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Machine Learning for High-Risk Applications (Second Release) PDF

702 Pages·2021·7.1805 MB·other
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by Patrick Hall, Rumman Chowdhury| 2021| 702 pages| 7.1805| other

About Machine Learning for High-Risk Applications (Second Release)

The past decade has witnessed a wide adoption of artificial intelligence and machine learning (AI/ML) technologies. However, a lack of oversight into their widespread implementation has resulted in harmful outcomes that could have been avoided with proper oversight. Before we can realize AI/ML's true benefit, practitioners must understand how to mitigate its risks. This book describes responsible AI, a holistic approach 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. It's an ambitious undertaking that requires a diverse set of talents, experiences, and perspectives. Data scientists and nontechnical oversight folks alike need to be recruited and empowered to audit and evaluate high-impact AI/ML systems. Authors Patrick Hall and Rumman Chowdhury created this guide for a new generation of auditors and assessors who want to make AI systems better for organizations, consumers, and the public at large. Learn how to create a successful and impactful responsible AI practice Get a guide to existing standards, laws, and assessments for adopting AI technologies Look at how existing roles at companies are evolving to incorporate responsible AI Examine business best practices and recommendations for implementing responsible AI Learn technical approaches for responsible AI at all stages of system development.

Detailed Information

Author:Patrick Hall, Rumman Chowdhury
Publication Year:2021
ISBN:1098102428
Pages:702
Language:other
File Size:7.1805
Format:PDF
Price:FREE
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