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Optimization of mammography with respect to anatomical noise

机译:乳腺X线摄影在解剖噪声方面的优化

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Beam quality optimization in mammography traditionally considers detection of a target obscured by quantum noise on a homogenous background. It can be argued that this scheme does not correspond well to the clinical imaging task because real mammographic images contain a complex superposition of anatomical structures, resulting in anatomical noise that may dominate over quantum noise. Using a newly developed spectral mammography system, we measured the correlation and magnitude of the anatomical noise in a set of mammo-grams. The results from these measurements were used as input to an observer-model optimization that included quantum noise as well as anatomical noise. We found that, within this framework, the detectability of tumors and microcalcifications behaved very differently with respect to beam quality and dose. The results for small microcalcifications were similar to what traditional optimization methods would yield, which is to be expected since quantum noise dominates over anatomical noise at high spatial frequencies. For larger tumors, however, low-frequency anatomical noise was the limiting factor. Because anatomical structure has similar energy dependence as tumor contrast, optimal x-ray energy was significantly higher and the useful energy region wider than traditional methods suggest. Measurements on a tissue phantom confirmed these theoretical results. Furthermore, since quantum noise constitutes only a small fraction of the noise, the dose could be reduced substantially without sacrificing tumor detectability. Exposure settings used clinically are therefore not necessarily optimal for this imaging task. The impact of these findings on the mammographic imaging task as a whole is, however, at this stage unclear.
机译:乳房X线照相中的光束质量优化传统上考虑了在同质背景上被量子噪声模糊的目标的检测。可以认为该方案对临床成像任务不适用于临床成像任务,因为真实的乳房X线图像包含解剖结构的复杂叠加,导致解剖噪声可以使量子噪声支配。使用新开发的光谱乳房X线摄影系统,我们测量了一组乳房克中的解剖噪声的相关性和幅度。这些测量结果的结果被用作观察者模型优化的输入,包括量子噪声以及解剖噪声。我们发现,在该框架内,肿瘤和微钙化的可检测性相对于光束质量和剂量表现得非常不同。小微钙化的结果类似于传统的优化方法将产生的,这是预期的,因为量子噪声在高空间频率下占据解剖噪声。然而,对于较大的肿瘤,低频解剖噪声是限制因素。因为解剖结构具有与肿瘤对比度相似的能量依赖性,所以最佳的X射线能量显着升高,并且比传统方法宽的有用能量区域提出。组织幻像上的测量证实了这些理论结果。此外,由于量子噪声仅构成噪声的一小部分,所以剂量可以基本上减少而不牺牲肿瘤可检测性。因此,临床上使用的曝光设置不一定对该成像任务最佳。然而,这些发现对整个乳房X光学成像任务的影响是在此阶段不清楚。

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