Untangling the knots: A procedure for identifying discernibility conflicts on a cartographic line

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Abstract

Reducing detail on polyline features aids in legibility, allowing features to appear more distinct and preventing coalescence with other features. Current metrics for evaluating generalization outcomes emphasize geometric change rather than legibility. The present study reports on development and testing of a vector-based metric of the discernibility of a single polyline feature or group of features, defined as the absence of visual coalescence at a target map scale. This metric prioritizes legibility problems due to resolution and the physical/optical limits of discernibility. The metric identifies specific locations of coalescence, and is invariant to translation and rotation, providing a consistent measure across display contexts. A procedure for computing the above definition of discernibility and identifying the locations of discernibility conflicts will be presented. The algorithm is currently being tested in python code, and the goal is to include this tool in an open source python toolbox for cartographic generalization assessment.

Suggested Citation

Kronenfeld, B.J., Buttenfield, B.P., Stanislawski, L., and Shavers, E.J., 2024, Untangling the knots: A procedure for identifying discernibility conflicts on a cartographic line, Cartography and Geographic Information Society (CaGIS) and the University Consortium for Geographic Information Science (UCGIS) 2024 Symposium, Columbus, OH, June 3-6, 2024, 48, 4 p.

Publication type Conference Paper
Publication Subtype Conference Paper
Title Untangling the knots: A procedure for identifying discernibility conflicts on a cartographic line
Year Published 2024
Language English
Publisher The Cartography and Geographic Information Society (CaGIS) and the University Consortium for Geographic Information Science (UCGIS)
Contributing office(s) Center for Geospatial Information Science (CEGIS)
Description 48, 4 p.
Conference Title Cartography and Geographic Information Society (CaGIS) and the University Consortium for Geographic Information Science (UCGIS) 2024 Symposium
Conference Location Columbus, OH
Conference Date June 3-6, 2024
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