Publication | Open Access
Tuberculosis Disease Diagnosis Using Artificial Immune Recognition System
46
Citations
35
References
2014
Year
Overall, the highest classification accuracy reached was for the 0.8 learning rate (α) values. The artificial immune recognition system (AIRS) classification approaches using fuzzy logic also yielded better diagnosis results in terms of detection accuracy compared to other empirical methods. Classification accuracy was 99.14%, sensitivity 87.00%, and specificity 86.12%.
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