Publication | Open Access
A modified decision tree approach to improve the prediction and mutation discovery for drug resistance in Mycobacterium tuberculosis
30
Citations
16
References
2022
Year
Our work reinforces the utility of machine learning for drug resistance prediction, while highlighting the need to customize approaches to the disease-specific context. Through applying a modified decision learning approach (Treesist-TB) across a range of anti-TB drugs, we identified plausible resistance-encoding genomic variants with high predictive ability, whilst potentially overcoming the overfitting challenges that can affect standard machine learning applications.
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