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Detection and Severity Scoring of Chronic Obstructive Pulmonary Disease Using Volumetric Analysis of Lung CT Images
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نویسنده
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Hosseini Mohammad Parsa ,Soltanian-Zadeh Hamid ,Akhlaghpoor Shahram
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منبع
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iranian journal of radiology - 2012 - دوره : 9 - شماره : 1 - صفحه:22 -27
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چکیده
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Background: chronic obstructive pulmonary disease (copd) is a devastating disease. while there is no cure for copd and the lung damage associated with this disease cannot be reversed, it is still very important to diagnose it as early as possible. objectives: in this paper, we propose a novel method based on the measurement of air trapping in the lungs from ct images to detect copd and to evaluate its severity. patients and methods: twenty-five patients and twelve normal adults were included in this study. the proposed method found volumetric changes of the lungs from inspira- tion to expiration. to this end, trachea ct images at full inspiration and expiration were compared and changes in the areas and volumes of the lungs between inspiration and expiration were used to define quantitative measures (features). using these features, the subjects were classified into two groups of normal and copd patients using a bayes- ian classifier. in addition, t-tests were applied to evaluate discrimination powers of the features for this classification. results: for the cases studied, the proposed method estimated air trapping in the lungs from ct images without human intervention. based on the results, a mathematical mod- el was developed to relate variations of lung volumes to the severity of the disease. conclusions: as a computer aided diagnosis (cad) system, the proposed method may assist radiologists in the detection of copd. it quantifies air trapping in the lungs and thus may assist them with the scoring of the disease by quantifying the severity of the disease.
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کلیدواژه
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Pulmonary Disease ,Chronic Obstructive Diagnosis ,Computer-Assisted Tomography ,X-Ray Computed Lung
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آدرس
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islamic azad university, Department of Electrical and Computer Engineering, ایران, Henry Ford Health System, Image Analysis Laboratory, Department of Radiology, USA. university of tehran, School of Electrical and Computer Engineering, Control and Intelligent Processing Center of Excellence, ایران, tehran university of medical sciences tums, Sina Hospital, Department of Radiology, ایران
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پست الکترونیکی
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mp.hosseini@ymail.com
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Authors
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