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You're reading from  The Statistics and Machine Learning with R Workshop

Product typeBook
Published inOct 2023
Reading LevelIntermediate
PublisherPackt
ISBN-139781803240305
Edition1st Edition
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Author (1)
Liu Peng
Liu Peng
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Liu Peng

Peng Liu is an Assistant Professor of Quantitative Finance (Practice) at Singapore Management University and an adjunct researcher at the National University of Singapore. He holds a Ph.D. in statistics from the National University of Singapore and has ten years of working experience as a data scientist across the banking, technology, and hospitality industries.
Read more about Liu Peng

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Introducing Bayesian statistics

The Bayesian approach to statistics and machine learning (ML) provides a logical, transparent, and interpretable framework. This is a uniform framework that can build problem-specific models for both statistical inference and prediction. In particular, Bayesian inference offers a method to figure out unknown or unobservable quantities given known facts (observed data), employing probability to describe the uncertainty over the possible values of unknown quantities—namely, random variables of interest.

Using Bayesian statistics, we are able to express our prior assumption about unknown quantities and adjust this based on the observed data. It provides the Bayesian versions of common statistical procedures such as hypothesis testing and linear regression, covered in Chapters 11, Statistics estimation, and 12, Linear Regression in R. Compared to the frequentist approach, which we have adopted in all the models covered so far, the Bayesian approach...

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The Statistics and Machine Learning with R Workshop
Published in: Oct 2023Publisher: PacktISBN-13: 9781803240305

Author (1)

author image
Liu Peng

Peng Liu is an Assistant Professor of Quantitative Finance (Practice) at Singapore Management University and an adjunct researcher at the National University of Singapore. He holds a Ph.D. in statistics from the National University of Singapore and has ten years of working experience as a data scientist across the banking, technology, and hospitality industries.
Read more about Liu Peng