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Automatic and Comprehensive Classification of the Morphological Forms of C. albicans | IEEE Conference Publication | IEEE Xplore

Automatic and Comprehensive Classification of the Morphological Forms of C. albicans


Abstract:

Symptoms of fungal diseases can be similar to those of COVID-19, and lab tests are necessary to determine the precise infections a person is suffering from. Candida albic...Show More

Abstract:

Symptoms of fungal diseases can be similar to those of COVID-19, and lab tests are necessary to determine the precise infections a person is suffering from. Candida albicans (C. albicans) is an opportunistic pathogenic yeast that causes nosocomial infections, and patients exposed to hospital environments are vulnerable. The presence and number of its morphological forms (morphotypes/phenotypes) i.e., ellipsoidal/ovoid cells, budding cells, and hyphae - are useful for detecting the pathogenic propensity of C. albicans. However, there are certain challenges: fatigue and human errors associated with manual screening. In this paper, we propose a novel, automatic method of detecting and counting all of the morphological phenotypes of C. albicans from simple microscope-images of stained smears. The method involves color-segmentation in the HSV space using RUS-Boosted Decision Trees, and classification based on features such as area, width, the presence of constriction, and aspect ratio. The method was tested on 11 images with the training set formed from 43 images. The method showed a specificity of 79.3, 98.1, 100 & 98.6, sensitivity of 92.8, 82.2, 100 & 88.4, and accuracy of 87.1, 94.7, 100 & 96, on ellipsoidal yeast cells, budding yeast cells, hyphae and cluster of cells, respectively.
Date of Conference: 26-28 April 2023
Date Added to IEEE Xplore: 01 June 2023
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Conference Location: Lalitpur, Nepal

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