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EXPERIMENTS ON SENSITIVITY OF TEMPLATE MATCHING FOR LUNG NODULE DETECTION IN LOW DOSE CT SCANS

机译:低剂量CT扫描肺结核检测模板​​匹配的敏感性实验

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Template matching is a common approach for detection of lung nodules from CT scans. Templates may take different shapes, size and intensity distribution. The process of nodule detection is essentially two steps: isolation of candidate nodules, and elimination of false positive nodules. The processes of outlining the detected nodules and their classification (i.e., assigning pathology for each nodule) complete the CAD system for early detection of lung nodules. This paper is concerned with the template design and evaluating the effectiveness of the first step in the nodule detection process. The paper will neither address the problem of reducing false positives nor would it deal with nodule segmentation and classification. Only parametric templates are considered. Modeling the gray scale distribution for the templates is based on the prior knowledge of typical nodules extracted by radiologists. The effectiveness of the template matching is investigated by cross validation with respect to the ground truth and is described by hit rate curves indicating the probability of detection as function of shape, size and orientation, if applicable, of the templates. We used synthetic and sample real CT scan images in our experiments. It is found that template matching is more sensitive to additive noise than image blurring when tests conducted on synthetic data. On the sample CT scans small size circular and hollow-circular templates provided comparable results to human experts.
机译:模板匹配是一种常见的方法,用于检测CT扫描的肺结节。模板可能采用不同的形状,大小和强度分布。结节检测的过程基本上是两个步骤:候选结节分离,并消除假阳性结节。概述检测到的结节及其分类的过程(即,为每个结节的分配病理学)完成CAD系统,用于早期检测肺结节。本文涉及模板设计和评估结核检测过程中第一步的有效性。本文既不会解决减少误报的问题,也不会涉及结局分割和分类。只考虑参数模板。模拟模板的灰度分布是基于放射科学家提取的典型结节的先验知识。通过关于地面真理的交叉验证来研究模板匹配的有效性,并通过命中率曲线描述了指示模板的形状,大小和方向的函数的检测概率。我们在我们的实验中使用了合成和样本真实CT扫描图像。发现模板匹配对添加剂噪声比图像模糊更敏感,而在合成数据上进行测试时模糊。在样品上,CT扫描小尺寸圆形和空心 - 圆形模板为人类专家提供了类似的结果。

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