Publication | Closed Access
New decision support tool for acute lymphoblastic leukemia classification
39
Citations
25
References
2012
Year
EngineeringDiagnosisBiomedical EngineeringDisease ClassificationHematological MalignancyImage AnalysisData MiningPattern RecognitionBiostatisticsK-means ClusteringContrast EnhancementRadiologyMedical ImagingVisual DiagnosisHistopathologyDecision Support SystemsMedical Image ComputingComputer VisionMicroscope Image ProcessingBioimage AnalysisBiomedical ImagingAcute Lymphoblastic LeukemiaTexture AnalysisMedicineClinical Decision Support SystemHealth InformaticsCell Detection
In this paper, we build up a new decision support tool to improve treatment intensity choice in childhood ALL. The developed system includes different methods to accurately measure furthermore cell properties in microscope blood film images. The blood images are exposed to series of pre-processing steps which include color correlation, and contrast enhancement. By performing K-means clustering on the resultant images, the nuclei of the cells under consideration are obtained. Shape features and texture features are then extracted for classification. The system is further tested on the classification of spectra measured from the cell nuclei in blood samples in order to distinguish normal cells from those affected by Acute Lymphoblastic Leukemia. The results show that the proposed system robustly segments and classifies acute lymphoblastic leukemia based on complete microscopic blood images.
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