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Advanced Trustworthy AI
Learn the principles, methods, and tools for implementing trustworthy AI in practice.
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Chapter 1
Trustworthy AI in organizations and industrial environments
Section
Exercises
I.
Trustworthy AI requirements in practice
II.
Developing trustworthy AI in an organization
Chapter 2
Bias and fairness in AI
Section
Exercises
I.
Sources of bias in the evaluation methods for fairness
II.
Methods for assessing and documenting model bias and fairness
III.
Tools for evaluating fairness in your AI model
Chapter 3
Dissecting the internal logic of machine learning
Section
Exercises
I.
Glass-box and black-box AI – what’s the difference?
II.
Instrumenting AI models with XAI
III.
Applied explainable AI
IV.
Interpreting outputs
Chapter 4
Resilient AI: Defense from security & privacy attacks
Section
Exercises
I.
Attacks against machine learning systems
II.
Technical solutions to mitigate attacks
III.
Industry examples of privacy and security
Chapter 5
Conclusion
Section
Exercises
I.
Interactive case: Trustworthiness of service recommendation AI
II.
Epilogue