Blood Cell Revolution: Unveiling 11 Distinct Types with ‘Naturalize’ Augmentation

Author:

Abou Ali Mohamad12ORCID,Dornaika Fadi13ORCID,Arganda-Carreras Ignacio1345ORCID

Affiliation:

1. Department of Computer Science and Artificial Intelligence, University of the Basque Country (UPV/EHU), Manuel Lardizabal, 1, 20018 San Sebastian, Spain

2. Department of Biomedical Engineering, Lebanese International University (LIU), Salim Salam, Mazraa, Beirut 14404, Lebanon

3. Ikerbasque, Basque Foundation for Science, Plaza Euskadi, 5, 48009 Bilbao, Spain

4. Donostia International Physics Center (DIPC), Manuel Lardizabal, 4, 20018 San Sebastian, Spain

5. Biofisika Institute (CSIC, UPV/EHU), Barrio Sarriena s/n, 48940 Leioa, Spain

Abstract

Artificial intelligence (AI) has emerged as a cutting-edge tool, simultaneously accelerating, securing, and enhancing the diagnosis and treatment of patients. An exemplification of this capability is evident in the analysis of peripheral blood smears (PBS). In university medical centers, hematologists routinely examine hundreds of PBS slides daily to validate or correct outcomes produced by advanced hematology analyzers assessing samples from potentially problematic patients. This process may logically lead to erroneous PBC readings, posing risks to patient health. AI functions as a transformative tool, significantly improving the accuracy and precision of readings and diagnoses. This study reshapes the parameters of blood cell classification, harnessing the capabilities of AI and broadening the scope from 5 to 11 specific blood cell categories with the challenging 11-class PBC dataset. This transformation facilitates a more profound exploration of blood cell diversity, surpassing prior constraints in medical image analysis. Our approach combines state-of-the-art deep learning techniques, including pre-trained ConvNets, ViTb16 models, and custom CNN architectures. We employ transfer learning, fine-tuning, and ensemble strategies, such as CBAM and Averaging ensembles, to achieve unprecedented accuracy and interpretability. Our fully fine-tuned EfficientNetV2 B0 model sets a new standard, with a macro-average precision, recall, and F1-score of 91%, 90%, and 90%, respectively, and an average accuracy of 93%. This breakthrough underscores the transformative potential of 11-class blood cell classification for more precise medical diagnoses. Moreover, our groundbreaking “Naturalize” augmentation technique produces remarkable results. The 2K-PBC dataset generated with “Naturalize” boasts a macro-average precision, recall, and F1-score of 97%, along with an average accuracy of 96% when leveraging the fully fine-tuned EfficientNetV2 B0 model. This innovation not only elevates classification performance but also addresses data scarcity and bias in medical deep learning. Our research marks a paradigm shift in blood cell classification, enabling more nuanced and insightful medical analyses. The “Naturalize” technique’s impact extends beyond blood cell classification, emphasizing the vital role of diverse and comprehensive datasets in advancing healthcare applications through deep learning.

Funder

ERDF A way of making Europe

University of the Basque Country UPV/EHU

Publisher

MDPI AG

Subject

Computational Mathematics,Computational Theory and Mathematics,Numerical Analysis,Theoretical Computer Science

Reference37 articles.

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2. Rodak, B.F., and Carr, J.H. (2012). Clinical Hematology Atlas, Saunders. [4th ed.].

3. Al-qudah, R., and Suen, C.Y. (2022). Computational Intelligence and Image Processing in Medical Applications, World Scientific.

4. A dataset of microscopic peripheral blood cell images for development of automatic recognition systems;Acevedo;Data Brief,2020

5. ImageNet Large Scale Visual Recognition Challenge;Russakovsky;Int. J. Comput. Vis.,2015

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