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A Fully Automatic Framework to Localize Esophageal Tumor for Radiation Therapy

机译:全自动框架,用于定位食管肿瘤进行放射治疗

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Automatic localization of esophageal tumors is an important part of target volume planning in radiotherapy. Currently, the main localization method is manual localization. Traditional manual positioning is time-consuming and inaccurate for the following reasons. First of all, esophageal neoplasms are irregular in shape. The second, the tumor image was insufficiently contrasted with the surrounding tissue. Also, the tumor area is highly heterogeneous. To solve these problems, this paper proposes an automatic positioning framework combining single point multi-box detector (SSD) with the optimized VGG16 deep learning network. The optimized algorithm network has achieved good results in our esophageal tumor localization experiment. The experimental data consists of 96 esophageal VMAT plans and training set consists of 60 patients, the remaining 36 patient data sets were used as the test set. We trained with 5000 slices and tested with 1000. The experiment result showed the tumor areas of 820 CT slices were effectively located, and the accuracy rate of intersection greater than and (IoU)[6] value was 82%. These promising results suggest that the target area of esophageal tumor can be well located in our optimized framework, which can improve the efficiency and quality of plan making of esophageal tumor radiotherapy.
机译:食管肿瘤的自动定位是放疗中目标体积规划的重要组成部分。目前,主要本地化方法是手动本地化。由于以下原因,传统的手动定位是耗时和不准确的。首先,食管肿瘤的形状不规则。第二,肿瘤图像与周围组织形成对比。而且,肿瘤区域是高度的异质性。为了解决这些问题,本文提出了一种自动定位框架,将单点多箱检测器(SSD)与优化的VGG16深度学习网络相结合。优化的算法网络在食管肿瘤定位实验中取得了良好的效果。实验数据由96个食道VMAT计划和培训集组成,由60名患者组成,剩下的36例患者数据集用作测试集。我们用5000个切片培训并用1000次进行测试。实验结果显示820 CT切片的肿瘤区域有效地定位,并且交叉口的精度率大于和(iou)[6]值为82%。这些有希望的结果表明食管肿瘤的目标区域可以很好地位于我们的优化框架中,这可以提高食管肿瘤放射治疗计划制作的效率和质量。

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