Effective Statistical Learning Methods for Actuaries II

Effective Statistical Learning Methods for Actuaries II
Author: Michel Denuit
Publisher: Springer Nature
Total Pages: 228
Release: 2020-11-16
Genre: Business & Economics
ISBN: 303057556X


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This book summarizes the state of the art in tree-based methods for insurance: regression trees, random forests and boosting methods. It also exhibits the tools which make it possible to assess the predictive performance of tree-based models. Actuaries need these advanced analytical tools to turn the massive data sets now at their disposal into opportunities. The exposition alternates between methodological aspects and numerical illustrations or case studies. All numerical illustrations are performed with the R statistical software. The technical prerequisites are kept at a reasonable level in order to reach a broad readership. In particular, master's students in actuarial sciences and actuaries wishing to update their skills in machine learning will find the book useful. This is the second of three volumes entitled Effective Statistical Learning Methods for Actuaries. Written by actuaries for actuaries, this series offers a comprehensive overview of insurance data analytics with applications to P&C, life and health insurance.


Effective Statistical Learning Methods for Actuaries II
Language: en
Pages: 228
Authors: Michel Denuit
Categories: Business & Economics
Type: BOOK - Published: 2020-11-16 - Publisher: Springer Nature

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This book summarizes the state of the art in tree-based methods for insurance: regression trees, random forests and boosting methods. It also exhibits the tools
Effective Statistical Learning Methods for Actuaries I
Language: en
Pages: 441
Authors: Michel Denuit
Categories: Business & Economics
Type: BOOK - Published: 2019-09-03 - Publisher: Springer Nature

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This book summarizes the state of the art in generalized linear models (GLMs) and their various extensions: GAMs, mixed models and credibility, and some nonline
Effective Statistical Learning Methods for Actuaries III
Language: en
Pages: 250
Authors: Michel Denuit
Categories: Business & Economics
Type: BOOK - Published: 2019-10-31 - Publisher: Springer Nature

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This book reviews some of the most recent developments in neural networks, with a focus on applications in actuarial sciences and finance. It simultaneously int
Effective Statistical Learning Methods for Actuaries
Language: en
Pages:
Authors: Michel Denuit
Categories: Actuarial science
Type: BOOK - Published: 2019 - Publisher:

GET EBOOK

Artificial intelligence and neural networks offer a powerful alternative to statistical methods for analyzing data. This book reviews some of the most recent de
Effective Statistical Learning Methods for Actuaries I
Language: en
Pages: 441
Authors: Michel Denuit
Categories: Actuarial science
Type: BOOK - Published: 2019 - Publisher:

GET EBOOK

This book summarizes the state of the art in generalized linear models (GLMs) and their various extensions: GAMs, mixed models and credibility, and some nonline