Machine Learning Risk Assessments in Criminal Justice Settings

Specificaties
Gebonden, blz. | Engels
Springer International Publishing | e druk, 2018
ISBN13: 9783030022716
Rubricering
Juridisch :
Springer International Publishing e druk, 2018 9783030022716
€ 180,99
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Samenvatting

This book puts in one place and in accessible form Richard Berk’s most recent work on forecasts of re-offending by individuals already in criminal justice custody. Using machine learning statistical procedures trained on very large datasets, an explicit introduction of the relative costs of forecasting errors as the forecasts are constructed, and an emphasis on maximizing forecasting accuracy, the author shows how his decades of research on the topic improves forecasts of risk.

 Criminal justice risk forecasts anticipate the future behavior of specified individuals, rather than “predictive policing” for locations in time and space, which is a very different enterprise that uses different data different data analysis tools.

 The audience for this book includes graduate students and researchers in the social sciences, and data analysts in criminal justice agencies. Formal mathematics is used only as necessary or in concert with more intuitive explanations.

Specificaties

ISBN13:9783030022716
Taal:Engels
Bindwijze:gebonden
Uitgever:Springer International Publishing

Inhoudsopgave

1 Getting Started.- 2 Some Important Background Material.- 3 A Conceptual Introduction Classification and Forecasting.- 4 A More Formal Treatment of Classification and Forecasting.- 5 Tree-Based Forecasting Methods.- 6 Transparency, Accuracy and Fairness.- 7 Real Applications.- 8 Implementation.- 9 Some Concluding Observations About Actuarial Justice and More.

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€ 180,99
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        Machine Learning Risk Assessments in Criminal Justice Settings