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Visualizing Statistical Data Using Seaborn

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Janani Ravi

1:43:51

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  • 0101.Course Overview.mp4
    02:06
  • 0201.Module Overview.mp4
    01:25
  • 0202.Prerequisites and Course Overview.mp4
    01:43
  • 0203.Installing Seaborn and Exploring the Wine Dataset.mp4
    03:57
  • 0204.Matplotlib and Seaborn.mp4
    05:58
  • 0205.The Kernel Density Estimation (KDE).mp4
    04:43
  • 0206.Visualizing Univariate Distributions Histograms, KDE Plots, Rugplots.mp4
    06:12
  • 0207.Visualizing Bivariate Distributions Jointplots, Hexbin Plots, KDE Plots.mp4
    04:48
  • 0208.Pairwise Relationships Using Pairplot and Correlations Using Heatmap.mp4
    05:38
  • 0209.Regression Plots Using Lmplot.mp4
    05:18
  • 0210.Regression Plots Using Regplot.mp4
    02:24
  • 0211.Stripplots and Swarmplots for Categorical Data.mp4
    02:51
  • 0212.The Boxplot and the Violinplot.mp4
    03:21
  • 0213.Statistical Estimation and Factorplots.mp4
    06:12
  • 0301.Module Overview.mp4
    00:57
  • 0302.Working with Facetgrids.mp4
    03:46
  • 0303.Facetgrids with Regplots.mp4
    05:38
  • 0304.Facetgrids with Barplots.mp4
    02:21
  • 0305.Customizing Facetgrids.mp4
    03:37
  • 0306.Working with Pairgrids.mp4
    05:48
  • 0307.Exploring the Bike Rental Dataset.mp4
    07:35
  • 0401.Module Overview.mp4
    00:48
  • 0402.Themes and Figure Styles.mp4
    04:01
  • 0403.Qualitative Color Palettes.mp4
    04:42
  • 0404.Sequential and Cubehelix Palettes.mp4
    02:31
  • 0405.Diverging Color Palettes.mp4
    01:39
  • 0406.Figure Aesthetics.mp4
    02:32
  • 0407.Summary and Further Study.mp4
    01:20
  • Description


    Data analysts and scientists are tasked with extracting information and insights from huge datasets. This course introduces the Seaborn Python library helping engineers communicate information via its high-level and powerful visualization tools.

    What You'll Learn?


      As deep learning approaches to machine learning rise in popularity, models are increasingly hard to understand and pick apart. Consequently, the need for sophisticated visualizations of the data going into the model is becoming more and more urgent and important. In this course, Visualizing Statistical Data Using Seaborn, you will work with Seaborn which has powerful libraries to visualize and explore your data. Seaborn works closely with the PyData stack - it is built on top of Matplotlib and integrated with NumPy, Pandas, Statsmodels, and other Python libraries for data science You will start off by visualizing univariate and bivariate distributions. You will get to build regression plots, KDE curves, and histograms to extract insights from data. Next, you will use Seaborn to visualize pairwise relationships of high dimensionality using the FacetGrid and PairGrid. Plot aesthetics, color, and style are important elements to making your visualizations memorable. Given this, you will study the color palettes available in Seaborn and see how you can manipulate specific plot elements in our graph. At the end of this course you will be very comfortable using Seaborn libraries to build powerful, interesting and vivid visualizations - an important precursor to using data in machine learning. Software required: Seaborn 0.8, Python 3.x.

    More details


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    Janani has a Masters degree from Stanford and worked for 7+ years at Google. She was one of the original engineers on Google Docs and holds 4 patents for its real-time collaborative editing framework. After spending years working in tech in the Bay Area, New York, and Singapore at companies such as Microsoft, Google, and Flipkart, Janani finally decided to combine her love for technology with her passion for teaching. She is now the co-founder of Loonycorn, a content studio focused on providing high-quality content for technical skill development. Loonycorn is working on developing an engine (patent filed) to automate animations for presentations and educational content.
    Pluralsight, LLC is an American privately held online education company that offers a variety of video training courses for software developers, IT administrators, and creative professionals through its website. Founded in 2004 by Aaron Skonnard, Keith Brown, Fritz Onion, and Bill Williams, the company has its headquarters in Farmington, Utah. As of July 2018, it uses more than 1,400 subject-matter experts as authors, and offers more than 7,000 courses in its catalog. Since first moving its courses online in 2007, the company has expanded, developing a full enterprise platform, and adding skills assessment modules.
    • language english
    • Training sessions 28
    • duration 1:43:51
    • level preliminary
    • Release Date 2023/10/11