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Unsharp masking approaches for HVS based enhancement of mammographic masses: A comparative evaluation

机译:基于HVS的乳腺肿块增强的不清晰掩盖方法:比较评估

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摘要

It is known that mammogram screening is aimed to detect non-homogeneous and subtle symptoms of breast cancer. These features are rarely visible owing to marginal visual thresholds between the specific abnormality and the complex background tissues. Computer aided detection and diagnosis techniques (CAD) for breast cancer are reliant upon the degree of improvement in contrast and sharpness (of the tumour region), provided by a mammogram enhancement approach. UM based enhancement model yields better perception results making it feasible for processing mammographic images. This also ensures coherence with Human Visual System (HVS) characteristics but with certain associated challenges. This paper aims to narrate a comparative evaluation of various UM based approaches (in context to enhancement of mammographic images) on the basis of visual analysis as well as objective evaluation using standard Image Quality Assessment (IQA) metrics. In this paper, 10 UM based enhancement approaches are evaluated starting from the traditional Linear UM (LUM) along with subsequent evolutions (since the past two decades) covering the recent Non-Linear UM. Finally, an improved HVS based UM approach using Non-Linear Polynomial Filters (NPF) has been discussed as a robust solution to provide enhancement of mammograms with different nature of background tissues as well as types of masses. The outcomes of the study suggested that non-linear UM approaches are more suited towards enhancing the mammographic mass (tumour) region with respect to its background.
机译:众所周知,乳房X线照片筛查旨在检测乳腺癌的非均质和细微症状。由于特定异常与复杂背景组织之间的边缘视觉阈值,这些特征很少可见。乳腺癌的计算机辅助检测和诊断技术(CAD)依赖于乳房X光检查增强方法所提供的(肿瘤区域)对比度和清晰度的改善程度。基于UM的增强模型可产生更好的感知结果,使其可用于处理乳房X线照片。这也确保了与人类视觉系统(HVS)特性的一致性,但也带来了某些相关的挑战。本文的目的是在视觉分析以及使用标准图像质量评估(IQA)指标进行客观评估的基础上,对各种基于UM的方法(在增强乳腺摄影图像的背景下)进行比较评估。在本文中,从传统的线性UM(LUM)开始,评估了10种基于UM的增强方法,以及随后的发展(自过去的二十年以来),涵盖了最近的非线性UM。最后,已经讨论了使用非线性多项式滤波器(NPF)的基于HVS的改进UM方法,作为一种健壮的解决方案,可以增强具有不同背景组织性质和质量类型的乳房X线照片。研究结果表明,相对于背景,非线性UM方法更适合于增强乳房X线摄影肿块(肿瘤)区域。

著录项

  • 来源
    《Future generation computer systems》 |2018年第5期|176-189|共14页
  • 作者单位

    Faculty of Electronics & Communication Engineering, Shri Ramswaroop Memorial University,Department of Electronics and Communication Engineering, SRMGPC;

    Faculty of Electronics & Communication Engineering, Shri Ramswaroop Memorial University;

    Department of Electrical Engineering, School of Engineering, Gautam Buddha University;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Breast cancer; CAD; HVS; IQA; Mammography; Masses; NPF; UM;

    机译:乳腺癌;CAD;HVS;IQA;乳腺摄影;肿块;NPF;UM;

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