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Data Science  with Python

You're reading from   Data Science with Python Combine Python with machine learning principles to discover hidden patterns in raw data

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Product type Paperback
Published in Jul 2019
Publisher Packt
ISBN-13 9781838552862
Length 426 pages
Edition 1st Edition
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Authors (3):
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Rohan Chopra Rohan Chopra
Author Profile Icon Rohan Chopra
Rohan Chopra
Mohamed Noordeen Alaudeen Mohamed Noordeen Alaudeen
Author Profile Icon Mohamed Noordeen Alaudeen
Mohamed Noordeen Alaudeen
Aaron England Aaron England
Author Profile Icon Aaron England
Aaron England
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Toc

Table of Contents (10) Chapters Close

About the Book 1. Introduction to Data Science and Data Pre-Processing FREE CHAPTER 2. Data Visualization 3. Introduction to Machine Learning via Scikit-Learn 4. Dimensionality Reduction and Unsupervised Learning 5. Mastering Structured Data 6. Decoding Images 7. Processing Human Language 8. Tips and Tricks of the Trade 1. Appendix

Keras

Keras is an open-source, high-level neural network API written in Python. It is capable of running on top of TensorFlow, Microsoft Cognitive Toolkit (CNTK), or Theano. Keras was developed to enable fast experimentation and thus help in rapid application development. Using Keras, one can get from idea to result with the least possible delay. Keras supports almost all the latest data science models relating to neural networks due to the huge community support. It contains multiple implementations of commonly used building blocks such as layers, batch normalization, dropout, objective functions, activation functions, and optimizers. Also, Keras allows users to create models for smartphones (Android and iOS), the web, or for the Java Virtual Machine (JVM). With Keras, you can train your models on your GPU without any change in code.

Given all these features of Keras, it is imperative for data scientists to learn how to use all the different aspects of the library. Mastering the use of Keras...

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