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    Beginning Data Science with Python and Jupyter: Use powerful tools to unlock actionable insights from data

    Posted By: GFX_MAN
    Beginning Data Science with Python and Jupyter: Use powerful tools to unlock actionable insights from data

    Beginning Data Science with Python and Jupyter: Use powerful tools to unlock actionable insights from data
    English | 2018 | ISBN: 1789532027 | 141 pages | True AZW3 | 7.96 MB

    Getting started with data science doesn't have to be an uphill battle. This step-by-step guide is ideal for beginners who know a little Python and are looking for a quick, fast-paced introduction.

    Key Features
    Get up and running with the Jupyter ecosystem and some example datasets
    Learn about key machine learning concepts like SVM, KNN classifiers and Random Forests
    Discover how you can use web scraping to gather and parse your own bespoke datasets

    Book Description
    Get to grips with the skills you need for entry-level data science in this hands-on Python and Jupyter course. You'll learn about some of the most commonly used libraries that are part of the Anaconda distribution, and then explore machine learning models with real datasets to give you the skills and exposure you need for the real world. We'll finish up by showing you how easy it can be to scrape and gather your own data from the open web, so that you can apply your new skills in an actionable context.

    What you will learn
    Identify potential areas of investigation and perform exploratory data analysis
    Plan a machine learning classification strategy and train classification models
    Use validation curves and dimensionality reduction to tune and enhance your models
    Scrape tabular data from web pages and transform it into Pandas DataFrames
    Create interactive, web-friendly visualizations to clearly communicate your findings

    Who This Book Is For
    This book is ideal for professionals with a variety of job descriptions across large range of industries, given the rising popularity and accessibility of data science. You'll need some prior experience with Python, with any prior work with libraries like Pandas, Matplotlib and Pandas providing you a useful head start.