首页> 外文会议>International Conference on Intelligent Computing(ICIC 2006); 20060816-19; Kunming(CN) >Fast Affine Transform for Real-Time Machine Vision Applications
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Fast Affine Transform for Real-Time Machine Vision Applications

机译:用于实时机器视觉应用的快速仿射变换

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摘要

In this paper, we have proposed a fast affine transform method for real-time machine vision applications. Inspection of parts by machine vision requires accurate, fast, reliable, and consistent operations, where the transform of visual images plays an important role. Image transform is generally expensive in computation for real-time applications. For example, a transform including rotation and scaling would require four multiplications and four additions per pixel, which is going to be a great burden to process a large image. Our proposed method reduces the complexity substantially by removing four multiplications per pixel, which exploits the relationship between two neighboring pixels. In addition, this paper shows that the affine transform can be performed by fixed point operations with marginal error. Two interpolation methods are also tried on top of the proposed method in order to test the feasibility of fixed point operations. Experimental results indicated that the proposed algorithm was about six times faster than conventional ones without any interpolation and five times faster with bilinear interpolation.
机译:在本文中,我们提出了一种用于实时机器视觉应用的快速仿射变换方法。通过机器视觉检查零件需要准确,快速,可靠和一致的操作,其中视觉图像的转换起着重要的作用。图像转换通常在实时应用的计算中很昂贵。例如,包括旋转和缩放的变换将需要每个像素四个乘法和四个加法,这对于处理大图像将是很大的负担。我们提出的方法通过消除每个像素四个乘法来显着降低复杂度,从而利用了两个相邻像素之间的关系。另外,本文表明仿射变换可以通过具有边际误差的定点运算来执行。为了验证定点运算的可行性,在所提出的方法之上还尝试了两种插值方法。实验结果表明,所提出的算法比没有插值的传统算法快大约六倍,而具有双线性插值的算法快五倍。

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