An Architecture for Computer-Aided Detection and Radiologic Measurement of Lung Nodules in Clinical Trials

Author:

Brown Matthew S.1,Pais Richard1,Qing Peiyuan1,Shah Sumit1,McNitt-Gray Michael F.1,Goldin Jonathan G.1,Petkovska Iva1,Tran Lien1,Aberle Denise R.1

Affiliation:

1. Department of Radiological Sciences, David Geffen School of Medicine at UCLA, Los Angeles, CA, U.S.A.

Abstract

Computer tomography (CT) imaging plays an important role in cancer detection and quantitative assessment in clinical trials. High-resolution imaging studies on large cohorts of patients generate vast data sets, which are infeasible to analyze through manual interpretation. In this article we describe a comprehensive architecture for computer-aided detection (CAD) and surveillance on lung nodules in CT images. Central to this architecture are the analytic components: an automated nodule detection system, nodule tracking capabilities and volume measurement, which are integrated within a data management system that includes mechanisms for receiving and archiving images, a database for storing quantitative nodule measurements and visualization, and reporting tools. We describe two studies to evaluate CAD technology within this architecture, and the potential application in large clinical trials. The first study involves performance assessment of an automated nodule detection system and its ability to increase radiologist sensitivity when used to provide a second opinion. The second study investigates nodule volume measurements on CT made using a semi-automated technique and shows that volumetric analysis yields significantly different tumor response classifications than a 2D diameter approach. These studies demonstrate the potential of automated CAD tools to assist in quantitative image analysis for clinical trials.

Publisher

SAGE Publications

Subject

Cancer Research,Oncology

Cited by 4 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. GUI-CAD Tool for Segmentation and Classification of Abnormalities in Lung CT Image;Research Anthology on Improving Medical Imaging Techniques for Analysis and Intervention;2022-09-09

2. GUI-CAD Tool for Segmentation and Classification of Abnormalities in Lung CT Image;International Journal of Biomedical and Clinical Engineering;2019-01

3. Estimating lesion volume in low-dose chest CT: How low can we go?;SPIE Proceedings;2014-03-19

4. A Multi-Functional Interactive Image Processing Tool for Lung CT Images;International Journal of Biomedical and Clinical Engineering;2013-01

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