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Publication | Open Access

Machine learning approaches classify clinical malaria outcomes based on haematological parameters

41

Citations

29

References

2020

Year

Abstract

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.

References

YearCitations

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