transform

机译:使用Hough变换同时校准折反射相机和检测线特征

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摘要

A line in space is projected to a conic in a central catadioptric image, and such a conic is called a line image. This paper proposes a novel approach to calibrating catadioptric camera and detecting line images simultaneously by using Hough transform. Previous approaches to catadioptric cameras calibration employ the traditional conic detecting or fitting methods for line images, and then use these recovered conies to estimate the intrinsic parameters based on some properties of line images. However, the type of a line image can be line, circle, ellipse, hyperbola or parabola, and in general only a small arc of the conic is visible in the image, which brings novel challenges for conic detection and fitting where traditional conic detecting and fitting methods may fail. As we know, the accuracy of the estimated intrinsic parameters highly depends on the accuracy of the extracted conies. The main contribution of this work is we show that all line images from catadioptric cameras with the same intrinsic parameters must belong to a family of conies with only two degree-of-freedom, and such a family is called a line image family. Therefore, we present a novel special Hough transform for line image detection which ensures that all detected conies must belong to a line image family related to certain intrinsic parameters. For all possible values of the unknown intrinsic parameters, the line image special Hough transform are performed. The one with the highest confidence is chosen as the estimated values for these unknown intrinsic parameters, and the corresponding results of line image detection are chosen as the estimated values for line images. In order to make the searching process more efficient, the hierarchical approaches are employed in this paper. The validity of our proposed approach is illustrated by experiments.
机译:空间上的线在中央折反射图像上投射到圆锥形,这种圆锥形称为线形图像。本文提出了一种新的方法,用于校准折反射相机并使用霍夫变换同时检测线图像。折反射照相机校准的先前方法采用传统的圆锥检测或拟合方法来处理线图像,然后使用这些恢复的圆锥根据线图像的某些属性来估计固有参数。但是,线图像的类型可以是线,圆,椭圆,双曲线或抛物线,并且通常在图像中只能看到一小段圆锥曲线,这给圆锥检测和装配带来了新的挑战,因为传统圆锥检测和拟合方法可能会失败。众所周知,估计的固有参数的准确性在很大程度上取决于提取的锥体的准确性。这项工作的主要贡献在于,我们证明了来自反射折射相机的所有具有相同内在参数的线图像都必须属于只有两个自由度的圆锥族,并且这种族被称为线图像族。因此,我们提出了一种用于行图像检测的新颖的特殊Hough变换,可确保所有检测到的锥必须属于与某些固有参数相关的行图像族。对于未知内在参数的所有可能值,将执行线图像特殊霍夫变换。选择具有最高置信度的参数作为这些未知内在参数的估计值,并选择相应的线图像检测结果作为线图像的估计值。为了使搜索过程更有效,本文采用了分层的方法。实验证明了我们提出的方法的有效性。

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