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Author

Korhan Cengiz

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Open access Jul 2026

Tri-Net: unified deep learning for skin lesion and symptom-based monkeypox detection.

The recent re-emergence of Monkeypox emphasizes the critical importance of ensuring precise and prompt diagnostic capabilities. Traditional diagnosis typically depends on visually examining skin lesions and listening to patients describe their symptoms. However, this approach can be subjective and sometimes leads to misjudgment. To complicate matters further, Monkeypox shares many symptoms with other skin conditions and viral infections, making it difficult for doctors to identify the disease accurately in its early stages. In response, we present Tri-Net, a novel deep learning approach that integrates skin lesion analysis with symptom-based prediction for reliable detection of Monkeypox infection. The skin lesion module leverages an ensemble of three powerful architectures EfficientNetB4, Inception-ResNet V2, and DenseNet201 within the Tri-Net framework to classify images across different stages of the disease. Complementing this, a dedicated Convolutional Neural Network (CNN) processes patient-reported symptoms to further improve diagnostic precision. Our proposed Tri-Net model was trained on publicly available Monkeypox Skin Lesion Dataset (MSLD) comprises diverse dermatological lesion imagery and clinical symptom profiles. The combined approach demonstrated high accuracy, robustness, and significantly outperformed existing methods. Notably, the symptom-based module alone achieved a prediction accuracy of 97.86%. By uniting visual and clinical features, Tri-Net offers a non-invasive, rapid, and highly accurate diagnostic tool that supports early intervention and effective disease control. This study marks a meaningful step toward AI-driven diagnostics for emerging infectious diseases like Monkeypox.

S. Sudharsan, Prabu Selvam, Nirmala Veeramani et al. · 0 citations
Review Open access Aug 2026

The influence of digital twins on the rise of Industry 5.0: a scoping review covering future scope and research challenges

Industry 5.0 represents a paradigm shift toward human-centric, intelligent, and sustainable manufacturing systems. At the core of this transformation lies the Digital Twin (DT), a virtual replica of physical assets that enables real-time monitoring, simulation, and decision-making. This article presents a comprehensive meta-analysis of how DT technologies contribute to the realization of Industry 5.0 objectives across domains such as Smart Additive Manufacturing (SAM), Predictive Maintenance (PM), Cyber-Physical Cognitive Systems (CPCS), Intelligent Supply Chain (ISC), and Adaptive Scheduling (AS). By analyzing 125 peer-reviewed studies, we quantify the feature-wise attainment levels of Industry 5.0 and identify critical gaps in current implementations. The findings reveal that, while SAM exhibits the highest Industry 5.0 readiness, other features, such as cognitive systems, remain underdeveloped. The article concludes by outlining key research challenges and presenting a strategic roadmap to advance the real-world integration of DTs within Industry 5.0 frameworks.

Swati Lipsa, R. K. Dash, Korhan Cengiz et al. · 0 citations

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