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Texture Based Quality Analysis of Simulated Synthetic Ultrasound Images Using Local Binary Patterns ?

机译:基于局部二值模式的模拟合成超声图像基于纹理的质量分析?

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Speckle noise reduction is an important area of research in the field of ultrasound image processing. Several algorithms for speckle noise characterization and analysis have been recently proposed in the area. Synthetic ultrasound images can play a key role in noise evaluation methods as they can be used to generate a variety of speckle noise models under different interpolation and sampling schemes, and can also provide valuable ground truth data for estimating the accuracy of the chosen methods. However, not much work has been done in the area of modeling synthetic ultrasound images, and in simulating speckle noise generation to get images that are as close as possible to real ultrasound images. An important aspect of simulated synthetic ultrasound images is the requirement for extensive quality assessment for ensuring that they have the texture characteristics and gray-tone features of real images. This paper presents texture feature analysis of synthetic ultrasound images using local binary patterns (LBP) and demonstrates the usefulness of a set of LBP features for image quality assessment. Experimental results presented in the paper clearly show how these features could provide an accurate quality metric that correlates very well with subjective evaluations performed by clinical experts.
机译:减少斑点噪声是超声图像处理领域中的重要研究领域。最近在该领域提出了几种用于散斑噪声表征和分析的算法。合成超声图像可在噪声评估方法中发挥关键作用,因为它们可用于在不同的插值和采样方案下生成各种斑点噪声模型,并且还可提供有价值的地面真相数据以估计所选方法的准确性。然而,在对合成超声图像建模以及在模拟斑点噪声生成以获取与实际超声图像尽可能接近的图像方面,还没有做太多的工作。模拟合成超声图像的一个重要方面是需要进行大量质量评估,以确保它们具有真实图像的纹理特征和灰度特征。本文介绍了使用局部二进制模式(LBP)对合成超声图像进行纹理特征分析,并演示了一组LBP特征对于图像质量评估的有用性。本文中提出的实验结果清楚地表明了这些功能如何提供准确的质量指标,并与临床专家进行的主观评估非常相关。

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