CRP 3500

Urban Data Analytics

Cornell University · UGRD · Fall 2026

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Urban data science is an emergent practice in urban planning and geography that combines: 1) the set of data analysis tools and methods used to understand a wide array of big data and big spatial data sources and, 2) questions of urban development, structure, complexity, theory, policy, dynamics, and outcomes. These approaches enable more spatiotemporally dynamic and granular analyses of cities and allow researchers new insight into urban dynamics. This course will provide a toolkit to speak through data, code, statistics, and visualization. Using open-source data and computational tools in Python and the Jupyter Notebook environment, we will learn how to design testable research questions, collect and prepare data, apply relevant analytical techniques, and present our process and results in an engaging and informative way. A personal laptop will be required. Undergraduates and graduates at all levels are welcome. Basic statistics is a prerequisite; no prior programming knowledge is required.

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Class #cornell_2-CRP3500Fall 2026UGRD3 credits
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