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Performance evaluation of deep neural ensembles toward malaria parasite detection in thin-blood smear images

193

Citations

21

References

2019

Year

Abstract

Ensemble learning reduces the model variance by optimally combining the predictions of multiple models and decreases the sensitivity to the specifics of training data and selection of training algorithms. The performance of the model ensemble simulates real-world conditions with reduced variance, overfitting and leads to improved generalization.

References

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