Introduces different optimization algorithms together to solve complex combinatorial optimization problems related to hospital management system or healthcare
Applies machine learning-based analytics such as GAN networks, autoencoders, computational imaging, and quantum computing to authentic hospital management problems
Discusses metaheuristic algorithms such as evolutionary algorithms to cope with the fundamental steps of image processing, image analysis, and computer vision pipeline (e.g., restoration, segmentation, registration, classification, reconstruction, or tracking)
Creates a bridge between Computational Intelligence and Industrial Engineering towards designing complex and convoluted hospital management problems
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