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PMID: 17519338 Published · ppublish English Journal Article Research Support, N.I.H., Extramural

Density-equalizing Euclidean minimum spanning trees for the detection of all disease cluster shapes.

Wieland SC, Brownstein JS, Berger B, Mandl KD

Abstract

Existing disease cluster detection methods cannot detect clusters of all shapes and sizes or identify highly irregular sets that overestimate the true extent of the cluster. We introduce a graph-theoretical method for detecting arbitrarily shaped clusters based on the Euclidean minimum spanning tree of cartogram-transformed case locations, which overcomes these shortcomings. The method is illustrated by using several clusters, including historical data sets from West Nile virus and inhalational anthrax outbreaks. Sensitivity and accuracy comparisons with the prevailing cluster detection method show that the method performs similarly on approximately circular historical clusters and greatly improves detection for noncircular clusters.

MeSH Terms
Anthrax/epidemiology,microbiology,pathology Boston/epidemiology Cluster Analysis New York/epidemiology Russia/epidemiology Sensitivity and Specificity Time Factors West Nile Fever/epidemiology,pathology,virology
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Wieland Shannon C
Department of Mathematics, Massachusetts Institute of Technology, Cambridge, MA 02139-4307, USA.
Brownstein John S
Berger Bonnie
Mandl Kenneth D
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Article Info
Journal
Proceedings of the National Academy of Sciences of the United States of America
Abbr.
Proc Natl Acad Sci U S A
ISSN
0027-8424
Published
2007-05-29
Epub
2007-00-22
Pages
9404-9
Language
English
Region
United States
NLM ID
7505876
PMCID
PMC1890507
Subset
IM
Grants
NLM NIH HHS · R01 LM007677 · United States
NLM NIH HHS · LM 007677-03S1 · United States
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