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Optimizing image quality using test signals: trading off blur, noise and contrast

机译:使用测试信号优化图像质量:折衷模糊,噪声和对比度

摘要

Objective image quality assessment (QA) is crucial in order to improve imaging systems and image processing techniques. In medical imaging, model observers that estimate signal detectability, have become widespread and promising as a means to avoid costly human observer experiments. However, signal detectability alone does not give the complete picture: one may also be interested in optimizing several independent quality factors (e.g. contrast, spatial resolution, noise). In recent work, we have proposed the channelized joint observer (CJO), to jointly detect and estimate random parametric signals in images, a so-called signal-known-statistically (SKS) detection task. In this paper, we show how the estimation capabilities of the CJO can be exploited to estimate several image quality factors in degraded images, through signal insertion. By fixing the signal detectability, we illustrate how to benefit from the trade-offs that exist between the different quality factors. Our method is in the first place intended to aid medical image reconstruction techniques and medical display design, although the technique can also be useful in a much wider context.
机译:客观的图像质量评估(QA)对于改善成像系统和图像处理技术至关重要。在医学成像中,估计信号可检测性的模型观察者已经成为一种普遍的方法,并有望避免昂贵的人类观察者实验。但是,仅信号可检测性并不能提供完整的图像:人们可能还希望优化几个独立的质量因数(例如,对比度,空间分辨率,噪声)。在最近的工作中,我们提出了通道化联合观测器(CJO),以联合检测和估计图像中的随机参数信号,这就是所谓的信号已知统计量(SKS)检测任务。在本文中,我们展示了如何通过信号插入来利用CJO的估计功能来估计退化图像中的几个图像质量因子。通过修复信号可检测性,我们说明了如何从不同质量因素之间存在的取舍中受益。我们的方法首先旨在帮助医学图像重建技术和医学展示设计,尽管该技术在更广泛的范围内也很有用。

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