Jalil Villalobos Alva Villalobos Alva Beginning Mathematica and Wolfram for Data Science

Beginning Mathematica and Wolfram for Data Science

von Jalil Villalobos Alva

Applications in Data Analysis, Machine Learning, and Neural Networks

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Beschreibung

Enhance your data science programming and analysis with the Wolfram programming language and Mathematica, an applied mathematical tools suite. The book will introduce you to the Wolfram programming language and its syntax, as well as the structure of Mathematica and its advantages and disadvantages.You’ll see how to use the Wolfram language for data science from a theoretical and practical perspective. Learning this language makes your data science code better because it is very intuitive and comes with pre-existing functions that can provide a welcoming experience for those who use other programming languages. You’ll cover how to use Mathematica where data management and mathematical computations are needed. Along the way you’ll appreciate how Mathematica provides a complete integrated platform: it has a mixed syntax as a result of its symbolic and numerical calculations allowing it to carry out various processes without superfluous lines of code. You’ll learn to use its notebooks as a standard format, which also serves to create detailed reports of the processes carried out. You will:Use Mathematica to explore data and describe the concepts using Wolfram language commandsCreate datasets, work with data frames, and create tablesImport, export, analyze, and visualize dataWork with the Wolfram data repositoryBuild reports on the analysisUse Mathematica for machine learning, with different algorithms, including linear, multiple, and logistic regression; decision trees; and data clustering

Enhance your data science programming and analysis with the Wolfram programming language and Mathematica, an applied mathematical tools suite. The book will introduce you to the Wolfram programming language and its syntax, as well as the structure of Mathematica and its advantages and disadvantages.

You’ll see how to use the Wolfram language for data science from a theoretical and practical perspective. Learning this language makes your data science code better because it is very intuitive and comes with pre-existing functions that can provide a welcoming experience for those who use other programming languages. 

You’ll cover how to use Mathematica where data management and mathematical computations are needed. Along the way you’ll appreciate how Mathematica provides a complete integrated platform: it has a mixed syntax as a result of its symbolic and numerical calculations allowing it to carry out various processes without superfluous lines of code. You’ll learn to use its notebooks as a standard format, which also serves to create detailed reports of the processes carried out. 

What You Will Learn

Who This Book Is For

Data scientists new to using Wolfram and Mathematica as a language/tool to program in. Programmers should have some prior programming experience, but can be new to the Wolfram language.


The first introduction to data science using Mathematica and Wolfram Covers very popular in-demand topics such as machine learning and neural networks Includes freely available source code

Autor*in

Jalil Villalobos Alva

Themen in »Beginning Mathematica and Wolfram for Data Science«

programming data science Wolfram Mathematica language big data machine learning cloud analytics coding software software neural nets

Stimmen zu »Beginning Mathematica and Wolfram for Data Science«

Details

ISBN: 9781484265932
Verlag: APRESS
Erscheinung: 02.02.2021

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