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Study of color blood image segmentation based on two-stage-improved FCM algorithm / 生物医学工程学杂志
Article in Zh | WPRIM | ID: wpr-249618
Responsible library: WPRO
ABSTRACT
This paper introduces a new method for color blood cell image segmentation based on FCM algorithm. By transforming the original blood microscopic image to indexed image, and by doing the colormap, a fuzzy apparoach to obviating the direct clustering of image pixel values, the quantity of data processing and analysis is enormously compressed. In accordance to the inherent features of color blood cell image, the segmentation process is divided into two stages. (1)confirming the number of clusters and initial cluster centers; (2) altering the distance measuring method by the distance weighting matrix in order to improve the clustering veracity. In this way, the problem of difficult convergence of FCM algorithm is solved, the iteration time of iterative convergence is reduced, the execution time of algarithm is decreased, and the correct segmentation of the components of color blood cell image is implemented.
Subject(s)
Full text: 1 Database: WPRIM Main subject: Algorithms / Image Interpretation, Computer-Assisted / Cytological Techniques / Color / Erythrocytes / Leukocytes / Methods Type of study: Prognostic_studies Limits: Humans Language: Zh Journal: Journal of Biomedical Engineering Year: 2006 Document type: Article
Full text: 1 Database: WPRIM Main subject: Algorithms / Image Interpretation, Computer-Assisted / Cytological Techniques / Color / Erythrocytes / Leukocytes / Methods Type of study: Prognostic_studies Limits: Humans Language: Zh Journal: Journal of Biomedical Engineering Year: 2006 Document type: Article