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首页> 外文期刊>International journal of humanoid robotics >EFFICIENT ARCHITECTURES FOR SEGMENTATION OF ENDOSCOPIC IMAGES IN MICRO-ROBOTIC AUTO NAVIGATION SYSTEMS
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EFFICIENT ARCHITECTURES FOR SEGMENTATION OF ENDOSCOPIC IMAGES IN MICRO-ROBOTIC AUTO NAVIGATION SYSTEMS

机译:微机器人自动导航系统中内窥镜图像分割的有效架构

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摘要

This paper presents novel techniques and their architectural translations for real-time image segmentation of endoscopic images, which are required for micro-robotic auto navigation systems. The proposed technique is based on a two-step process to segment the lumen regions from endoscopic images. In the first step, an adaptive progressive thresholding technique based on Otsu's method is employed to obtain a preliminary region of interest of the lumen region. A novel architecture for the between-class variance computation of Otsu's method is presented to meet the real-time requirements of the system. The proposed implementation employs binary logarithmic computations to eliminate the complex divisions and multiplications in Otsu's procedure. In the second step, an Iris filter is employed to enhance the boundary of the region of interest to facilitate an accurate detection of the lumen region. An architecture based on the coordinate rotation digital computer is proposed to simplify the complex computations of trigonometric functions required by the Iris filter operation. Software simulations demonstrate that the proposed technique requires a significantly smaller number of iterations to obtain an accurate segmentation result as compared to a previously reported method. In addition, synthesis results on the field-programmable gate array show that the proposed architectures can achieve high performance with low hardware resource utilization.
机译:本文介绍了用于微型机器人自动导航系统所需的内窥镜图像实时图像分割的新技术及其体系结构转换。所提出的技术基于两步过程以从内窥镜图像分割管腔区域。第一步,采用基于Otsu方法的自适应渐进阈值技术来获得管腔区域的感兴趣的初步区域。提出了一种新的Otsu方法的类间方差计算架构,以满足系统的实时需求。所提出的实现采用二进制对数计算来消除Otsu过程中的复杂除法和乘法。在第二步中,采用虹膜滤光片来增强感兴趣区域的边界,以促进对管腔区域的精确检测。提出了一种基于坐标旋转数字计算机的架构,以简化虹膜滤波器操作所需的三角函数的复杂计算。软件仿真表明,与以前报道的方法相比,该技术所需的迭代次数要少得多,以获得准确的分割结果。另外,在现场可编程门阵列上的综合结果表明,所提出的体系结构可以在低硬件资源利用率的情况下实现高性能。

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