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Can I read Machine Learning for High-Risk Applications: Approaches to Responsible AI on EtoBox?
Machine Learning for High-Risk Applications: Approaches to Responsible AI by Patrick Hall; James Curtis; Parul Pandey is a book available to read on EtoBox.
What is Machine Learning for High-Risk Applications: Approaches to Responsible AI about?
The past decade has witnessed the broad adoption of artificial intelligence and machine learning (AI/ML) technologies. However, a lack of oversight in their widespread implementation has resulted in some incidents and harmful outcomes that could have been avoided with proper risk management. Before we can realize AI/ML's true benefit, practitioners must understand how to mitigate its risks. This book describes approaches to responsible AI—a holistic framework for improving AI/ML technology, business processes, and cultural competencies that builds on best practices in risk management, cybersecurity, data privacy, and applied social science. Authors Patrick Hall, James Curtis, and Parul Pandey created this guide for data scientists who want to improve real-world AI/ML system outcomes for organizations, consumers, and the public. Learn technical approaches for responsible AI across explainability, model validation and debugging, bias management, data privacy, and ML securityLearn how to create a successful and impactful AI risk management practiceGet a basic guide to existing standards, laws, and assessments for adopting AI technologies, including the new NIST AI Risk Management Fram
- Author
- Patrick Hall; James Curtis; Parul Pandey
- Publisher
- O'Reilly Media, Incorporated
- Published
- 2023
- Language
- EN
- ISBN
- 9781098102401
- Subjects
- Computer Science, Management, Science
Other editions & translations
- MACHINE LEARNING FOR HIGH-RISK APPLICATIONS : techniques for responsible ai (2023)
- Responsible AI 2021-05-26: First Release 2021-05-26: First Release (2021)
- Machine Learning for High-Risk Applications: Techniques for Responsible AI (11th Early Release) (2023)
- Machine Learning for High-Risk Applications (9th Early Release) (2022)
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Browse all works by Patrick Hall; James Curtis; Parul Pandey
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