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Python for Data Visualization - A Beginner's Guide · LearnSpace
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Python for Data Visualization - A Beginner's Guide

Курс от Packt
Начальный≈ 8.8 чАнглийский
О курсеНавыкиПрограммаПреподаватели

О курсе

This course features Coursera Coach! A smarter way to learn with interactive, real-time conversations that help you test your knowledge, challenge assumptions, and deepen your understanding as you progress through the course. In this course, you'll learn how to effectively use Python for data visualization. You will start by setting up your environment and installing key libraries like Anaconda, Matplotlib, Seaborn, and Cufflinks, which are the cornerstone tools for data visualization in Python. You'll explore reading and processing data with Pandas, setting the stage for building powerful visuals. As the course progresses, you’ll dive deeper into creating different types of plots, including line plots, histograms, bar charts, scatter plots, and time-series visualizations. You'll master various customization techniques to modify colors, labels, axes, and styles to enhance the clarity and impact of your visualizations. You’ll also learn to manage multiple plots in a single figure, use Seaborn for aesthetic charts, and get hands-on with Plotly and Cufflinks for interactive, 3D visualizations. The course is perfect for beginners with no prior experience in Python or data visualization. It is designed for anyone interested in leveraging Python to present data in engaging, meaningful ways. By the end of the course, you will be able to confidently create visualizations using Matplotlib, Seaborn, and Plotly. You will also be able to visualize time-series data and manage data visuals in multi-plot layouts, making it ideal for those who want to enhance their data analysis skills. By the end of the course, you will be able to create line, bar, scatter, and 3D plots, visualize time-series data, and manipulate chart aesthetics to communicate complex data insights effectively.

Навыки, которые вы освоите

Data ProcessingData VisualizationData Import/ExportStatistical VisualizationPlot (Graphics)Regression AnalysisPandas (Python Package)Data Manipulation

Программа курса

9 модулей · 67 учебных материалов

01Setup and Installation5 материалов

Setup and Installation

Installing the Anaconda NavigatorВидеоFull Course ResourcesЧтениеInstalling Matplotlib, Seaborn, and CufflinksВидеоReading Data from a CSV File with PandasВидео

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Packt - Course Instructors

Преподаватель курса

Python for Data Visualization - A Beginner's Guide
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Обучение на Coursera

≈ 8.8 ч

9 модулей

Язык: Английский

Часть программы вашего университета
Explaining Matplotlib LibrariesВидео
02Plotting Line Plots with Matplotlib10 материалов

Plotting Line Plots with Matplotlib

Changing the Axis ScalesВидеоLabel StylingВидеоAdding a LegendВидеоChanging Colors, Line Styles, Line Width, and MarkersВидеоAdding a Grid to the ChartВидеоFilling Only a Specific AreaВидеоFilling Area on Line Plots and Filling Only Specific AreasВидеоChanging Fill Color of Different Areas (Negative Versus Positive, For Example)ВидеоCustomizing Matplotlib Graphs: Axes, Labels, Styles, Fill, and LegendsDIALOGUEPlotting Line Plots with Matplotlib - AssessmentЗадание
03Plotting Histograms and Bar Charts with Matplotlib14 материалов

Plotting Histograms and Bar Charts with Matplotlib

Changing Edge Color and Adding Shadow on the EdgeВидеоAdding Legends, Titles, Location, and Rotating Pie ChartВидеоHistograms Versus Bar Charts (Part 1)ВидеоHistograms Versus Bar Charts (Part 2)ВидеоChanging Edge Color of the HistogramВидеоChanging the Axis Scale to Log ScaleВидеоAdding Median to HistogramВидеоAdvanced Histograms and Patches (Part 1)ВидеоAdvanced Histograms and Patches (Part 2)ВидеоOverlaying Bar Plots on Top of Each Other (Part 1)ВидеоOverlaying Bar Plots on Top of Each Other (Part 2)ВидеоCreating Box and Whisker PlotsВидеоInteractive Data Visualization TechniquesDIALOGUEPlotting Histograms and Bar Charts with Matplotlib - AssessmentЗадание
04Plotting Stack Plots and Stem Plots5 материалов

Plotting Stack Plots and Stem Plots

Plotting a Basic Stack PlotВидеоPlotting a Stem PlotВидеоPlotting a Stack Plot of Data with Constant TotalВидеоUsing and Customizing Stack Plots and Stem PlotsDIALOGUEPlotting Stack Plots and Stem Plots - AssessmentЗадание
05Plotting Scatter Plots with Matplotlib6 материалов

Plotting Scatter Plots with Matplotlib

Plotting a Basic Scatter PlotВидеоChanging the Size of the DotsВидеоChanging Colors of MarkersВидеоAdding Edges to DotsВидеоUnderstanding Scatter Plot Customizations in Data VisualizationDIALOGUEPlotting Scatter Plots with Matplotlib - AssessmentЗадание
06Time Series Data Visualization with Matplotlib6 материалов

Time Series Data Visualization with Matplotlib

Using the Python Datetime ModuleВидеоConnecting Data Points by LineВидеоConverting String Dates Using the .to_datetime() Pandas MethodВидеоPlotting Live Data Using FuncAnimation in MatplotlibВидеоUnderstanding Python's datetime Module and Date FormatsDIALOGUETime Series Data Visualization with Matplotlib - AssessmentЗадание
07Creating Multiple Subplots6 материалов

Creating Multiple Subplots

Setting Up the Number of Rows and ColumnsВидеоPlotting Multiple Plots in One FigureВидеоGetting Separate FiguresВидеоSaving Figures to Your ComputerВидеоUnderstanding and Using Subplots in Data VisualizationDIALOGUECreating Multiple Subplots - AssessmentЗадание
08Plotting Charts Using Seaborn9 материалов

Plotting Charts Using Seaborn

Introduction to SeabornВидеоWorking on Hue, Style, and Size in SeabornВидеоSubplots Using SeabornВидеоLine PlotsВидеоCat PlotsВидеоJointplot, Pair Plot, and Regression PlotВидеоControlling Plotted Figure AestheticsВидеоUnderstanding Seaborn Plot Functions and ParametersDIALOGUEPlotting Charts Using Seaborn - AssessmentЗадание
09Plotly and Cufflinks6 материалов

Plotly and Cufflinks

Installation and SetupВидеоLine, Scatter, Bar, Box, and Area PlotsВидео3D Plots, Spread Plot, Hist Plot, Bubble Plot, and HeatmapВидеоPlotly and Cufflinks - AssessmentЗаданиеFull Course Practice AssessmentЗаданиеFull Course AssessmentЗадание