Mastering Julia : Enhance Your Analytical and Programming Skills for Data Modeling and Processing with Julia

Λεπτομέρειες βιβλιογραφικής εγγραφής
Τίτλος: Mastering Julia : Enhance Your Analytical and Programming Skills for Data Modeling and Processing with Julia
Περιγραφή: A hands-on, code-based guide to leveraging Julia in a variety of scientific and data-driven scenariosKey FeaturesAugment your basic computing skills with an in-depth introduction to JuliaFocus on topic-based approaches to scientific problems and visualisationBuild on prior knowledge of programming languages such as Python, R, or C/C++Purchase of the print or Kindle book includes a free PDF eBookBook DescriptionJulia is a well-constructed programming language which was designed for fast execution speed by using just-in-time LLVM compilation techniques, thus eliminating the classic problem of performing analysis in one language and translating it for performance in a second. This book is a primer on Julia's approach to a wide variety of topics such as scientific computing, statistics, machine learning, simulation, graphics, and distributed computing. Starting off with a refresher on installing and running Julia on different platforms, you'll quickly get to grips with the core concepts and delve into a discussion on how to use Julia with various code editors and interactive development environments (IDEs). As you progress, you'll see how data works through simple statistics and analytics and discover Julia's speed, its real strength, which makes it particularly useful in highly intensive computing tasks. You'll also and observe how Julia can cooperate with external processes to enhance graphics and data visualization. Finally, you will explore metaprogramming and learn how it adds great power to the language and establish networking and distributed computing with Julia. By the end of this book, you'll be confident in using Julia as part of your existing skill set.What you will learnDevelop simple scripts in Julia using the REPL, code editors, and web-based IDEsGet to grips with Julia's type system, multiple dispatch, metaprogramming, and macro developmentInteract with data files, tables, data frames, SQL, and NoSQL databasesDelve into statistical analytics, linear programming, and optimization problemsCreate graphics and visualizations to enhance modeling and simulation in JuliaUnderstand Julia's main approaches to machine learning, Bayesian analysis, and AIWho this book is forThis book is not an introduction to computer programming, but a practical guide for developers who want to enhance their basic knowledge of Julia, or those wishing to augment their skill set by adding Julia to their existing roster of programming languages. Familiarity with a scripting language such as Python or R, or a compiled language such as C/C++, C# or Java, is a prerequisite.
Συγγραφείς: Malcolm Sherrington
Resource Type: eBook.
Θέματα: Numerical analysis--Data processing, Julia (Computer program language), Programming languages (Electronic computers)
Categories: COMPUTERS / Programming / Open Source, COMPUTERS / Programming / General, COMPUTERS / Languages / General
Βάση Δεδομένων: eBook Index
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  Data: A hands-on, code-based guide to leveraging Julia in a variety of scientific and data-driven scenariosKey FeaturesAugment your basic computing skills with an in-depth introduction to JuliaFocus on topic-based approaches to scientific problems and visualisationBuild on prior knowledge of programming languages such as Python, R, or C/C++Purchase of the print or Kindle book includes a free PDF eBookBook DescriptionJulia is a well-constructed programming language which was designed for fast execution speed by using just-in-time LLVM compilation techniques, thus eliminating the classic problem of performing analysis in one language and translating it for performance in a second. This book is a primer on Julia's approach to a wide variety of topics such as scientific computing, statistics, machine learning, simulation, graphics, and distributed computing. Starting off with a refresher on installing and running Julia on different platforms, you'll quickly get to grips with the core concepts and delve into a discussion on how to use Julia with various code editors and interactive development environments (IDEs). As you progress, you'll see how data works through simple statistics and analytics and discover Julia's speed, its real strength, which makes it particularly useful in highly intensive computing tasks. You'll also and observe how Julia can cooperate with external processes to enhance graphics and data visualization. Finally, you will explore metaprogramming and learn how it adds great power to the language and establish networking and distributed computing with Julia. By the end of this book, you'll be confident in using Julia as part of your existing skill set.What you will learnDevelop simple scripts in Julia using the REPL, code editors, and web-based IDEsGet to grips with Julia's type system, multiple dispatch, metaprogramming, and macro developmentInteract with data files, tables, data frames, SQL, and NoSQL databasesDelve into statistical analytics, linear programming, and optimization problemsCreate graphics and visualizations to enhance modeling and simulation in JuliaUnderstand Julia's main approaches to machine learning, Bayesian analysis, and AIWho this book is forThis book is not an introduction to computer programming, but a practical guide for developers who want to enhance their basic knowledge of Julia, or those wishing to augment their skill set by adding Julia to their existing roster of programming languages. Familiarity with a scripting language such as Python or R, or a compiled language such as C/C++, C# or Java, is a prerequisite.
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