SKU/Artículo: AMZ-B0GC784RVG

Now Machine Learning Vol1: Supervised Learning: Mastering Regression, Classification, and Predictive Modeling with Python

Format:

Kindle

Kindle

Paperback

Detalles del producto
Disponibilidad:
En stock
Peso con empaque:
0.15 kg
Devolución:
Condición
Nuevo
Producto de:
Amazon
Viaja desde
USA

Sobre este producto
  • What if insuring dragons against fire damage or unicorns from magical mishaps could unlock the secrets of machine learning? Hello, we invite you to join our data science team at AllMyth Coverage, an insurance company that covers mythical creatures. Dragons, unicorns, and plenty of odd edge cases included. Instead of listing algorithms in isolation, we put models to work in a commercial setting. Together, we build, train, and analyze supervised learning models for classification and regression, always connecting the mathematics to the code and to real business decisions. We cover risk classification using decision trees, random forests, and gradient boosted trees. For regression, we explore linear, weighted, and Bayesian regression. We also tackle churn prediction using perceptrons, logistic regression, and neural networks. Along the way, we deal with overfitting, hyperparameter tuning, regularization techniques such as L1, L2, and dropout, and practical feature engineering. Every model is derived step by step, explained with hand worked examples, and then implemented in code. This book assumes basic knowledge of linear algebra, calculus, probability and statistics, and Python. It is written for readers who want to understand how supervised learning models actually work, not just how to use them. Please be aware that the Kindle version will not display equations properly if you will use a PAPER WHITE device. Unfortunately, I cannot select which platforms the book is available on, so please note that this book will not render correctly on paperwhite devices.

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