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Estimating subjective evaluation of low?contrast resolution using convolutional neural networks

机译:估计主观评价低?利用卷积神经网络解决

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摘要

To develop a convolutional neural network-based method for the subjective evaluation of computed tomography (CT) images having low-contrast resolution due to imaging conditions and nonlinear image processing. Four radiological technologists visually evaluated CT images that were reconstructed using three nonlinear noise reduction processes (AIDR 3D, AIDR 3D Enhanced, AiCE) on a CT system manufactured by CANON. The visual evaluation consisted of two items: low contrast detectability (score: 0-9) and texture pattern (score: 1-5). Four AI models with different convolutional and max pooling layers were constructed and trained on pairs of CANON CT images and average visual assessment scores of four radiological technologists. CANON CT images not used for training were used to evaluate prediction performance. In addition, CT images scanned with a SIEMENS CT system were input to each AI model for external validation. The mean absolute error and correlation coefficients were used as evaluation metrics. Our proposed AI model can evaluate low-contrast detectability and texture patterns with high accuracy, which varies with the dose administered and the nonlinear noise reduction process. The proposed AI model is also expected to be suitable for upcoming reconstruction algorithms that will be released in the future.
机译:开发一个卷积神经网络方法计算的主观评价断层扫描(CT)图像低对比度由于成像条件和决议非线性图像处理。技术人员直观地评价CT图像重建使用三个非线性噪声减少流程(AIDR 3 d, AIDR 3 d增强,AiCE) CT系统由佳能制造。视觉评估包括两项:低对比检测能力(得分:0 - 9)和纹理模式(分数:1 - 5)。不同的卷积和最大池层构造和训练对佳能CT吗图像和视觉评估分数的平均水平四个放射技术人员。不用于训练被用来评估预测性能。与西门子CT扫描系统的输入每个AI模型外部验证。绝对误差和相关系数作为评价指标。可以评估低对比度的检测能力和纹理模式精度高,各不相同剂量和非线性降噪过程。也将适合即将到来重建算法,将被释放在未来。

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