眼底图像增强检测糖尿病视网膜病变的对比分析

S. Yadav, Shailesh Kumar, B. Kumar, R. Gupta
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引用次数: 24

摘要

本文对几种眼底图像增强技术在糖尿病视网膜病变(DR)检测中的应用进行了比较分析。医学图像经常存在光照不均匀、对比度差和噪声等问题,因此这些图像必须经过预处理阶段。对于图像增强,提出了许多基于空间域(直方图)的技术。然而,这些方法通常不能产生合适的结果,不均匀的照明和广泛的低合同。对各种增强技术进行比较分析和性能评价,有助于选择最合适的增强技术,从而显著提高糖尿病视网膜病变的检出率。本文比较了直方图均衡化(HE)、自适应直方图均衡化(ADHE)、对比度限制自适应直方图均衡化(CLAHE)和基于曝光的子图像直方图均衡化(ESIHE)技术对眼底图像进行dr检测的预处理。为了公平分析这些技术,利用MATLAB对眼底图像的直方图、信噪比、熵、绝对平均亮度误差和峰值信噪比(PSNR)进行了分析。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Comparative analysis of fundus image enhancement in detection of diabetic retinopathy
This paper presents a comparative analysis of fundus image enhancement techniques to detect diabetic retinopathy (DR). Medical images frequently suffers from non-uniform illumination, poor contrast and noise, thus these images have to go through pre-processing stage. For image enhancement many techniques are proposed based on spatial domain (histogram). However, these methods usually decline to produce suitable consequences for non-uniform illumination and wide-ranging of low-contract. The comparative analysis and performance evaluation of various enhancement techniques will help in choosing most suitable technique which may significantly improve the detection of diabetic retinopathy. In this paper histogram equalization (HE), adaptive histogram equalization (ADHE), contrast limited adaptive histogram equalization (CLAHE) and exposure based sub-image histogram equalization (ESIHE) techniques are compared for pre-processing of fundus image for detecting DR. For fair analysis of these techniques, histogram, SNR, entropy, absolute mean brightness error and peak signal-to-noise ratio (PSNR) of fundus images are analyzed by using MATLAB.
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