Donazioni 15 September, 2024 – 1 Ottobre, 2024 Sulla raccolta fondi

Python 3 and Feature Engineering

Python 3 and Feature Engineering

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 This book is designed for data scientists, machine learning practitioners, and anyone with a foundational understanding of Python 3.x. In the evolving field of data science, the ability to manipulate and understand datasets is crucial. The book offers content for mastering these skills using Python 3. The book provides a fast-paced introduction to a wealth of feature engineering concepts, equipping readers with the knowledge needed to transform raw data into meaningful information. Inside, you’ll find a detailed exploration of various types of data, methodologies for outlier detection using Scikit-Learn, strategies for robust data cleaning, and the intricacies of data wrangling. The book further explores feature selection, detailing methods for handling imbalanced datasets, and gives a practical overview of feature engineering, including scaling and extraction techniques necessary for different machine learning algorithms. It concludes with a treatment of dimensionality reduction, where you’ll navigate through complex concepts like PCA and various reduction techniques, with an emphasis on the powerful Scikit-Learn framework.
FEATURES
    Includes numerous practical examples and partial code blocks that illuminate the path from theory to application
    Explores everything from data cleaning to the subtleties of feature selection and extraction, covering a wide spectrum of feature engineering topics
    Offers an appendix on working with the “awk” command-line utility
    Features companion files available for downloading with source code, datasets, and figures
Anno:
2024
Casa editrice:
Mercury Learning and Information
Lingua:
english
Pagine:
216
ISBN 10:
1683929497
ISBN 13:
9781683929499
File:
PDF, 4.60 MB
IPFS:
CID , CID Blake2b
english, 2024
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