Publication | Open Access
Machine learning approaches classify clinical malaria outcomes based on haematological parameters
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Citations
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References
2020
Year
The study provides proof of concept methods that classify UM and SM from nMI, showing that the ML approach is a feasible tool for clinical decision support. In the future, ML approaches could be incorporated into clinical decision-support algorithms for the diagnosis of acute febrile illness and monitoring response to acute SM treatment particularly in endemic settings.
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