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Method and system for human vision model guided medical image quality assessment

机译:用于人类视觉模型的医学图像质量评估方法和系统

摘要

A method and system for image quality assessment is disclosed. The image quality assessment method is a no-reference method for objectively assessing the quality of medical images. This method is guided by the human vision model in order to accurately reflect human perception. A region of interest (ROI) of medical image is divided into non-overlapping blocks of equal size. Each of the blocks is categorized as a smooth block, a texture block, or an edge block. A perceptual sharpness measure, which is weighted by local contrast, is calculated for each of the edge blocks. A perceptual noise level measure, which is weighted by background luminance, is calculated for each of the smooth blocks. A sharpness quality index is determined based on the perceptual sharpness measures of all of the edge blocks, and a noise level quality index is determined based on the perceptual noise level measures of all of the smooth blocks. An overall image quality index can be determined by using task specific machine learning of samples of annotated images. The image quality assessment method can be used in applications, such as video/image compression and storage in healthcare and homeland security, and band-width limited wireless communication.
机译:公开了一种用于图像质量评估的方法和系统。图像质量评估方法是用于客观评估医学图像质量的无参考方法。该方法以人类视觉模型为指导,以准确反映人类的感知。医学图像的感兴趣区域(ROI)分为大小相等的非重叠块。每个块被分类为平滑块,纹理块或边缘块。为每个边缘块计算感知锐度度量,该度量通过局部对比度加权。为每个平滑块计算一个感知噪声级度量,该度量由背景亮度加权。基于所有边缘块的感知清晰度度量来确定清晰度质量指标,并且基于所有平滑块的感知噪声电平度量来确定噪声等级质量指标。可以通过使用带注释的图像样本的特定于任务的机器学习来确定总体图像质量指标。图像质量评估方法可用于医疗保健和国土安全中的视频/图像压缩和存储以及带宽受限的无线通信等应用中。

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