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Lung Based Disease Prediction Using Lobe Segmentation Based on Neural Networks

Publication Type : Journal Article

Source : International Journal of Pure and Applied Mathematics, Vol. 118, No. 8, 2018. (IF:0.29) 17.

Url : https://acadpubl.eu/jsi/2018-118-7-9/articles/8/71.pdf

Campus : Chennai

School : School of Computing

Department : Computer Science and Engineering

Abstract : Segmentation of pix has emerge as essential and helpful device used for plenty technical applications similar to lungs segmentation since Lung videos, scientific imaging and lots of other put up processing strategies. Lung cancer is the number one reason of death intended for each sex within maximum international locations. Lung nodule, an irregularity which ends up in lung cancer is detect by using different therapeutic imaging technique similar to X-ray, Computerized Tomography (CT), and so forth. Exposure of lung nodules is a demanding venture because the nodules are typically attach toward the blood vessels. This paper proposes an automated lung lobe segmentation technique within a supervised manner. The lung photo is specified at the same time as enter and the lung photo is segmented the usage of convolutional neural community approach. Then Fissure places are extracted the use of layer preparation and similar development. Lastly the lung lobes are segmented and obvious as being lobes. The primary modules of this planned approach are CNN based totally lung segmentation, Fissure improvement, fissure detection and Lung lobe segmentation. This intended technique is able to be used to discover the absent fissures and imprecise fissures also. This planned approach is operating based totally on schooling of fissure facts and recognition is executed in keeping with the educated vectors. The planned technique segments the lung lobes through excessive presentation and elevated pace.

Cite this Research Publication : P.Santhi, S.Kiruthika,”Lung Based Disease Prediction Using Lobe Segmentation Based on Neural Networks”, International Journal of Pure and Applied Mathematics, Vol. 118, No. 8, 2018. (IF:0.29) 17

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