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Evaluating statistical uncertainties and correlations using the bootstrap method

The bootstrap method is a powerful technique to evaluate the statistical uncertainty of a measurement and correlations between bins. This method uses a set of replicas of the nominal dataset, derived by introducing Poisson perturbations corresponding to statistical fluctuations. Each replica is then...

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Autor principal: The ATLAS collaboration
Lenguaje:eng
Publicado: 2021
Materias:
Acceso en línea:http://cds.cern.ch/record/2759945
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author The ATLAS collaboration
author_facet The ATLAS collaboration
author_sort The ATLAS collaboration
collection CERN
description The bootstrap method is a powerful technique to evaluate the statistical uncertainty of a measurement and correlations between bins. This method uses a set of replicas of the nominal dataset, derived by introducing Poisson perturbations corresponding to statistical fluctuations. Each replica is then analyzed in the same way as the nominal dataset to arrive at a set of replica measurements. The statistical uncertainty and correlations can then be extracted from these replica measurements. This note describes a version of the bootstrap method suitable for data analysis in high energy physics and provides an associated software implementation. Various applications are discussed, such as determining the statistical error on systematic uncertainties. A novel feature of the provided software is that the fluctuations that generate the bootstrap replicas are deterministic. This makes it is possible to evaluate statistical correlations between measurements that are using fully or partially overlapping input data, even if the associated analyses are performed by different teams, or years apart.
id cern-2759945
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2021
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spelling cern-27599452021-12-21T09:55:14Zhttp://cds.cern.ch/record/2759945engThe ATLAS collaborationEvaluating statistical uncertainties and correlations using the bootstrap methodParticle Physics - ExperimentThe bootstrap method is a powerful technique to evaluate the statistical uncertainty of a measurement and correlations between bins. This method uses a set of replicas of the nominal dataset, derived by introducing Poisson perturbations corresponding to statistical fluctuations. Each replica is then analyzed in the same way as the nominal dataset to arrive at a set of replica measurements. The statistical uncertainty and correlations can then be extracted from these replica measurements. This note describes a version of the bootstrap method suitable for data analysis in high energy physics and provides an associated software implementation. Various applications are discussed, such as determining the statistical error on systematic uncertainties. A novel feature of the provided software is that the fluctuations that generate the bootstrap replicas are deterministic. This makes it is possible to evaluate statistical correlations between measurements that are using fully or partially overlapping input data, even if the associated analyses are performed by different teams, or years apart.ATL-PHYS-PUB-2021-011oai:cds.cern.ch:27599452021-04-05
spellingShingle Particle Physics - Experiment
The ATLAS collaboration
Evaluating statistical uncertainties and correlations using the bootstrap method
title Evaluating statistical uncertainties and correlations using the bootstrap method
title_full Evaluating statistical uncertainties and correlations using the bootstrap method
title_fullStr Evaluating statistical uncertainties and correlations using the bootstrap method
title_full_unstemmed Evaluating statistical uncertainties and correlations using the bootstrap method
title_short Evaluating statistical uncertainties and correlations using the bootstrap method
title_sort evaluating statistical uncertainties and correlations using the bootstrap method
topic Particle Physics - Experiment
url http://cds.cern.ch/record/2759945
work_keys_str_mv AT theatlascollaboration evaluatingstatisticaluncertaintiesandcorrelationsusingthebootstrapmethod