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AN EFFICIENT ALGORITHMIC SOLUTION FOR AUTOMATIC SEGMENTATION OF LUNGS FROM CT IMAGES

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dc.contributor.author F. Shaukat
dc.contributor.author G. Raja
dc.date.accessioned 2023-03-14T06:07:24Z
dc.date.available 2023-03-14T06:07:24Z
dc.date.issued 2018-03-10
dc.identifier.citation Shaukat, F. (2018). An Efficient Algorithmic Solution for automatic Segmentation of Lungs from CT images. Pakistan Journal of Science, 70(1), 71-78. en_US
dc.identifier.issn 0300-9877
dc.identifier.uri http://142.54.178.187:9060/xmlui/handle/123456789/19086
dc.description.abstract A novel technique for lung segmentation from input Computed Tomography (CT) images using optimal hresholding was developed. Initially, the CT image was segmented by optimal thresholding. The lung volume was obtained using connected component labeling method by removing irrelevant information. The resultant image contained holes which were filled by morphological operations. A novel technique to separate the lungs was introduced which effectively separated the right and left lungs. Finally, the lung contour was smoothed by rolling ball algorithm to include any juxta pleural nodules. The proposed system was evaluated using 84 scans of publicly available dataset Lung Image Database Consortium (LIDC). The proposed system achieved an overlap measure of 0.985 and the root mean square difference between the proposed method and ground truth was 0.47 mm. en_US
dc.language.iso en en_US
dc.publisher Lahore: Pakistan Association For The Advancement Of Science en_US
dc.subject Lung segmentation en_US
dc.subject Optimal thresholding en_US
dc.subject Computer aided detection en_US
dc.subject Lung image database consortium en_US
dc.title AN EFFICIENT ALGORITHMIC SOLUTION FOR AUTOMATIC SEGMENTATION OF LUNGS FROM CT IMAGES en_US
dc.type Article en_US


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