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B.E. (Artificial Intelligence and Data Science) AI for Healthcare Syllabus - Mumbai University

This is the Fourth Year BE AI and DS syllabus under CBCS REV-2019 'C' Scheme, in force from the academic year 2023-24. The University has published no NEP 2020 syllabus for Semesters V to VIII of any engineering branch, so this is the scheme you are examined on — exam form 1T01817 and 1T01818. The first and second years of the degree are on NEP 2020.

AI for Healthcare.pdf
Semester 7 · Fourth Year BE AI and DS · 3 credits · CBCS REV-2019 'C' Scheme

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Syllabus for AI for Healthcare

Semester 7 · Fourth Year BE AI and DS · 3 credits · CBCS REV-2019 'C' Scheme

Module 1 06 hours

  • Introduction
  • 1.1 Overview of AI , ML and DL ,A Multifaceted Discipline, Applications of AI in Healthcare -Prediction, Diagnosis, personalized treatment and behavior modification, drug discovery, followup care etc,
  • 1.2 Realizing potential of AI in healthcare, Healthcare Data - Use Cases.

Module 2 08 hours

  • AI, ML, Deep Learning and Data Mining Methods for Healthcare
  • 2.1 Knowledge discovery and Data Mining, ML, Multi classifier Decision Fusion, Ensemble Learning, Meta-Learning and other Abstract Methods.
  • 2.2 Evolutionary Algorithms, Illustrative Medical Application-Multiagent Infectious Disease Propagation and Outbreak Prediction, Automated Amblyopia Screening System etc.
  • 2.3 Computational Intelligence Techniques, Deep Learning, Unsupervised learning, dimensionality reduction algorithms.

Module 3

  • Evaluating learning for Intelligence 04
  • 3.1 Model development and workflow, evaluation metrics, Parameters and Hyperparameters, Hyperparameter tuning algorithms, multivariate testing, Ethics of Intelligence.

Module 4

  • Natural Language Processing in Healthcare 08
  • 4.1 NLP tasks in Medicine, Low-level NLP components, High level NLP components, NLP Methods.
  • 4.2 Clinical NLP resources and Tools, NLP Applications in Healthcare. Model Interpretability using Explainable AI for NLP applications.

Module 5

  • Intelligent personal Health Record 05
  • 5.1 Introduction, Guided Search for Disease Information, Recommending SCA's.
  • Recommending HHP's , Continuous User Monitoring.

Module 6

  • Future of Healthcare using AI 08
  • 6.1 Evidence based medicine, Personalized Medicine, Connected Medicine, Digital Health and Therapeutics, Conversational AI, Virtual and Augmented Reality, Blockchain for verifying supply chain, patient record access, Robot - Assisted Surgery, Smart Hospitals, Case Studies on use of AI and ML for Disease Risk Diagnosis from patient data, Augmented reality applications for Junior doctors.
  • 6.2 Blockchain for verifying supply chain, patient record access, Robot - Assisted Surgery, Smart Hospitals, Case Studies on use of AI and ML for Disease Risk Diagnosis from patient data, Augmented reality applications for Junior doctors.

Text Books

  • 1 Arjun Panesar, "Machine Learning and AI for Healthcare", A Press.
  • 2 Arvin Agah, "Medical applications of Artificial Systems ", CRC Press

References

  • 1 Erik R. Ranschaert Sergey Morozov Paul R. Algra, "Artificial Intelligence in medical Imaging- Opportunities, Applications and Risks", Springer
  • 2 Sergio Consoli Diego Reforgiato Recupero Milan Petković,"Data Science for Healthcare-Methodologies and Applications", Springer
  • 3 Dac-Nhuong Le, Chung Van Le, Jolanda G. Tromp, Gia Nhu Nguyen, "Emerging technologies for health and medicine", Wiley.
  • 4 Ton J. Cleophas • Aeilko H. Zwinderman, "Machine Learning in Medicine- Complete Overview", Springer

Reproduced from the University of Mumbai syllabus for B.E. (Artificial Intelligence and Data Science), item 6.12 (N), under CBCS REV-2019 'C' Scheme, in force from the academic year 2023-24. Wording, module numbering and hours are as printed in that syllabus.

The complete syllabus

This subject is cut from the University circular for its year. Open a document here if you want the whole thing rather than a single subject.

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