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- Use ensemble methods to improve the performance of predictive analytics models
- Implement feature selection, dimensionality reduction, and cross-validation techniques
- Develop neural network models and master the basics of deep learning

Python is a programming language that provides a wide range of features that can be used in the field of data science. Mastering Predictive Analytics with scikit-learn and TensorFlow covers various implementations of ensemble methods, how they are used with real-world datasets, and how they improve prediction accuracy in classification and regression problems.
This book starts with ensemble methods and their features. You will see that scikit-learn provides tools for choosing hyperparameters for models. As you make your way through the book, you will cover the nitty-gritty of predictive analytics and explore its features and characteristics. You will also be introduced to artificial neural networks and TensorFlow, and how it is used to create neural networks. In the final chapter, you will explore factors such as computational power, along with improvement methods and software enhancements for efficient predictive analytics.
By the end of this book, you will be well-versed in using deep neural networks to solve common problems in big data analysis.

- Use ensemble algorithms to obtain accurate predictions
- Apply dimensionality reduction techniques to combine features and build better models
- Choose the optimal hyperparameters using cross-validation
- Implement different techniques to solve current challenges in the predictive analytics domain
- Understand various elements of deep neural network (DNN) models
- Implement neural networks to solve both classification and regression problems

Download this book in **EPUB** and **PDF** formats

Access this title in our online reader with advanced features

Publication date :
Sep 29, 2018

Length
154 pages

Edition :
1st Edition

Language :
English

ISBN-13 :
9781789617740

Category :

Languages :

Concepts :

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60.97
87.97
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Preface

1. Ensemble Methods for Regression and Classification

2. Cross-validation and Parameter Tuning

3. Working with Features

4. Introduction to Artificial Neural Networks and TensorFlow

5. Predictive Analytics with TensorFlow and Deep Neural Networks

6. Other Books You May Enjoy

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