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2012 | OriginalPaper | Chapter

Evaluation of Spatial Cluster Detection Algorithms for Crime Locations

Authors : Marco Helbich, Michael Leitner

Published in: Challenges at the Interface of Data Analysis, Computer Science, and Optimization

Publisher: Springer Berlin Heidelberg

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Abstract

This comparative analysis examines the suitability of commonly applied local cluster detection algorithms. The spatial distribution of an observed spatial crime pattern for Houston, TX, for August 2005 is examined by three different cluster detection methods, including the Geographical Analysis Machine, the Besag and Newell statistic, and Kulldorff’s spatial scan statistic. The results suggest that the size and locations of the detected clusters are sensitive to the chosen parameters of each method. Results also vary among the methods. We thus recommend to apply multiple different cluster detection methods to the same data and to look for commonalities between the results. Most confidence will then be given to those spatial clusters that are common to as many methods as possible.

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Metadata
Title
Evaluation of Spatial Cluster Detection Algorithms for Crime Locations
Authors
Marco Helbich
Michael Leitner
Copyright Year
2012
Publisher
Springer Berlin Heidelberg
DOI
https://doi.org/10.1007/978-3-642-24466-7_20

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