Description

Book Synopsis
This book introduces a Responsible AI framework and guides you through processes to apply at each stage of the machine learning (ML) life cycle, from problem definition to deployment, to reduce and mitigate the risks and harms found in artificial intelligence (AI) technologies. AI offers the ability to solve many problems today if implemented correctly and responsibly. This book helps you avoid negative impacts that in some cases have caused loss of life and develop models that are fair, transparent, safe, secure, and robust. The approach in this book raises your awareness of the missteps that can lead to negative outcomes in AI technologies and provides a Responsible AI framework to deliver responsible and ethical results in ML. It begins with an examination of the foundational elements of responsibility, principles, and data. Next comes guidance on implementation addressing issues such as fairness, transparency, safety, privacy, and robustness. The book helps you think responsibl

Table of Contents
Introduction
Part I. Foundation1. Responsibility2. AI Principles3. Data
Part II. Implementation4. Responsible AI Framework5. Fairness6. Safety7. Humans in the Loop8. Transparency9. Privacy and Robustness
Part III. Ethical Considerations10. Ethics of AI and ML
References

Building Responsible AI Algorithms

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£25.19

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RRP £27.99 – you save £2.80 (10%)

Order before 4pm tomorrow for delivery by Mon 26 Jan 2026.

A Paperback / softback by Toju Duke

15 in stock


    View other formats and editions of Building Responsible AI Algorithms by Toju Duke

    Publisher: APress
    Publication Date: 17/08/2023
    ISBN13: 9781484293058, 978-1484293058
    ISBN10: 1484293053

    Description

    Book Synopsis
    This book introduces a Responsible AI framework and guides you through processes to apply at each stage of the machine learning (ML) life cycle, from problem definition to deployment, to reduce and mitigate the risks and harms found in artificial intelligence (AI) technologies. AI offers the ability to solve many problems today if implemented correctly and responsibly. This book helps you avoid negative impacts that in some cases have caused loss of life and develop models that are fair, transparent, safe, secure, and robust. The approach in this book raises your awareness of the missteps that can lead to negative outcomes in AI technologies and provides a Responsible AI framework to deliver responsible and ethical results in ML. It begins with an examination of the foundational elements of responsibility, principles, and data. Next comes guidance on implementation addressing issues such as fairness, transparency, safety, privacy, and robustness. The book helps you think responsibl

    Table of Contents
    Introduction
    Part I. Foundation1. Responsibility2. AI Principles3. Data
    Part II. Implementation4. Responsible AI Framework5. Fairness6. Safety7. Humans in the Loop8. Transparency9. Privacy and Robustness
    Part III. Ethical Considerations10. Ethics of AI and ML
    References

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