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A Specialized Architecture for Color Image Edge Detection Based on Clifford Algebra

机译:基于Clifford代数的彩色图像边缘检测专用架构

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Edge detection of color images is usually performed by applying the traditional techniques for gray-scale images to the three color channels separately. However, human visual perception does not differentiate colors and processes the image as a whole. Recently, new methods have been proposed that treat RGB color triples as vectors and color images as vector fields. In these approaches, edge detection is obtained extending the classical pattern matching and convolution techniques to vector fields. This paper proposes a hardware implementation of an edge detection method for color images that exploits the definition of geometric product of vectors given in the Clifford algebra framework to extend the convolution operator and the Fourier transform to vector fields. The proposed architecture has been prototyped on the Celoxica RC203E Field Programmable Gate Array (FPGA) board. Experimental tests on the FPGA prototype show that the proposed hardware architecture allows for an average speedup ranging between 6x and 18x for different image sizes against the execution on a conventional general-purpose processor. Clifford algebra based edge detector can be exploited to process not only color images but also multispectral gray-scale images. The proposed hardware architecture has been successfully used for feature extraction of multispectral magnetic resonance (MR) images.
机译:彩色图像的边缘检测通常是通过将传统的灰度图像技术分别应用于三个颜色通道来执行的。但是,人类的视觉感知并不能区分颜色,并且无法对图像进行整体处理。近来,已经提出了将RGB颜色三元组视为向量并且将彩色图像视为向量场的新方法。在这些方法中,获得了边缘检测,将经典的模式匹配和卷积技术扩展到矢量场。本文提出了一种彩色图像边缘检测方法的硬件实现,该方法利用了Clifford代数框架中给定的矢量几何积的定义,将卷积算子和傅里叶变换扩展到矢量场。拟议的架构已在Celoxica RC203E现场可编程门阵列(FPGA)板上原型化。在FPGA原型上进行的实验测试表明,与传统的通用处理器上的执行相比,针对不同的图像尺寸,所提出的硬件架构允许平均提速范围在6倍至18倍之间。基于Clifford代数的边缘检测器不仅可用于处理彩色图像,还可用于处理多光谱灰度图像。所提出的硬件体系结构已成功用于多光谱磁共振(MR)图像的特征提取。

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