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Adamu Hussaini

Publications and source records attributed to Adamu Hussaini.

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TwinSegNet: A Digital Twin-Enabled Federated Learning Framework for Brain Tumor Analysis

Brain tumor segmentation is critical in diagnosis and treatment planning for the disease. Yet, current deep learning methods rely on centralized data collection, which raises privacy concerns and limits generalization across diverse institutions. In this paper, we propose TwinSegNet, which is a privacy-preserving federated learning framework that integrates a hybrid ViT-UNet model with personalized digital twins for accurate and real-time brain tumor segmentation. Our architecture combines convolutional encoders with Vision Transformer bottlenecks to capture local and global context. Each institution fine-tunes the global model of private data to form its digital twin. Evaluated on nine heterogeneous MRI datasets, including BraTS 2019-2021 and custom tumor collections, TwinSegNet achieves high Dice scores (up to 0.90%) and sensitivity/specificity exceeding 90%, demonstrating robustness across non-independent and identically distributed (IID) client distributions. Comparative results against centralized models such as TumorVisNet highlight TwinSegNet's effectiveness in preserving privacy without sacrificing performance. Our approach enables scalable, personalized segmentation for multi-institutional clinical settings while adhering to strict data confidentiality requirements.

cs.CV

Security of IT/OT Convergence: Design and Implementation Challenges

IoT is undoubtedly considered the future of the Internet. Many sectors are moving towards the use of these devices to aid better monitoring, controlling of the surrounding environment, and manufacturing processes. The Industrial Internet of things is a sub-domain of IoT and serves as enablers of the industry. IIoT is providing valuable services to Industrial Control Systems such as logistics, manufacturing, healthcare, industrial surveillance, and others. Although IIoT service-offering to ICS is tempting, it comes with greater risk. ICS systems are protected by isolation and creating an air-gap to separate their network from the outside world. While IIoT by definition is a device that has connection ability. This creates multiple points of entry to a closed system. In this study, we examine the first automated risk assessment system designed specifically to deal with the automated risk assessment and defining potential threats associated with IT/OT convergence based on OCTAVE Allegro- ISO/IEC 27030 Frameworks.

cs.CR