Translational Deep Learning in Medical Imaging


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Sale price£184.00

Description

This book, Translational Deep Learning in Medical Imaging: Theoretical Foundations and Clinical Applications, explores how advanced deep learning methodologies are transforming the landscape of medical imaging from theoretical innovation to real-world clinical practice. Moving beyond conventional image analysis and rule-based diagnostic systems, the book investigates how convolutional neural networks, transformer architectures, and hybrid AI models enable accurate detection, segmentation, and prognosis across diverse medical conditions. It covers key themes such as image classification, multimodal data integration, explainable AI, radiomics, and real-time diagnostic support systems, with a strong emphasis on bridging the gap between laboratory research and clinical deployment. Through practical case studies and validated clinical workflows, the book demonstrates how deep learning enhances diagnostic precision, workflow efficiency, and patient outcomes. It also addresses critical challenges including data heterogeneity, model interpretability, regulatory compliance, and ethical considerations, while outlining future directions for scalable, trustworthy, and clinically adaptable AI-driven imaging solutions.

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