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Chapman hall crc data science series supervised machine learning for text analysis in r


Foto: Chapman hall crc data science series supervised machine learning for text analysis in r
Rubriek: Textual/Printed/Reference Materials - Boek
Prijs: 64.78
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Uiterlijk 5 maart in huis


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Omschrijving:

This book is designed to provide practical guidance and directly applicable knowledge for data scientists and analysts who want to integrate text into their modeling pipelines. We assume that the reader is somewhat familiar with R, predictive modeling concepts for non-text data, and the tidyverse family of packages.





Text data is important for many domains, from healthcare to marketing to the digital humanities, but specialized approaches are necessary to create features for machine learning from language. Supervised Machine Learning for Text Analysis in R explains how to preprocess text data for modeling, train models, and evaluate model performance using tools from the tidyverse and tidymodels ecosystem. Models like these can be used to make predictions for new observations, to understand what natural language features or characteristics contribute to differences in the output, and more. If you are already familiar with the basics of predictive modeling, use the comprehensive, detailed examples in this book to extend your skills to the domain of natural language processing.

This book provides practical guidance and directly applicable knowledge for data scientists and analysts who want to integrate unstructured text data into their modeling pipelines. Learn how to use text data for both regression and classification tasks, and how to apply more straightforward algorithms like regularized regression or support vector machines as well as deep learning approaches. Natural language must be dramatically transformed to be ready for computation, so we explore typical text preprocessing and feature engineering steps like tokenization and word embeddings from the ground up. These steps influence model results in ways we can measure, both in terms of model metrics and other tangible consequences such as how fair or appropriate model results are.





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Product specificaties:

Taal: en

Uitvoering: Paperback

Oorspronkelijke releasedatum: 22 oktober 2021

Aantal pagina's: 402

Hoofdauteur: Emil Hvitfeldt

Tweede Auteur: Julia Silge

Hoofduitgeverij: Chapman & Hall/Crc

Fabrikantgegevens: De informatie van de fabrikant is momenteel niet beschikbaar.

Porno: Nee

Product breedte: 156 mm

Product lengte: 234 mm

Studieboek: Nee

Verpakking breedte: 156 mm

Verpakking hoogte: 234 mm

Verpakking lengte: 234 mm

Verpakkingsgewicht: 560 g

EAN: 9780367554194