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Acceleration of 3D Measurement of Large Structures with Ring Laser and Camera via FFT-based Template Matching

机译:借助基于FFT的模板匹配功能,利用环形激光器和摄像头加速大型结构的3D测量

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For quality inspection and maintenance in the manufacturing industry, it is extremely important to accurately measure the 3D shape of various structures in an efficient manner. In this paper, we propose an accelerated light-section method to accurately measure the 3D shape of large structures. The light-section method is a popular method to measure the 3D shapes accurately, which uses a laser and a camera that can observe the shape of the laser cross-sections. This method consists of two important steps: first, images that include the laser cross-section are captured. Next, the cross-sections are integrated by calculating the transformations between these images. For want of high accuracy, area-based matching methods, such as template matching, which match pixels in an area one-by-one, are used to calculate these transformations. Hence, the processing time is too high and speed/efficiency is quite important for real-life 3D measurement applications. Therefore, we focus on developing a faster template matching method. In this process, the presence of the laser cross-section on the image texture can induce errors in the integration and lower accuracy. Thus, it is required to mask the laser regions inside each image. To solve this problem and make the calculation faster, a masked Fast Fourier Transform (FFT) based template matching is proposed. Via experimental evaluation, we show that the 3D measurement process can be made almost 1.6 times faster, with similar accuracy as compared to previous methods.
机译:对于制造业的质量检查和维护,以有效的方式准确测量各种结构的3D形状非常重要。在本文中,我们提出了一种加速光切方法来准确测量大型结构的3D形状。光切法是一种精确测量3D形状的流行方法,它使用激光和可以观察激光横截面形状的照相机。该方法包括两个重要步骤:首先,捕获包括激光横截面的图像。接下来,通过计算这些图像之间的转换对横截面进行积分。由于缺乏高精度,因此使用基于区域的匹配方法(例如模板匹配)来逐一匹配区域中的像素,以计算这些转换。因此,处理时间太长,速度/效率对于现实生活中的3D测量应用而言非常重要。因此,我们专注于开发一种更快的模板匹配方法。在此过程中,图像纹理上激光截面的存在会导致积分误差和较低的精度。因此,需要掩盖每个图像内部的激光区域。为了解决这个问题并使计算速度更快,提出了一种基于屏蔽快速傅里叶变换(FFT)的模板匹配方法。通过实验评估,我们显示3D测量过程可以快将近1.6倍,并且与以前的方法相比具有相似的精度。

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