4.5 Article

Rouleaux red blood cells splitting in microscopic thin blood smear images via local maxima, circles drawing, and mapping with original RBCs

期刊

MICROSCOPY RESEARCH AND TECHNIQUE
卷 81, 期 7, 页码 737-744

出版社

WILEY
DOI: 10.1002/jemt.23030

关键词

clumped RBCs; overlapped RBCs; preprocessing; Rouleaux RBCs splitting

资金

  1. Machine Learning Research Group
  2. Prince Sultan University
  3. Saudi Arabia [RG-CCIS-2017-06-02]

向作者/读者索取更多资源

Splitting the rouleaux RBCs from single RBCs and its further subdivision is a challenging area in computer-assisted diagnosis of blood. This phenomenon is applied in complete blood count, anemia, leukemia, and malaria tests. Several automated techniques are reported in the state of art for this task but face either under or over splitting problems. The current research presents a novel approach to split Rouleaux red blood cells (chains of RBCs) precisely, which are frequently observed in the thin blood smear images. Accordingly, this research address the rouleaux splitting problem in a realistic, efficient and automated way by considering the distance transform and local maxima of the rouleaux RBCs. Rouleaux RBCs are splitted by taking their local maxima as the centres to draw circles by mid-point circle algorithm. The resulting circles are further mapped with single RBC in Rouleaux to preserve its original shape. The results of the proposed approach on standard data set are presented and analyzed statistically by achieving an average recall of 0.059, an average precision of 0.067 and F-measure 0.063 are achieved through ground truth with visual inspection.

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