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May 29, 20260 citationsOpen Access

Proximity Alert: Ipelets for Neighborhood Graphs and Clustering (Media Exposition)

GBGitan BaloghJCJune CaganBFBea Fatima

Key Points

  • The aim is to highlight the functionality of Ipelets in visualizing neighborhood graphs and clustering algorithms.
  • Showcase a set of Ipelets developed for neighborhood graph and clustering visualization.
  • Include various types of graphs like ε-neighbor, k-nearest neighbor, and clustering methods such as k-means and DBSCAN.
  • Ipelets programmed in Lua and freely available for use.
  • Demonstrated the versatility of Ipelets in visualizing multiple graph types and clustering algorithms.
  • Provided a user-friendly way to gain insights into complex data relationships through visualization.

Abstract

Neighborhood graphs and clustering algorithms are fundamental structures in both computational geometry and data analysis. Visualizing them can help build insight into their behavior and properties. The Ipe extensible drawing editor, developed by Otfried Cheong, is a widely used software system for generating figures. One particular aspect of Ipe is the ability to add Ipelets, which extend its functionality. Here we showcase a set of Ipelets designed to help visualize neighborhood graphs and clustering algorithms. These include: ε-neighbor graphs, furthest-neighbor graphs, Gabriel graphs, k-nearest neighbor graphs, k-th-nearest neighbor graphs, k-mutual neighbor graphs, k-th-mutual neighbor graphs, asymmetric k-nearest neighbor graphs, asymmetric k-th-nearest neighbor graphs, relative-neighbor graphs, sphere-of-influence graphs, Urquhart graphs, Yao graphs, and clustering algorithms including complete-linkage, DBSCAN, HDBSCAN, k-means, k-means++, k-medoids, mean shift, and single-linkage. Our Ipelets are all programmed in Lua and are freely available.

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Cite This Study

Balogh et al. (2026) studied this question.

synapsesocial.com/papers/6a192e39fab5b468c44172fbhttps://doi.org/10.4230/lipics.socg.2026.99
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