首页> 外文会议>Annual Meeting on the German Association for Pattern Recognition(DAGM 2005); 20050831-0902; Vienna(AT) >Blind Background Subtraction in Dental Panoramic X-Ray Images: An Application Approach
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Blind Background Subtraction in Dental Panoramic X-Ray Images: An Application Approach

机译:牙科全景X射线图像中的盲背景减法:一种应用方法

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Dental Panoramic X-ray images are images having complex content, because several layers of tissue, bone, fat, etc. are superimposed. Non-uniform illumination, stemming from the X-ray source, gives extra modulation to the image, which causes spatially varying X-ray photon density. The interaction of the X-ray photons with the density of matter causes spatially coherent varying noise contribution. Many algorithms exist to compensate background effects, by pixel based or global methods. However, if the image is contaminated by a non-negligible amount of noise, that is usually non-Gaussian, the methods cannot approximate the background efficiently. In this paper, a dedicated approach for background subtraction is presented, which operates blind, that means the separation of a set of independent signals from a set of mixed signals, with at least, only little a priori information about the nature of the signals, using the A-Trous multiresolution transform to alleviate this problem. The new method estimates the background bias from a reference scan, which is taken without a patient. The background values are rescaled by a polynomial compensation factor, given by mean square error criteria, thus subtracting the background will not produce additional artifacts in the image. The energy of the background estimate is subtracted from the energy of the mixture. The method is capable to remove spatially varying noise also, allocating an appropriate spatially noise estimate. This approach has been tested on 50 images from a database of panoramic X-ray images, where the results are cross validated by medical experts.
机译:牙科全景X射线图像是具有复杂内容的图像,因为会叠加几层组织,骨骼,脂肪等。源自X射线源的不均匀照明会给图像带来额外的调制,从而导致X射线光子密度在空间上发生变化。 X射线光子与物质密度的相互作用导致空间相干变化的噪声贡献。存在许多通过基于像素的方法或全局方法来补偿背景效果的算法。但是,如果图像被不可忽略的噪声(通常是非高斯噪声)污染,则这些方法将无法有效地逼近背景。在本文中,提出了一种专用的背景扣除方法,该方法盲操作,这意味着从一组混合信号中分离出一组独立信号,并且至少只有很少的关于信号性质的先验信息,使用A-Trous多分辨率变换来缓解此问题。新方法根据参考扫描估计背景偏差,该参考扫描无需患者进行。通过均方误差标准给出的多项式补偿因子对背景值进行重新缩放,因此减去背景将不会在图像中产生其他伪像。从混合物的能量中减去背景估计的能量。该方法还能够去除空间变化的噪声,分配适当的空间噪声估计。该方法已经在全景X射线图像数据库中的50张图像上进行了测试,结果由医学专家进行了交叉验证。

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