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Using Anatomic Magnetic Resonance Image Information to Enhance Visualization and Interpretation of Functional Images: A Comparison of Methods Applied to Clinical Arterial Spin Labeling Images

机译:使用解剖磁共振图像信息来增强功能图像的可视化和解释:临床动脉自旋标记图像方法的比较

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摘要

Functional imaging provides hemodynamic and metabolic information and is increasingly being incorporated into clinical diagnostic and research studies. Typically functional images have reduced signal-to-noise ratio and spatial resolution compared to other non-functional cross sectional images obtained as part of a routine clinical protocol. We hypothesized that enhancing visualization and interpretation of functional images with anatomic information could provide preferable quality and superior diagnostic value. In this work, we implemented five methods (frequency addition, frequency multiplication, wavelet transform, non-subsampled contourlet transform and intensity-hue-saturation) and a newly proposed ShArpening by Local Similarity with Anatomic images (SALSA) method to enhance the visualization of functional images, while preserving the original functional contrast and quantitative signal intensity characteristics over larger spatial scales. Arterial spin labeling blood flow MR images of the brain were visualization enhanced using anatomic images with multiple contrasts. The algorithms were validated on a numerical phantom and their performance on images of brain tumor patients were assessed by quantitative metrics and neuroradiologist subjective ratings. The frequency multiplication method had the lowest residual error for preserving the original functional image contrast at larger spatial scales (55%–98% of the other methods with simulated data and 64%–86% with experimental data). It was also significantly more highly graded by the radiologists (p<0.005 for clear brain anatomy around the tumor). Compared to other methods, the SALSA provided 11%–133% higher similarity with ground truth images in the simulation and showed just slightly lower neuroradiologist grading score. Most of these monochrome methods do not require any prior knowledge about the functional and anatomic image characteristics, except the acquired resolution. Hence, automatic implementation on clinical images should be readily feasible.
机译:功能成像可提供血液动力学和代谢信息,并且越来越多地被纳入临床诊断和研究中。与作为常规临床方案一部分而获得的其他非功能性横截面图像相比,功能性图像通常具有降低的信噪比和空间分辨率。我们假设,通过解剖信息增强功能图像的可视化和解释可以提供更好的质量和优越的诊断价值。在这项工作中,我们实现了五种方法(频率加法,频率乘法,小波变换,非下采样轮廓波变换和强度色相饱和)和新提出的“通过局部相似度与解剖图像进行舍入”(SALSA)方法,以增强图像的可视化功能图像,同时在更大的空间尺度上保留原始功能对比和定量信号强度特征。使用具有多种对比的解剖图像,可以增强大脑的动脉自旋标记血流MR图像。该算法在数字模型上进行了验证,并通过定量指标和神经放射科医生的主观评估来评估其在脑肿瘤患者图像上的表现。频率乘法法在较大的空间尺度上保留原始功能图像对比度的残留误差最低(使用模拟数据的其他方法为55%–98%,使用实验数据的为64%–86%)。放射科医生对它的评分也明显更高(对于肿瘤周围清晰的大脑解剖结构,p <0.005)。与其他方法相比,SALSA与地面实况图像在模拟中的相似度提高了11%–133%,并且神经放射科医生的评分稍低。除了获得的分辨率外,大多数这些单色方法不需要任何有关功能和解剖图像特征的先验知识。因此,在临床图像上自动实施应该是容易可行的。

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