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利用相邻像素的相关性提高小儿头部 CT 图像的灰阶差异。

Using Correlative Properties of Neighboring Pixels to Improve Gray-White Differentiation in Pediatric Head CT Images.

机构信息

From the Department of Interventional Neuroradiology (T.P.M.), Emory University Hospital, Atlanta, Georgia

Mallinckrodt Institute of Radiology (A.S., C.H., M.P.), Washington University School of Medicine, Washington University, St. Louis, Missouri.

出版信息

AJNR Am J Neuroradiol. 2018 Mar;39(3):577-582. doi: 10.3174/ajnr.A5506. Epub 2018 Jan 11.

Abstract

BACKGROUND AND PURPOSE

A lower radiation dose can have a detrimental effect on the quality of head CT images. The aim of this study performed in a pediatric population was to test whether an image-processing algorithm (Correlative Image Enhancement) based on the correlation among intensities of neighboring pixels can improve gray-white differentiation in head CTs.

MATERIALS AND METHODS

Sixty baseline head CT images with normal findings obtained from scans of 30 children were processed using Correlative Image Enhancement to produce corresponding enhanced images. Gray-white differentiation in baseline and enhanced images was assessed quantitatively by calculating the contrast-to-noise ratio and conspicuity in equivalent ROIs in gray and white matter. Two masked readers rated the images for visibility of gray-white differentiation on a 5-point Likert scale. Differences in both quantitative and qualitative measures of gray-white differentiation between baseline and enhanced images were tested for statistical significance. values < .05 were considered significant.

RESULTS

Image processing resulted in improvement in the contrast-to-noise ratio (from 1.86 ± 0.94 to 2.26 ± 1.00, = .02) as well as conspicuity (from 37.28 ± 11.56 to 46.4 ± 11.5, < .001). This was accompanied by improved subjective visibility of gray-white differentiation as reported by both readers ( < .01).

CONCLUSIONS

Image processing using Correlative Image Enhancement had a beneficial effect on quantitative measures of gray-white differentiation. This translated into improved perception of gray-white differentiation by readers. Further studies are needed to assess the effect of such image processing on the detection of disease processes using head CTs.

摘要

背景与目的

较低的辐射剂量可能会对头部 CT 图像的质量产生不利影响。本研究旨在测试一种基于相邻像素强度相关性的图像处理算法(相关图像增强)是否可以改善头部 CT 中的灰白质分化,研究对象为儿科人群。

材料与方法

对 30 名儿童的正常头部 CT 扫描获得的 60 个基线头部 CT 图像进行相关图像增强处理,生成相应的增强图像。通过计算灰质和白质等效 ROI 中的对比度噪声比和显著度,对基线和增强图像的灰白质分化进行定量评估。两名掩蔽读者使用 5 分制 Likert 量表对图像的灰白质分化可视性进行评分。对基线和增强图像的灰白质分化的定量和定性指标进行差异检验, <.05 认为差异有统计学意义。

结果

图像处理后,对比度噪声比(从 1.86 ± 0.94 提高至 2.26 ± 1.00, =.02)和显著度(从 37.28 ± 11.56 提高至 46.4 ± 11.5, <.001)均得到改善。两位读者都报告说,灰白质分化的主观可视性得到改善( <.01)。

结论

使用相关图像增强的图像处理对灰白质分化的定量测量有有益的影响。这转化为读者对灰白质分化的感知改善。需要进一步研究评估这种图像处理对头 CT 中疾病过程检测的影响。

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