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View DealMatplotlib is the most popular Python library to visualize data. Any exploratory data analysis performed by an analyst or a scientists first starts off with data visualization which allows them to understand relationships that might exist in the data. Matplotlib is highly customizable and offers powerful features to build graphs and plots which are production-ready.
Here is what this course covers:
Basic figure components: The anatomy of a Matplotlib figure and its customizable parts
Figures, axes, subplots: Components that allow you to layout and customize your graphs
Lines, markers, watermarks: Customize the look at feel of plot components
Shapes, curves, annotations: Highlight significant insights
Boxplots, Violinplots: Draw statistical insights from data
Histograms, pie charts and stacked plots: View different ways to convey statistical information
Color maps and palettes: Get plot aesthetics in the colors of your choice
Autocorrelation: View interesting insights with autocorrelation plots
This course is built around hands on demos, built to explicitly explain concepts underpinning each topic.
Software used: Python 3, Matplotlib
Loonycorn is comprised of a couple of individuals —Janani Ravi and Vitthal Srinivasan—who have honed their tech expertises at Google and Stanford. The team believes it has distilled the instruction of complicated tech concepts into funny, practical, engaging courses, and is excited to be sharing its content with eager students.