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Image quality assessment for medical images based on gradient information

机译:基于梯度信息的医学图像图像质量评估

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Natural and medical images may have a variety of distortions which may result in a degradation of visual quality. Image quality assessment (IQA) plays an important role in many image processing tasks to quantitatively measure image quality. Although several IQA methods have been developed for decades, each method has its individual characteristic and there is a few researches focusing on the development of quality assessment in a specific type of image such as medical images. We propose a new IQA method based on image gradient which is sensitive to the changed detail in images. This metric computed the similarity of gradient direction and also apply gradient magnitude information to weight these similarity values in pooling process. Experimental results demonstrate that this metric performs well especially in the distortion types that effect to image detail and can be used as the complementary part to the other IQA metrics for evaluating medical images quality.
机译:自然和医学图像可能具有各种扭曲,这可能导致视觉质量的劣化。图像质量评估(IQA)在许多图像处理任务中起重要作用,以定量测量图像质量。虽然几十年来开发了几种IQA方法,但各种方法都有其个性特征,并且有一些研究专注于在诸如医学图像的特定类型的图像中的质量评估的发展。我们提出了一种基于图像梯度的新IQA方法,这对图像中的更改细节敏感。该度量计算梯度方向的相似性,并且还将梯度幅度信息应用​​于池处理过程中的这些相似性值。实验结果表明,该度量尤其在对图像细节施加的失真类型中表现良好,并且可以用作用于评估医学图像质量的其他IQA度量的互补部分。

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