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add new data viz resources
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content/pages/03-data/18-data-visualization.markdown

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question-and-answer format for what you can do with the data is a really
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good model that keeps your attention throughout the post.
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* [How to Generate FiveThirtyEight Graphs in Python](https://www.dataquest.io/blog/making-538-plots/)
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gives a great tutorial on generating a specific style graph with
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[pandas](/pandas.html) and [Matplotlib](/matplotlib.html) that is
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similar to [FiveThirtyEight](https://fivethirtyeight.com/)'s plots.
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### Beautiful example visualizations
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Sometimes you need inspiration from other sources to figure out what
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ton of data analysis and graphing and show numerous ways to slice and
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present information.
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* [How We Animated Trillions of Tons of Flowing Ice](http://dwtkns.com/posts/flowing-ice.html)
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breaks down the process that the NY Times data team used to create the
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beautiful
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[Antarctic Dispatches](https://www.nytimes.com/interactive/2017/05/18/climate/antarctica-ice-melt-climate-change.html)
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articles that show how glaciers and ice are moving.
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### Data visualization resources
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* [Data visualization, from 1987 to today](https://medium.economist.com/data-visualisation-from-1987-to-today-65d0609c6017)
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* [dataviz.tools](http://dataviz.tools/) has a nice list of categorized
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tools for working with data and visualizing it.
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* [Xenographics](https://xeno.graphics/) presents uncommon and unusual
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visualization formats such as the
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[Manhattan Plot](https://xeno.graphics/manhattan-plot/) and
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[Time Curve](https://xeno.graphics/time-curve/).
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* [Engineering Intelligence Through Data Visualization at Uber](https://eng.uber.com/data-viz-intel/)
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explains how Uber's data visualization team grew from 1 person to 15
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and the output they created along the way, including the open source

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