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FLASC: a flare-sensitive clustering algorithm
by
Peeters, Jannes
, Aerts, Jan
, Bot, Daniël M.
, Liesenborgs, Jori
in
Algorithms
/ Algorithms and Analysis of Algorithms
/ Analysis
/ Approximation
/ Branch-hierarchy detection
/ Clustering
/ Computing costs
/ Connectivity
/ Data analysis
/ Data Mining and Machine Learning
/ Data points
/ Data Science
/ Density-based clustering
/ Exploratory data analysis
/ HDBSCAN
/ Information management
/ Subgroups
2025
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FLASC: a flare-sensitive clustering algorithm
by
Peeters, Jannes
, Aerts, Jan
, Bot, Daniël M.
, Liesenborgs, Jori
in
Algorithms
/ Algorithms and Analysis of Algorithms
/ Analysis
/ Approximation
/ Branch-hierarchy detection
/ Clustering
/ Computing costs
/ Connectivity
/ Data analysis
/ Data Mining and Machine Learning
/ Data points
/ Data Science
/ Density-based clustering
/ Exploratory data analysis
/ HDBSCAN
/ Information management
/ Subgroups
2025
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Do you wish to request the book?
FLASC: a flare-sensitive clustering algorithm
by
Peeters, Jannes
, Aerts, Jan
, Bot, Daniël M.
, Liesenborgs, Jori
in
Algorithms
/ Algorithms and Analysis of Algorithms
/ Analysis
/ Approximation
/ Branch-hierarchy detection
/ Clustering
/ Computing costs
/ Connectivity
/ Data analysis
/ Data Mining and Machine Learning
/ Data points
/ Data Science
/ Density-based clustering
/ Exploratory data analysis
/ HDBSCAN
/ Information management
/ Subgroups
2025
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Journal Article
FLASC: a flare-sensitive clustering algorithm
2025
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Overview
Exploratory data analysis workflows often use clustering algorithms to find groups of similar data points. The shape of these clusters can provide meaningful information about the data. For example, a Y-shaped cluster might represent an evolving process with two distinct outcomes. This article presents flare-sensitive clustering (FLASC), an algorithm that detects branches within clusters to identify such shape-based subgroups. FLASC builds upon HDBSCAN*—a state-of-the-art density-based clustering algorithm—and detects branches in a post-processing step using within-cluster connectivity. Two algorithm variants are presented, which trade computational cost for noise robustness. We show that both variants scale similarly to HDBSCAN* regarding computational cost and provide similar outputs across repeated runs. In addition, we demonstrate the benefit of branch detection on two real-world data sets. Our implementation is included in the hdbscan Python package and available as a standalone package at https://github.com/vda-lab/pyflasc .
Publisher
PeerJ. Ltd,PeerJ, Inc,PeerJ Inc
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