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Denoising by using multineural networks for medical X-ray imaging applications

机译:通过在医学X射线成像应用中使用多神经网络进行降噪

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摘要

In this paper, a new type of multineural network filter (MNNF) is presented that is trained for restoration and enhancement of the digital radiological images. In medical radiographices, noise has been categorized as quantum mottle, which is related to the incident X-ray exposure and artificial noise, which is caused by the grid, etc. MNNF consists of several neural network filters (NNFs). A novel analysis method is proposed to make the characteristics of the trained MNNF clearly. In the proposed method, a characteristics judgement system is presented to decide which NNF will be executed through the standard deviation value of pixels in the input region. The new approach was tested on nine clinical medical X-ray images and five synthesized noisy X-ray images. In all cases, the proposed MNNF produced better results in terms of peak signal-to-noise ratio (PSNR), mean-to-standard-deviation ratio (MSR) and contrast to noise ratio (CNR) measures than the original NNF, linear inverse filter and nonlinear median filter.
机译:在本文中,提出了一种新型的多神经网络滤波器(MNNF),该滤波器经过训练可以恢复和增强数字放射图像。在医学射线照相中,噪声被归类为量子斑点,这与入射X射线曝光和人为噪声有关,后者是由网格等引起的。MNNF由几个神经网络过滤器(NNF)组成。提出了一种新颖的分析方法,以使训练后的MNNF的特征清晰可见。在提出的方法中,提出了一种特征判断系统,通过输入区域中像素的标准偏差值来确定将执行哪个NNF。该新方法已在9张临床医学X射线图像和5张合成的嘈杂X射线图像上进行了测试。在所有情况下,所提出的MNNF在峰值信噪比(PSNR),均值与标准差之比(MSR)和对比度与噪声比(CNR)度量方面均比原始NNF产生更好的结果逆滤波器和非线性中值滤波器。

著录项

  • 来源
    《Neurocomputing》 |2009年第15期|2884-2891|共8页
  • 作者单位

    Graduate School of Science and Technology, Chiba University, Chiba, Japan;

    Graduate School of Science and Technology, Chiba University, Chiba, Japan;

    Graduate School of Science and Technology, Chiba University, Chiba, Japan;

    Graduate School of Science and Technology, Chiba University, Chiba, Japan;

  • 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

    multineural network filter; radiological image; characteristics judgement system;

    机译:多神经网络滤波器放射图像特征判断系统;

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