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Artificial Intelligence in Medicine II

IN2408Elective Modules Informatics5 ECTSEnglishsummer semesterDepartment Computer Science
AI-edited module sheet. Based on the TUMonline module description, edited for readability.Original in TUMonline

What it is about

You will gain an overview of advanced prediction and classification tasks in medicine. You will learn methods for prognosis and diagnostics (e.g., risk scores, survival models, differential diagnosis, population stratification), specialized ML techniques (geometric deep learning methods for point clouds/networks, transformers, reinforcement learning) as well as topics on trustworthiness and clinical implementation of AI (bias, fairness, generalizability, data harmonization, evaluation). By the end you can apply the concepts in your own AI projects and assess their social and ethical implications.

What you will be able to do

  • Reproduce advanced topics of AI in medicine
  • Understand relationships between the topics
  • Apply learned concepts to your own AI projects
  • Analyze and evaluate social and ethical implications
  • Develop strategies to apply concepts in your own work

What the module consists of

  • LectureConveying the theoretical foundations and advanced topics
  • PracticalTheoretical exercises and practical programming tasks to apply what was learned

Teaching method

  • Interactive LectureIntroduction and discussion of complex content
  • Theoretical and practical ExercisesDeepening understanding and practical application in exercises
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Official page in TUMonline · Details are not binding.