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Edge detection using fuzzy inference rules and first order derivation

机译:使用模糊推理规则和一阶推导的边缘检测

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The edge detection in digital images based on fuzzy inference system has become popular in recent years. Several reasons can be mentioned for that, from ambiguous definition of edges to inherent uncertainty of digital images. So, this paper proposes a novel method based on fuzzy inference rules and first order derivation for edge detection in digital images. The fuzzy system of proposed approach consists of six inputs and eleven rules. This method is able to detect edges with low difference in gray level. Furthermore, the proposed method is robust at detection of edges which are created by depth discontinuity, surface orientation discontinuity, reflectance discontinuity, and illumination discontinuity. No threshold value has been determined and membership functions of the fuzzy interface system are equable for all images. According to visual view and assessment metrics we show that detected edges by proposed method are more accurate and narrow in comparison with some of common and standard methods.
机译:基于模糊推理系统的数字图像中的边缘检测近年来变得流行。可以提及几种原因,从模糊的边缘定义到数字图像的固有不确定性。因此,本文提出了一种基于模糊推理规则的新方法,以及数字图像中边缘检测的第一阶推导。建议方法的模糊系统由六个输入和十一规则组成。该方法能够检测灰度级别低差异的边缘。此外,所提出的方法在检测到通过深度不连续性,表面取向不连续性,反射率不连续性和照明不连续性产生的边缘的稳健。没有确定阈值,并且模糊接口系统的隶属函数可用于所有图像。根据视图和评估指标,我们显示通过提出的方法检测到的边缘与一些常见和标准方法相比,更准确且窄。

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