纹理旋转角度估计算法及其在FU-SmartCam上的实时实现

C. Ulas, S. Demir, O. Toker, K. Fidanboylu
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引用次数: 12

摘要

本文研究了纹理的旋转角度估计算法,并讨论了其在FU-SmartCam上的实时实现。织物的旋转角度估计与纺织工业中遇到的纬调问题密切相关。早期的直纬机是基于简单的传感器和硬件,但随着织物类型的复杂性的增加,以及对更快、更精确的机器的需求,整个行业开始转向基于实时机器视觉的系统。例如,该领域的领先公司之一,Erhardt+Leimer,开始实施基于微型智能相机的实时机器视觉系统。在这项工作中,我们都研究了纹理的旋转角度估计算法,以及它们在当地开发的法提赫大学智能相机(FU-SmartCam)上的实时实现。我们还将FU-SmartCam与Erhardt+Leimer系统中使用的微型智能相机进行了比较,无论是在硬件方面还是在原型制作的易用性方面。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Rotation Angle Estimation Algorithms for Textures and Their Real-Time Implementation on the FU-SmartCam
In this paper, we study rotation angle estimation algorithms for textures and discuss their real-time implementation on the FU-SmartCam. Rotation angle estimation for textures is closely related to the weft-straightening problem encountered in the textile industry. Earlier weft-straightening machines were based on simpler sensors and hardware, but with the increased complexity of fabric types, and demand for faster and more accurate machines, the whole industry started to switch to real-time machine vision based systems. For example, one of the leading companies in this area, Erhardt+Leimer, started to implement realtime machine vision systems based on the tattile smart camera. In this work, we both study rotation angle estimation algorithms for textures, and their real-time implementation on the locally developed Fatih University smart camera (FU-SmartCam). We also compare the FU-SmartCam with the tattile smart camera used in the Erhardt+Leimer system, both in terms of hardware and ease of prototyping.
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