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Automated Detection of Acute Lymphoblastic Leukemia From Microscopic Images Based on Human Visual Perception

Alexandra Bodzas, Pavel Kodytek, Jan Žídek

2020Frontiers in Bioengineering and Biotechnology93 citationsDOIOpen Access PDF

Abstract

Microscopic image analysis plays a significant role in initial leukemia screening and its efficient diagnostics. Since the present conventional methodologies partly rely on manual examination, which is time consuming and depends greatly on the experience of domain experts, automated leukemia detection opens up new possibilities to minimize human intervention and provide more accurate clinical information. This paper proposes a novel approach based on conventional digital image processing techniques and machine learning algorithms to automatically identify acute lymphoblastic leukemia from peripheral blood smear images. To overcome the greatest challenges in the segmentation phase, we implemented extensive pre-processing and introduced a three-phase filtration algorithm to achieve the best segmentation results. Moreover, sixteen robust features were extracted from the images in the way that hematological experts do, which significantly increased the capability of the classifiers to recognize leukemic cells in microscopic images. To perform the classification, we applied two traditional machine learning classifiers, the artificial neural network and the support vector machine. Both methods reached a specificity of 95.31%, and the sensitivity of the support vector machine and artificial neural network reached 98.25 and 100%, respectively.

Topics & Concepts

Artificial intelligenceComputer scienceSupport vector machineSegmentationArtificial neural networkMachine learningPattern recognition (psychology)Lymphoblastic LeukemiaImage processingDomain (mathematical analysis)Image segmentationDigital imageImage (mathematics)MedicineLeukemiaImmunologyMathematical analysisMathematicsDigital Imaging for Blood DiseasesAI in cancer detectionCell Image Analysis Techniques
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