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Sinopse
In this book, author Matheus Facure, senior data scientist at Nubank, explains the largely untapped potential of causal inference for estimating impacts and effects. Managers, data scientists, and business analysts will learn classical causal inference methods like randomized control trials (A/B tests), linear regression, propensity score, synthetic controls, and difference-in-differences. Each method is accompanied by an application in the industry to serve as a grounding example.
With this book, you will:
Learn how to use basic concepts of causal inference
Frame a business problem as a causal inference problem
Understand how bias gets in the way of causal inference
Learn how causal effects can differ from person to person
Use repeated observations of the same customers across time to adjust for biases
Understand how causal effects differ across geographic locations
Examine noncompliance bias and effect dilution
Ficha Técnica
Especificações
ISBN | 9781098140250 |
---|---|
Subtítulo | APPLYING CAUSAL INFERENCE IN THE TECH INDUSTRY |
Pré venda | Não |
Peso | 680g |
Autor para link | FACURE MATHEUS |
Livro disponível - pronta entrega | Não |
Dimensões | 23.11 x 17.53 x 2.79 |
Idioma | Inglês |
Tipo item | Livro Importado |
Número de páginas | 406 |
Número da edição | 1ª EDIÇÃO - 2023 |
Código Interno | 1088775 |
Código de barras | 9781098140250 |
Acabamento | PAPERBACK |
Autor | FACURE, MATHEUS |
Editora | O'REILLY MEDIA |
Sob encomenda | Sim |