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首页> 外文期刊>Medical image analysis >Performance analysis of a new computer aided detection system for identifying lung nodules on chest radiographs.
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Performance analysis of a new computer aided detection system for identifying lung nodules on chest radiographs.

机译:一种新的计算机辅助检测系统的性能分析,该系统可在胸片上识别肺结节。

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A new computer aided detection (CAD) system is presented for the detection of pulmonary nodules on chest radiographs. Here, we present the details of the proposed algorithm and provide a performance analysis using a publicly available database to serve as a benchmark for future research efforts. All aspects of algorithm training were done using an independent dataset containing 167 chest radiographs with a total of 181 lung nodules. The publicly available test set was created by the Standard Digital Image Database Project Team of the Scientific Committee of the Japanese Society of Radiological Technology (JRST). The JRST dataset used here is comprised of 154 chest radiographs containing one radiologist confirmed nodule each (100 malignant cases, 54 benign cases). The CAD system uses an active shape model for anatomical segmentation. This is followed by a new weighted-multiscale convergence-index nodule candidate detector. A novel candidate segmentation algorithm is proposed that uses an adaptive distance-based threshold. A set of 114 features is computed for each candidate. A Fisher linear discriminant (FLD) classifier is used on a subset of 46 features to produce the final detections. Our results indicate that the system is able to detect 78.1% of the nodules in the JRST test set with and average of 4.0 false positives per image (excluding 14 cases containing lung nodules in retrocardiac and subdiaphragmatic regions of the lung).
机译:提出了一种新的计算机辅助检测(CAD)系统,用于检测胸部X光片上的肺结节。在这里,我们介绍了拟议算法的细节,并使用公开可用的数据库提供性能分析,以作为未来研究工作的基准。使用一个独立的数据集来完成算法训练的所有方面,该数据集包含167个胸部X光片,总共181个肺结节。公开可用的测试集是由日本放射技术学会(JRST)科学委员会的标准数字图像数据库项目小组创建的。此处使用的JRST数据集由154张胸部X射线照片组成,每张照片均包含一名放射科医生确认的结节(100例恶性病例,54例良性病例)。 CAD系统使用主动形状模型进行解剖分割。随后是新的加权多尺度收敛指数结核候选检测器。提出了一种基于距离自适应阈值的候选分割算法。为每个候选者计算一组114个特征。将Fisher线性判别(FLD)分类器用于46个特征的子集,以产生最终检测结果。我们的结果表明,该系统能够在JRST测试集中检测到78.1%的结节,每幅图像平均出现4.0例假阳性(不包括14例在心内膜下和肺下sub区包含肺结节的病例)。

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