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    Data Learning Tree:  - Data visualization, Python, Statistics, Data sciences
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      Data visualization and Descriptive Statistics in Python 3

      Hands-on practical lessons ready to be applied to real-word cases
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      • Data visualization and Descriptive Statistics in Python 3
      CoursesData sciencesData visualization and Descriptive Statistics in Python 3
      • Section 1: Getting started with Datavisualization and descriptive statistics course
        2
        • Lecture1.1
          Download and Install Anaconda distribution for Python 08 min
        • Lecture1.2
          Course organization and Jupyter notebook 10 min
      • Section 2: Exploratory data analysis using Python 3 graphical libraries.

        In this section, students will learn how to use Python 3 graphical libraries such as matplotlib, seaborn and pandas to create professional looking charts of real world data.

        13
        • Lecture2.1
          Creating a Pie chart using Python 3 matplotlib graphical library 10 min
        • Lecture2.2
          Side by Side Pie charts using matplotlib library in Python 3 10 min
        • Lecture2.3
          Creating a stacked area plot using Python seaborn library 10 min
        • Lecture2.4
          Creating a scatter plot chart in Python 3 using seaborn library. 10 min
        • Lecture2.5
          Creating a pairplot using Python seaborn graphical library 10 min
        • Lecture2.6
          Using a Boxplot in Pandas seaborn library to compare groups in data 10 min
        • Lecture2.7
          Creating a line plot trend of the data using Python pandas library 10 min
        • Lecture2.8
          Creating a histogram using Python seaborn to analyze data 10 min
        • Lecture2.9
          Creating a Barplot using colors palettes with Python seaborn library (Part 1) 10 min
        • Lecture2.10
          Creating a Barplot using colors palettes with Python seaborn library (Part 2) 10 min
        • Lecture2.11
          Creating a Stacked bar of the missing migrants data using Python seaborn library 10 min
        • Lecture2.12
          Creating a Pareto type barchart using Python seaborn library 10 min
        • Lecture2.13
          Creating a heatmap plot using Python seaborn library 10 min
      • Section 3: Projects and hands on applications
        1
        • Lecture3.1
          Hands on project about visualizations in Python 10 min
      • Section4: Computing descriptive statistics in Python Pandas Part 1

        In this section, we will learn how to use the Pandas library to compute descriptive statistics in Python

        14
        • Lecture4.1
          Analyzing descriptive statistics using Pandas library in Python 3 10 min
        • Lecture4.2
          Analyzing Baseball players data with Pandas in Python 3 10 min
        • Lecture4.3
          Computing descriptive statistics in Python Pandas Part 2 10 min
        • Lecture4.4
          Computing correlation coefficients with Python Scipy library 10 min
        • Lecture4.5
          Computing the coefficient of variation in Python scipy statistics library 10 min
        • Lecture4.6
          Classifying World literacy rate using Pandas libraries in Python 10 min
        • Lecture4.7
          Finding outliers in data using Python Pandas library with quantiles functions 10 min
        • Lecture4.8
          Using Python Scipy library to compute various measures of center of the data 10 min
        • Lecture4.9
          Computing the Z score using Python Scipy library 10 min
        • Lecture4.10
          Computing percentiles of scores and IQR using Python Scipy library 10 min
        • Lecture4.11
          Computing trimmed statistics using Python 3 scipy statistics library 10 min
        • Lecture4.12
          Computing statistics with missing values using the statistics library in Python 10 min
        • Lecture4.13
          Handling missing values using the statistics library in Python 10 min
        • Lecture4.14
          Computing various medians using the Statistics library in Python 10 min
      • Section 5: Computing Descriptive Statistics using the Numpy library in Python

        Students will learn how to use the Numpy library to compute descriptive statistics in Python. In particular, they will learn how to handle missing values when using that library.

        2
        • Lecture5.1
          Handling missing values in Numpy library in Python 10 min
        • Lecture5.2
          Computing Descriptive Statistics using the Numpy library in Python
      • Section 6: Hands on analysis of Descriptive statistics data in Python 3

        Practical applications of the course Datavisualisation and Descriptive statistics

        2
        • Lecture6.1
          Analyzing life expectancy data using exploratory data analysis in Python 10 min
        • Lecture6.2
          Conclusion for the course Datavisualization and Descriptive Statistics in Python 05 min
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