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Gina Maskell

Publications and source records attributed to Gina Maskell.

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Treatment Geometry and Causal Identification with Earth Observation Data

A central task in conducting impact evaluations is determining who or what was exposed to a treatment, when, and to what degree. These questions can be especially complex in geospatial settings, where many reasonable definitions of exposure may exist. This chapter introduces treatment geometry as a core concept in geospatial impact evaluation (GIE): the spatial and temporal footprint of a treatment as represented in data. How this footprint is defined shapes identification strategies and the credibility of causal inference. Drawing on cases spanning the air pollution, wildfire, forest policy, infrastructure, pest, and food security literature, the chapter provides practical guidance on navigating key tradeoffs (including spatial resolution, temporal alignment, spillovers, and boundary uncertainty) that arise when translating real-world interventions into analyzable data. Rather than prescribing a single best approach, the chapter equips researchers with a framework for diagnosing which geometry decisions may matter most in their context, closing with synthesis questions to help readers navigate these decisions.

econ.EM

The uses (and misuses) of Earth Observation data for weather and vegetation analysis

Integrating gridded Earth observation and weather data into impact evaluations holds great promise. These data allow researchers to capture environmental context, external shocks, and intervention outcomes (e.g., land cover change and agricultural production) that surveys might miss due to spatial or temporal data collection constraints. However, with great power comes great responsibility: The growing ease with which researchers can extract and analyze time series from these datasets can obscure complex geospatial and measurement issues affecting the magnitude, direction, and interpretation of impact estimates. This chapter highlights common challenges associated with the use of weather, vegetation, and extreme event data in the context of geospatial impact evaluation, while providing practical guidance and resources to help researchers judiciously use and avoid misusing these datasets.

physics.soc-ph