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Content Based Image Retrieval Approach in Creating an Effective Feature Index for Lung Nodule Detection with the Inclusion of Expert Knowledge and Proven Pathology

机译:基于内容的图像检索方法在创建有效的肺结节检测特征指标时要结合专家知识和经过验证的病理学

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The paper investigates four major issues in the active field of lung computer aided diagnosis (CAD) using content-based image retrieval (CBIR), which are: creating an efficient feature index for lung nodules for similarity measures, database creation of nodules with proven pathology, robust CBIR system and present a self-diagnosing environment to assist the physician in taking the right decision at right time. The results definitely improves the radiologists performance of detecting suspicious nodules based on the ground truth prepared. CBIR has been implemented to expand the small ground truth of 17 nodules to ground truth of 114 nodules based on available biopsy report. Nine out of 83 different extracted features have been considered as the best discriminating features to classify the lung nodules in three classes: Malignant, Benign and Metastasis. LIDC database has been analysed and achieved an average precision of 92.8% , mean average precision (MAP) of 82% at recall 0.1 and an average precision of 88% with PGIMER, Chandigarh. Results in this paper also indicate that the unnecessary biopsies can be avoided as the results are having few number of false positives which can directly increase the specificity of the proposed research.
机译:本文研究了使用基于内容的图像检索(CBIR)进行的肺部计算机辅助诊断(CAD)活跃领域中的四个主要问题,这些问题是:为肺结节创建有效的特征指标以进行相似性测量,数据库创建具有经过验证的病理结果的结节,强大的CBIR系统,并提供了一种自我诊断环境,可以帮助医生在正确的时间做出正确的决定。结果肯定会提高放射科医生根据准备的地面真相检测可疑结核的性能。根据现有的活检报告,已经实施了CBIR,以将17个结节的微小地面真相扩展到114个结节的地面实相。 83种不同的提取特征中有9种被认为是将肺结节分为三类的最佳区分特征:恶性,良性和转移。已对LIDC数据库进行了分析,在PGIMER Chandigarh处,其平均精度为92.8%,召回率为0.1时的平均精度为82%,平均精度为88%。本文的结果还表明,可以避免不必要的活检,因为结果假阳性的数量很少,可以直接增加拟议研究的特异性。

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