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中文摘要
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描述(由申请人提供): 本研究的目的是开发和评估一种新的计算机辅助决策(CAD)方案,以提高乳腺肿块的临床检测筛查乳腺X线照片。CAD方案结合信息理论的相似性度量与基于知识的决策算法。它将帮助放射科医生仔细检查乳房X光片,提供基于证据的决策支持。给定查询乳房X线摄影区域,CAD系统将询问存档乳房X线摄影的数据库,检查类似病例,并分配关于潜在恶性肿块存在的可能性度量。 该研究提出了制定信息理论的指标来量化两个乳房摄影区域的相似性。相似性度量基于Sharmon熵;图像中包含的复杂性(或信息)的度量。从理论上讲,如果两个乳房X线摄影区域描绘了相似的结构,它们应该包含彼此的诊断信息。相关诊断信息的量可以通过基于熵的相似性度量来测量,该相似性度量直接从图像计算而不需要分割或特征提取。使用的相似性度量和图像数据库的乳腺X线摄影的情况下,与已知的真相,知识总线的CAD计划将被实施用于检测群众在筛查乳腺X线摄影。初步研究表明,标准互信息(MI)是一个有效的相似性度量的任务。 本研究的具体目的是:(1)充分利用测量两个乳房X线摄影区域相似内容的信息理论指标,(2)优化其在循证决策算法中的贡献,以早期检测潜在的恶性肿块,(3)对CAD系统进行初步临床评价。 由于数字图像库是放射学的一个即将到来的趋势,因此所提出的CAD系统将利用具有已建立的基础事实的连续沉积的乳房X线照片。该系统旨在减少与筛查乳腺X线摄影相关的判读错误和/或提示CAD方案产生的假阳性。总体而言,该研究旨在提高灵敏度,同时保持或提高筛查乳腺X线摄影对肿块的特异性。
英文摘要
DESCRIPTION (provided by applicant): The purpose of the study is to develop and evaluate a novel computer-assisted decision (CAD) scheme for improving the clinical detection of breast masses in screening mammograms. The CAD scheme combines information-theoretic similarity metrics with knowledge-based decision algorithms. It will help radiologists scrutinize mammograms providing evidence-based decision support. Given a query mammographic region, the CAD system will interrogate a database of archived mammograms, examine similar eases, and assign a likelihood measure regarding the presence of a potentially malignant mass. The study proposes the formulation of information-theoretic metrics to quantify the similarity of two mammographic regions. The similarity metrics are based on Sharmon's entropy; a measure of complexity (or information) contained in an image. Theoretically, if two mammographic regions depict similar structures, they should contain diagnostic information for each other. The amount of relevant diagnostic information can be measured by entropy-based similarity metrics that are computed directly from the images without requiring segmentation or feature extraction. Using the similarity metrics and an image databank of mammographic cases with known truth, a knowledge-bussed CAD scheme will be implemented for the detection of masses in screening mammograms. Preliminary studies have established that standard mutual information (MI) is an effective similarity metric for the task. The specific aims of the study are: (1) To fully exploit information-theoretic metrics that measure the similar content of two mammographic regions, (2) To optimize their contributions in an evidence-based decision algorithm for the early detection of potentially malignant masses, and (3) To perform preliminary clinical evaluation of the CAD system. As digital image libraries are an upcoming trend in radiology, the proposed CAD system will take advantage of continuously deposited mammograms with established ground truth. The system aims to reduce the interpretation error associated with screening mammograms and/or the false positives generated by cuing CAD schemes, Overall, the study aims to improve the sensitivity while maintaining or improving the specificity of screening mammography for masses.
期刊论文(13)
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DOI: 10.1118/1.3132304
发表时间: 2009-07
期刊: Medical physics
影响因子: 3.8
作者: [M. Mazurowski;J. Zurada;G. Tourassi]
通讯作者: M. Mazurowski;J. Zurada;G. Tourassi
Probabilistic framework for reliability analysis of information-theoretic CAD systems in mammography.
乳腺 X 线摄影中信息理论 CAD 系统可靠性分析的概率框架。
DOI: 10.1109/iembs.2006.260500
发表时间: 2006
期刊: Conference proceedings : ... Annual International Conference of the IEEE Engineering in Medicine and Biology Society. IEEE Engineering in Medicine and Biology Society. Annual Conference
影响因子: --
作者: [Habas,PiotrA, Zurada,JacekM, Elmaghraby,AdelS, Tourassi,GeorgiaD]
通讯作者: Tourassi,GeorgiaD
Reliability analysis framework for computer-assisted medical decision systems.
计算机辅助医疗决策系统的可靠性分析框架。
DOI: 10.1118/1.2432409
发表时间: 2007
期刊: Medical physics
影响因子: 3.8
作者: [Habas,PiotrA, Zurada,JacekM, Elmaghraby,AdelS, Tourassi,GeorgiaD]
通讯作者: Tourassi,GeorgiaD
Automated breast mass detection in 3D reconstructed tomosynthesis volumes: a featureless approach.
3D 重建断层合成体积中的自动乳腺肿块检测:一种无特征的方法。
DOI: 10.1118/1.2953562
发表时间: 2008
期刊: Medical physics
影响因子: 3.8
作者: [Singh,Swatee, Tourassi,GeorgiaD, Baker,JayA, Samei,Ehsan, Lo,JosephY]
通讯作者: Lo,JosephY
共 7 条
    A Cyber-Informatics Approach to Studying Migration and Environmental Cancer Risk
    A Cyber-Informatics Approach to Studying Migration and Environmental Cancer Risk
    A Cyber-Informatics Approach to Studying Migration and Environmental Cancer Risk
    Information-Theoretic Based CAD in Mammography
    • 批准号:
      7009310
    • 项目类别:
    • 资助金额:
      $23.76万
    • 财政年份:
      2005
    • 负责人:
      Georgia Tourassi
    • 依托单位:
    海外基金