2018
DOI: 10.11591/ijeei.v6i3.592
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A Hybrid Approach of Using Particle Swarm Optimization and Volumetric Active Contour without Edge for Segmenting Brain Tumors in MRI Scan

Abstract: Segmentation of brain tumors in magnetic resonance imaging is a one of the most complex processes in medical image analysis because it requires a combination of data knowledge with domain knowledge to achieve highly results. Such that, the data knowledge refers to homogeneity, continuity, and anatomical texture. While the domain knowledge refers to shapes, location, and size of the tumor to be delineated. Due to recent advances in medical imaging technologies which produce a massive number of cross-sectional s… Show more

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Cited by 10 publications
(12 citation statements)
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“…Regularly, the competence of sophisticated image processing techniques [1]- [4], such as super resolution [5], remote sensing [6], and medical imaging [7]- [9], are definitely susceptible from noise thereupon noise suppressing technique [10]- [20] are become an irresistible momentous process. Theoretically, the noise suppressing technique regularly constructs the undesirable effect such as blurring effect or detail losing thereupon the fundamental intention of noise suppressing technique is for concealing noise from noisy photograph whereas protecting detail.…”
Section: Liturature Reviewmentioning
confidence: 99%
“…Regularly, the competence of sophisticated image processing techniques [1]- [4], such as super resolution [5], remote sensing [6], and medical imaging [7]- [9], are definitely susceptible from noise thereupon noise suppressing technique [10]- [20] are become an irresistible momentous process. Theoretically, the noise suppressing technique regularly constructs the undesirable effect such as blurring effect or detail losing thereupon the fundamental intention of noise suppressing technique is for concealing noise from noisy photograph whereas protecting detail.…”
Section: Liturature Reviewmentioning
confidence: 99%
“…Then PSO is performed to identify the pathological regions followed by contour without edge method. The method showed an accuracy of 92% in comparison to the manual description [15]. Karegowda et al in 2018 evaluated various image segmentation approaches for precise identification of tumor region in MRI scans.…”
Section: Eai Endorsed Transactions On Pervasive Health and Technologymentioning
confidence: 99%
“…Prior to subjecting individual slices of MRI scans to any type of statistical analysis, a set of pre-processing algorithms are commonly implemented to reduce the impact of random variations in intensity of MRI slices and noise that may result from patient motion, respiration, anxiety or from the scanner itself. Generally, image preprocessing includes image enhancement; MRI slices resizing, which is essentially needed when the images are collected from different MRI scanners; as well as the intensity normalization, which is used to reduce the impact of intra-scan and inter-scan variations [2], [25]- [27]. Moreover, sometimes mid-sagittal plane detection and correction (MSP) is required and considered as a prior step for estimating the tumor detection.…”
Section: A Mri Scan Preprocessingmentioning
confidence: 99%