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A consistency evaluation of signal-to-noise ratio in the quality assessment of human brain magnetic resonance images

机译:人脑磁共振图像质量评估中信噪比的一致性评估

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Quality assessment of medical images is highly related to the quality assurance, image interpretation and decision making. As to magnetic resonance (MR) images, signal-to-noise ratio (SNR) is routinely used as a quality indicator, while little knowledge is known of its consistency regarding different observers. In total, 192, 88, 76 and 55 brain images are acquired using T2*, T1, T2 and contrast-enhanced T1 (T1C) weighted MR imaging sequences, respectively. To each imaging protocol, the consistency of SNR measurement is verified between and within two observers, and white matter (WM) and cerebral spinal fluid (CSF) are alternately used as the tissue region of interest (TOI) for SNR measurement. The procedure is repeated on another day within 30?days. At first, overlapped voxels in TOIs are quantified with Dice index. Then, test-retest reliability is assessed in terms of intra-class correlation coefficient (ICC). After that, four models (BIQI, BLIINDS-II, BRISQUE and NIQE) primarily used for the quality assessment of natural images are borrowed to predict the quality of MR images. And in the end, the correlation between SNR values and predicted results is analyzed. To the same TOI in each MR imaging sequence, less than 6% voxels are overlapped between manual delineations. In the quality estimation of MR images, statistical analysis indicates no significant difference between observers (Wilcoxon rank sum test, p w ≥?0.11; paired-sample t test, p p ≥?0.26), and good to very good intra- and inter-observer reliability are found (ICC, p icc ≥?0.74). Furthermore, Pearson correlation coefficient (r p ) suggests that SNRwm correlates strongly with BIQI, BLIINDS-II and BRISQUE in T2* (r p ≥?0.78), BRISQUE and NIQE in T1 (r p ≥?0.77), BLIINDS-II in T2 (r p ≥?0.68) and BRISQUE and NIQE in T1C (r p ≥?0.62) weighted MR images, while SNRcsf correlates strongly with BLIINDS-II in T2* (r p ≥?0.63) and in T2 (r p ≥?0.64) weighted MR images. The consistency of SNR measurement is validated regarding various observers and MR imaging protocols. When SNR measurement performs as the quality indicator of MR images, BRISQUE and BLIINDS-II can be conditionally used for the automated quality estimation of human brain MR images.
机译:医学图像的质量评估与质量保证,图像解释和决策高度相关。对于磁共振(MR)图像,通常将信噪比(SNR)用作质量指标,而对其不同观察者的一致性知之甚少。总共分别使用T2 *,T1,T2和对比增强的T1(T1C)加权MR成像序列采集了192、88、76和55个脑部图像。对于每种成像协议,在两个观察者之间和之内验证了SNR测量的一致性,并且白质(WM)和脑脊髓液(CSF)交替用作SNR测量的目标组织区域(TOI)。在30天之内的另一天重复该过程。首先,使用Dice索引对TOI中的重叠体素进行量化。然后,根据组内相关系数(ICC)评估重测可靠性。之后,借用了主要用于自然图像质量评估的四个模型(BIQI,BLIINDS-II,BRISQUE和NIQE)来预测MR图像的质量。最后,分析了SNR值与预测结果之间的相关性。对于每个MR成像序列中相同的TOI,手动描绘之间重叠的像素少于6%。在MR图像的质量估计中,统计分析表明观察者之间没有显着差异(Wilcoxon秩和检验,pw≥?0.11;配对样本t检验,pp≥?0.26),观察者之间和观察者之间的差异非常好。发现可靠性(ICC,p icc≥0.74)。此外,Pearson相关系数(rp)表示SNRwm与T2 *中的BIQI,BLIINDS-II和BRISQUE(rp≥?0.78),T1中的BRISQUE和NIQE(rp≥?0.77),T2中的BLIINDS-II有很强的相关性(rp T1C(rp≥?0.62)加权MR图像中的BRISQUE和NIQE≥?0.68),而T2 *(rp≥?0.63)和T2(rp≥?0.64)加权MR图像中SNRcsf与BLIINDS-II密切相关。 SNR测量的一致性已针对各种观察者和MR成像协议进行了验证。当SNR测量作为MR图像的质量指标时,可以有条件地将BRISQUE和BLIINDS-II用于人脑MR图像的自动质量估计。

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