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首页> 外文期刊>Journal of Medical Imaging and Health Informatics >A Novel Fusion Approach for Early Lung Cancer Detection Using Computer Aided Diagnosis Techniques
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A Novel Fusion Approach for Early Lung Cancer Detection Using Computer Aided Diagnosis Techniques

机译:一种使用计算机辅助诊断技术的早期肺癌检测的新型融合方法

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Computer Aided Diagnosis (CAD) plays an effective and important role in radiology. It provides second opinion to the radiologists during patient image assessment. In this work, early detection of lung cancer is chosen for the study. Computed tomography is one of the normally preferred modality to record the interior body parts, particularly lungs. Recent advances in radiology also supports to record the two dimensional (2D) and three dimensional (3D) images of lungs which is associated with the abnormality, such as lesion/tumor. The main clinical challenge is to develop a suitable CAD system and Content Supported Medical Image Retrieval (CSMIR) system to extract and analyze the lesion/tumor from 2D and 3D radiology images. Hence, it is essential to develop an automated system with the following capability: detection, categorization and quantification of the lung lesion/tumor. In the proposed work, lung abnormality is segmented using the wavelet approach and the segmented Region of Interest (ROI) is then classified using a novel classifier unit. The experimental result confirms that, proposed approach offers enhanced accuracy and specificity compared with the other methods considered in this study.
机译:计算机辅助诊断(CAD)在放射学中起着有效和重要的作用。在患者图像评估期间,它向放射科医师提供第二意见。在这项工作中,选择早期检测肺癌进行研究。计算机断层扫描是记录内部主体部件,特别是肺部的常优选的模型之一。放射学的最新进展也支持记录与异常相关的肺部的二维(2D)和三维(3D)图像,例如病变/肿瘤。主要临床挑战是​​开发合适的CAD系统和含量支持的医学图像检索(CSMIR)系统,以从2D和3D放射学图像中提取和分析病变/肿瘤。因此,必须具有以下能力的自动化系统:肺病变/肿瘤的检测,分类和定量。在所提出的工作中,使用小波方法分割肺异常,然后使用新颖的分类器单元对感兴趣的分段(ROI)进行分割。实验结果证实,与本研究中考虑的其他方法相比,提出的方法提供了增强的准确性和特异性。

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