Ismael Mendoza, Andrii Torchylo, Thomas Sainrat, Axel Guinot, Alexandre Boucaud, Maxime Paillasa, Camille Avestruz, Prakruth Adari, Eric Aubourg, Biswajit Biswas, James Buchanan, Patricia Burchat, Cyrille Doux, Remy Joseph, Sowmya Kamath, Alex I. Malz, Grant Merz, Hironao Miyatake, Cécile Roucelle, Tianqing Zhang, the LSST Dark Energy Science Collaboration
{"title":"混合工具包:评估星系检测和去混叠的模拟框架","authors":"Ismael Mendoza, Andrii Torchylo, Thomas Sainrat, Axel Guinot, Alexandre Boucaud, Maxime Paillasa, Camille Avestruz, Prakruth Adari, Eric Aubourg, Biswajit Biswas, James Buchanan, Patricia Burchat, Cyrille Doux, Remy Joseph, Sowmya Kamath, Alex I. Malz, Grant Merz, Hironao Miyatake, Cécile Roucelle, Tianqing Zhang, the LSST Dark Energy Science Collaboration","doi":"arxiv-2409.06986","DOIUrl":null,"url":null,"abstract":"We present an open source Python library for simulating overlapping (i.e.,\nblended) images of galaxies and performing self-consistent comparisons of\ndetection and deblending algorithms based on a suite of metrics. The package,\nnamed Blending Toolkit (BTK), serves as a modular, flexible, easy-to-install,\nand simple-to-use interface for exploring and analyzing systematic effects\nrelated to blended galaxies in cosmological surveys such as the Vera Rubin\nObservatory Legacy Survey of Space and Time (LSST). BTK has three main\ncomponents: (1) a set of modules that perform fast image simulations of blended\ngalaxies, using the open source image simulation package GalSim; (2) a module\nthat standardizes the inputs and outputs of existing deblending algorithms; (3)\na library of deblending metrics commonly defined in the galaxy deblending\nliterature. In combination, these modules allow researchers to explore the\nimpacts of galaxy blending in cosmological surveys. Additionally, BTK provides\nresearchers who are developing a new deblending algorithm a framework to\nevaluate algorithm performance and make principled comparisons with existing\ndeblenders. BTK includes a suite of tutorials and comprehensive documentation.\nThe source code is publicly available on GitHub at\nhttps://github.com/LSSTDESC/BlendingToolKit.","PeriodicalId":501163,"journal":{"name":"arXiv - PHYS - Instrumentation and Methods for Astrophysics","volume":"59 1","pages":""},"PeriodicalIF":0.0000,"publicationDate":"2024-09-11","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"The Blending ToolKit: A simulation framework for evaluation of galaxy detection and deblending\",\"authors\":\"Ismael Mendoza, Andrii Torchylo, Thomas Sainrat, Axel Guinot, Alexandre Boucaud, Maxime Paillasa, Camille Avestruz, Prakruth Adari, Eric Aubourg, Biswajit Biswas, James Buchanan, Patricia Burchat, Cyrille Doux, Remy Joseph, Sowmya Kamath, Alex I. 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The Blending ToolKit: A simulation framework for evaluation of galaxy detection and deblending
We present an open source Python library for simulating overlapping (i.e.,
blended) images of galaxies and performing self-consistent comparisons of
detection and deblending algorithms based on a suite of metrics. The package,
named Blending Toolkit (BTK), serves as a modular, flexible, easy-to-install,
and simple-to-use interface for exploring and analyzing systematic effects
related to blended galaxies in cosmological surveys such as the Vera Rubin
Observatory Legacy Survey of Space and Time (LSST). BTK has three main
components: (1) a set of modules that perform fast image simulations of blended
galaxies, using the open source image simulation package GalSim; (2) a module
that standardizes the inputs and outputs of existing deblending algorithms; (3)
a library of deblending metrics commonly defined in the galaxy deblending
literature. In combination, these modules allow researchers to explore the
impacts of galaxy blending in cosmological surveys. Additionally, BTK provides
researchers who are developing a new deblending algorithm a framework to
evaluate algorithm performance and make principled comparisons with existing
deblenders. BTK includes a suite of tutorials and comprehensive documentation.
The source code is publicly available on GitHub at
https://github.com/LSSTDESC/BlendingToolKit.