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    1. Data och IT
    2. Systemvetenskap och AI

    Mitigating Bias in Machine Learning

    AvCarlotta A. Berry,Brandeis Hill Marshall

    Häftad, Engelska, 2024

    522 kr

    Beställningsvara. Skickas inom 3-6 vardagar. Fri frakt över 249 kr.

    Beskrivning

    This practical guide shows, step by step, how to use machine learning to carry out actionable decisions that do not discriminate based on numerous human factors, including ethnicity and gender. The authors examine the many kinds of bias that occur in the field today and provide mitigation strategies that are ready to deploy across a wide range of technologies, applications, and industries.

    Edited by engineering and computing experts, Mitigating Bias in Machine Learning includes contributions from recognized scholars and professionals working across different artificial intelligence sectors. Each chapter addresses a different topic and real-world case studies are featured throughout that highlight discriminatory machine learning practices and clearly show how they were reduced.

    Mitigating Bias in Machine Learning addresses:

    • Ethical and Societal Implications of Machine Learning
    • Social Media and Health Information Dissemination
    • Comparative Case Study of Fairness Toolkits
    • Bias Mitigation in Hate Speech Detection
    • Unintended Systematic Biases in Natural Language Processing
    • Combating Bias in Large Language Models
    • Recognizing Bias in Medical Machine Learning and AI Models
    • Machine Learning Bias in Healthcare
    • Achieving Systemic Equity in Socioecological Systems
    • Community Engagement for Machine Learning

    Produktinformation

    • Utgivningsdatum:2024-11-04
    • Mått:188 x 229 x 18 mm
    • Vikt:431 g
    • Format:Häftad
    • Språk:Engelska
    • Antal sidor:304
    • Förlag:McGraw-Hill Education
    • ISBN:9781264922444

    Utforska kategorier

    • Systemvetenskap och AI inom Data och IT

    Innehållsförteckning

    • 1 Beyond Algorithmic Bias1.1 Introduction1.2 Beyond Ethics in AI1.3 What Is Algorithmic Justice?1.4 Definitions of Algorithmic Fairness1.5 Fairness Metrics1.6 Methods for Fair Machine Learning1.7 Tools to Help Detect and Mitigate Bias in Machine Learning Models1.8 Best Practices to Build a Fairer Application1.9 Chapter Summary2 Going Beyond the Technical: Exploring Ethical and Societal Implications of Machine Learning2.1 Introduction2.2 Programming Approaches2.3 Societal and Cultural Implications of Algorithms2.4 Ethical Implications of Algorithms2.5 Approaches to Mitigate Algorithmic Bias2.6 Speak Up: Communicating Ideas with Digital Storytelling2.7 Chapter Summary3 Social Media and Health Information Dissemination3.1 Introduction3.2 MyHealthImpactNetwork: For Students by Students3.3 Results of Data Inferential Analysis3.4 Chapter Summary4 Comparative Case Study of Fairness Toolkits4.1 Introduction4.2 Bias4.3 Fairness4.4 Applying Responsible AI4.5 Results4.6 What Are the Limitations of These Toolkits?4.7 Chapter Summary5 Bias Mitigation in Hate Speech Detection5.1 Introduction5.2 Background5.3 Bias in Hate Speech Detection Systems5.4 Bias Mitigation in Hate Speech Detection Using Transfer Learning5.5 Bias Mitigation in Hate Speech Detection Using Transfer Learning5.6 Adversarial Methods for Bias Reduction in Hate Speech Detection5.7 Benefits and Pitfalls5.8 Other Methods5.9 Hands-on Exercise5.10 Chapter Summary6 Unveiling Unintended Systematic Biases in Natural Language Processing6.1 Introduction6.2 Unfairness and Bias in NLP Applications6.3 Bias Taxonomy6.4 Mitigating NLP Bias and Unfairness6.5 Chapter Summary7 Combating Bias in Large Language Models7.1 Introduction7.2 Vectorization of Stochastic Parrots7.3 Natural Language Processing: Linear Decision Making for Nonlinear Language7.4 Stage One: Data Collection7.5 Stage Two: Fight Bad Math with Better Math7.6 Stage Three: Model Constraints/Operations7.7 Chapter Summary8 Recognizing Bias in Medical Machine Learning and AI Models8.1 Introduction8.2 Defining Machine Learning8.3 Building a Simple Machine Learning Model: Use Case8.4 Health Care Bias and Inequities: Use Case8.5 Chapter Summary9 Toward Rectification of Machine Learning Bias in Health Care9.1 Introduction9.2 Case Study: Mitigating Bias in ML for Melanoma9.3 Defining Types of Biases and Mitigation Techniques in ML Life Cycles9.4 Machine Learning Fairness9.5 Chapter Summary10 Applying the Wells-DuBois Protocol for Achieving Systemic Equity in Socioecological Systems10.1 Introduction10.2 Equity Framework and Tool Application10.3 Clustering Overview and Application10.4 Applying the Wells-DuBois Protocol10.5 Discussion and Future Directions10.6 Chapter Summary11 Community Engagement for Machine Learning11.1 Introduction: Principles and Components of Community Engagement11.2 Project Initiation: Steps of Conducting Community-Driven Environmental Data Science11.3 How to Engage Communities in the Process: Case Study of the Mobile Lead Testing Unit Project in Newark, New Jersey11.4 Chapter Summary
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