Searching for outliers in the Chandra Source Catalog

Author:

Swarm Dustin K1ORCID,DeRoo C T1ORCID,Liu Y2,Watkins S1

Affiliation:

1. Department of Physics and Astronomy, University of Iowa , 203 Van Allen Hall, Iowa City, IA 52242-1479, USA

2. Iowa Initiative for Artificial Intelligence, University of Iowa , 103 South Capitol Street, Iowa City, IA 52242, USA

Abstract

ABSTRACT Astronomers are increasingly faced with a deluge of information, and finding worthwhile targets of study in the sea of data can be difficult. Outlier identification studies are a method that can be used to focus investigations by presenting a smaller set of sources that could prove interesting because they do not follow the trends of the underlying population. We apply a principal component analysis (PCA) and an unsupervised random forest algorithm (uRF) to sources from the Chandra Source Catalog v.2 (CSC2). We present 119 high-significance sources that appear in all repeated applications of our outlier identification algorithm (OIA). We analyse the characteristics of our outlier sources and cross-match them with the SIMBAD data base. Our outliers contain several sources that were previously identified as having unusual or interesting features by studies. This OIA leads to the identification of interesting targets that could motivate more detailed study.

Funder

Iowa Space Grant Consortium

NASA

CDS

Publisher

Oxford University Press (OUP)

Subject

Space and Planetary Science,Astronomy and Astrophysics

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