Preparing your Path…
Preparing your Path…
Path Catalog
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This learning path provides a structured understanding of medical device regulations and compliance, focusing on FDA regulations, ISO standards, and quality systems. It is designed for university students and professionals in biomedical engineering seeking a career in regulatory affairs. The path covers the regulatory landscape, quality management systems, risk management, and practical application through case studies.
This learning path guides senior or graduate students through the fundamental physics of light-tissue interactions, progressing to advanced optical imaging, spectroscopy, and photodynamic therapy. It emphasizes the prerequisite knowledge needed to understand how light is used in biomedical diagnostics and therapeutics, culminating in a capstone project that integrates these concepts.
This advanced learning path provides a comprehensive understanding of regenerative medicine, covering foundational principles, key therapeutic strategies including cell, gene, and tissue engineering, and the biological underpinnings necessary for clinical translation. Designed for senior or graduate students in biomedical engineering, the path emphasizes the integration of stem cell biology, biomaterials, and gene editing to restore tissue function.
This path equips senior biomedical engineering students with the knowledge and skills to manage medical devices within healthcare settings. It covers foundational medical device technology, safety standards, regulatory frameworks, and the integration of healthcare IT, culminating in a comprehensive approach to device lifecycle management.
This advanced learning path equips senior and graduate students with the knowledge to design assistive technologies for rehabilitation. It integrates biomechanics, neural engineering, and human-centered design principles, guiding learners from foundational concepts to a capstone project.
This advanced learning path equips senior and graduate students with the engineering knowledge and skills to design, evaluate, and apply orthopedic implants and prosthetics. It covers the biomechanics of bone and joints, biomaterials, implant design principles, and the clinical translation process, culminating in a capstone project.
This advanced learning path equips senior and graduate students with the knowledge to apply engineering principles to cardiovascular systems. It covers essential physiology, biomechanics, hemodynamics, and the design of heart valves, stents, and assist devices, culminating in device integration and career-relevant skills.
This learning path equips senior and graduate students with the knowledge and skills to process and analyze medical images, covering foundational image processing, segmentation, registration, feature extraction, and deep learning techniques. It emphasizes practical application with Python and medical imaging libraries, preparing learners for careers in biomedical engineering.
This learning path equips senior and graduate students in biomedical engineering with the computational skills needed to model, simulate, and analyze biomedical systems. Starting with essential mathematics and programming, it progresses through data analysis, machine learning, and computational modeling, culminating in an integrative capstone project.
This graduate-level path equips learners to develop rigorous biomechanical models by integrating continuum mechanics, constitutive modeling of biological tissues, and finite element methods. It emphasizes the mathematical foundations, experimental characterization, and computational implementation necessary for credible simulations.