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How Tech Companies, Journalists, And Policymakers Can Prevent Ai DecisionMaking From Going Wrong.Our Lives Are Increasingly Governed By Automated Systems Influencing Everything From Medical Care To Policing To Employment Opportunities, But Researchers And Investigative Journalists Have Proven That Ai Systems Regularly Get Things Wrong.Auditing Ai Is A FirstOfItsKind Exploration Of Why And How To Audit Artificial Intelligence Systems. It Offers A Simple Roadmap For Using Ai Audits To Make Product And Policy Changes That Benefit Companies And The Public Alike. The Book Aims To Convince Readers That Ai Systems Should Be Subject To Robust Audits To Protect All Of Us From The Dangers Of These Systems. Readers Will Come Away With An Understanding Of What An Ai Audit Is, Why Ai Audits Are Important, Key Components Of An Audit That Follows Best Practices, How To Interpret An Audit, And The Available Choices To Act On An AuditS Results.The Book Is Organized Around Canonical Examples: From AiPowered Drones Mistakenly Targeting Civilians In Conflict Areas To False Arrests Triggered By Facial Recognition Systems That Misidentified People With Dark Skin Tones To Hr Hiring Software That Prefers Men. It Explains These Definitive Cases Of Ai DecisionMaking Gone Wrong And Then Highlights Specific Audits That Have Led To Concrete Changes In Government Policy And Corporate Practice.The Marquand House Collective: Marc Aidinoff, Lena Armstrong, Esha Bhandari, Ellery Roberts Biddle, Motahhare Eslami, Karrie Karahalios, Nate Matias, Dana Metaxa, Alondra Nelson, Christian Sandvig, And Kristen Vaccaro.
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