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  • Book Overview & Buying Mastering Julia
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Mastering Julia

Mastering Julia - Second Edition

By : Malcolm Sherrington
4.3 (3)
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Mastering Julia

Mastering Julia

4.3 (3)
By: Malcolm Sherrington

Overview of this book

Julia 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.
Table of Contents (14 chapters)
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Relational databases

The primary difference between relational and non-relational databases is the way data is stored. Relational databases were not the first architectures to be implemented; those based on single (and then multiple) indices and values preceded them. As we will see later, they are making something of a comeback with the constraints of handling large datasets.

Relational data is tabular by nature and hence stored in tables with rows and columns. Tables can be related to one another and cooperate in data storage as well as swift retrieval.

Data storage in relational databases aims for higher normalization, breaking up the data into the smallest possible logical tables (related) to prevent duplication and gain tighter space utilization.

While normalization of data leads to cleaner data management, it often adds a little complexity, especially to data management, where a single operation may have to span numerous related tables. Since the databases are on a single...

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Mastering Julia
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