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    1. Data och IT
    2. Systemvetenskap och AI

    Advanced Python Programming

    Build high performance, concurrent, and multi-threaded apps with Python using proven design patterns

    AvDr. Gabriele Lanaro,Quan Nguyen

    Häftad, Engelska, 2019

    503 kr

    Beställningsvara. Skickas inom 5-8 vardagar. Fri frakt över 249 kr.

    Beskrivning

    Create distributed applications with clever design patterns to solve complex problemsKey FeaturesSet up and run distributed algorithms on a cluster using Dask and PySparkMaster skills to accurately implement concurrency in your codeGain practical experience of Python design patterns with real-world examplesBook DescriptionThis Learning Path shows you how to leverage the power of both native and third-party Python libraries for building robust and responsive applications. You will learn about profilers and reactive programming, concurrency and parallelism, as well as tools for making your apps quick and efficient. You will discover how to write code for parallel architectures using TensorFlow and Theano, and use a cluster of computers for large-scale computations using technologies such as Dask and PySpark. With the knowledge of how Python design patterns work, you will be able to clone objects, secure interfaces, dynamically choose algorithms, and accomplish much more in high performance computing.By the end of this Learning Path, you will have the skills and confidence to build engaging models that quickly offer efficient solutions to your problems.This Learning Path includes content from the following Packt products:Python High Performance - Second Edition by Gabriele LanaroMastering Concurrency in Python by Quan NguyenMastering Python Design Patterns by Sakis KasampalisWhat you will learnUse NumPy and pandas to import and manipulate datasetsAchieve native performance with Cython and NumbaWrite asynchronous code using asyncio and RxPyDesign highly scalable programs with application scaffoldingExplore abstract methods to maintain data consistencyClone objects using the prototype patternUse the adapter pattern to make incompatible interfaces compatibleEmploy the strategy pattern to dynamically choose an algorithmWho this book is forThis Learning Path is specially designed for Python developers who want to build high-performance applications and learn about single core and multi-core programming, distributed concurrency, and Python design patterns. Some experience with Python programming language will help you get the most out of this Learning Path.

    Produktinformation

    • Utgivningsdatum:2019-02-28
    • Mått:75 x 93 x 36 mm
    • Vikt:1 233 g
    • Format:Häftad
    • Språk:Engelska
    • Antal sidor:672
    • Förlag:Packt Publishing Limited
    • ISBN:9781838551216

    Utforska kategorier

    • Systemvetenskap och AI inom Data och IT
    • Programspråk inom Data och IT

    Mer om författaren

    Dr. Gabriele Lanaro is passionate about good software and is the author of the chemlab and chemview open source packages. His interests span machine learning, numerical computing visualization, and web technologies. In 2013, he authored the first edition of the book High Performance Python Programming. He has been conducting research to study the formation and growth of crystals using medium and large-scale computer simulations. In 2017, he obtained his PhD in theoretical chemistry. Quan Nguyen is a Python enthusiast and data scientist. Currently, he works as a data analysis engineer at Micron Technology, Inc. With a strong background in mathematics and statistics, Quan is interested in the fields of scientific computing and machine learning. With data analysis being his focus, Quan also enjoys incorporating technology automation into everyday tasks through programming. Quan's passion for Python programming has led him to be heavily involved in the Python community. He started as a primary contributor for the Python for Scientists and Engineers book and various open source projects on GitHub. Quan is also a writer for the Python software foundation and an occasional content contributor for DataScience.com (part of Oracle). Sakis Kasampalis is a software engineer living in the Netherlands. He is not dogmatic about particular programming languages and tools; his principle is that the right tool should be used for the right job. One of his favorite tools is Python because he finds it very productive. Sakis has also technically reviewed the Mastering Object-oriented Python and Learning Python Design Patterns books, both published by Packt Publishing.

    Innehållsförteckning

    • Table of ContentsBenchmarking and ProfilingPure Python OptimizationsFast Array Operations with NumPy and Pandas C Performance with CythonExploring CompilersImplementing Concurrency Parallel ProcessingAdvanced Introduction to Concurrent and Parallel ProgrammingAmdahl's LawWorking with Threads in PythonUsing the with Statement in ThreadsConcurrent Web RequestsWorking with Processes in PythonReduction Operators in ProcessesConcurrent Image ProcessingIntroduction to Asynchronous ProgrammingImplementing Asynchronous Programming in PythonBuilding Communication Channels with asyncioDeadlocksStarvationRace ConditionsThe Global Interpreter Lock The Factory PatternThe Builder PatternOther Creational PatternsThe Adapter PatternThe Decorator PatternThe Bridge PatternThe Facade PatternOther Structural PatternsThe Chain of Responsibility PatternThe Command PatternThe Observer Pattern