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dc.contributor.authorLucas, Philippde
dc.contributor.authorGiesen, Joachimde
dc.date.accessioned2023-01-19T12:18:39Z
dc.date.available2023-01-19T12:18:39Z
dc.date.issued2021de
dc.identifier.issn2475-9066de
dc.identifier.urihttps://www.ssoar.info/ssoar/handle/document/84507
dc.description.abstractResearch in machine learning and applied statistics has led to the development of a plethora of different types of models. Lumen aims to make a particular yet broad class of models, namely, probabilistic models, more easily accessible to humans. Lumen does so by providing an interactive web application for the visual exploration, comparison, and validation of probabilistic models together with underlying data. As the main feature of Lumen a user can rapidly and incrementally build flexible and potentially complex interactive visualizations of both the probabilistic model and the data that the model was trained on. Many classic machine learning methods learn models that predict the value of some target variable(s) given the value of some input variable(s). Probabilistic models go beyond this point estimation by predicting instead of a particular value a probability distribution over the target variable(s). This allows, for instance, to estimate the prediction’s uncertainty, a highly relevant quantity. For a demonstrative example consider a model predicts that an image of a suspicious skin area does not show a malignant tumor. Here it would be extremely valuable to additionally know whether the model is sure to 99.99% or just 51%, that is, to know the uncertainty in the model’s prediction. Lumen is build on top of the modelbase back-end, which provides a SQL-like interface for querying models and its data (Lucas, 2020).de
dc.languageende
dc.subject.ddcSozialwissenschaften, Soziologiede
dc.subject.ddcSocial sciences, sociology, anthropologyen
dc.subject.otherAllgemeine Bevölkerungsumfrage der Sozialwissenschaften ALLBUS 2016 (ZA5250 v2.1.0)de
dc.titleLumen: A software for the interactive visualization of probabilistic models together with datade
dc.description.reviewbegutachtet (peer reviewed)de
dc.description.reviewpeer revieweden
dc.source.journalThe journal of open source software : a developer friendly journal for research software packages
dc.source.volume63de
dc.publisher.countryUSAde
dc.source.issue6de
dc.subject.classozErhebungstechniken und Analysetechniken der Sozialwissenschaftende
dc.subject.classozMethods and Techniques of Data Collection and Data Analysis, Statistical Methods, Computer Methodsen
dc.subject.thesozALLBUSde
dc.subject.thesozALLBUSen
dc.subject.thesozSoftwarede
dc.subject.thesozsoftwareen
dc.subject.thesozModellde
dc.subject.thesozmodelen
dc.subject.thesozDatende
dc.subject.thesozdataen
dc.subject.thesozVisualisierungde
dc.subject.thesozvisualizationen
dc.subject.thesozWahrscheinlichkeitde
dc.subject.thesozprobabilityen
dc.subject.thesozcomputerunterstütztes Lernende
dc.subject.thesozcomputer aided learningen
dc.subject.thesozinteraktive Mediende
dc.subject.thesozinteractive mediaen
dc.subject.thesozOnline-Dienstde
dc.subject.thesozonline serviceen
dc.identifier.urnurn:nbn:de:0168-ssoar-84507-2
dc.rights.licenceCreative Commons - Namensnennung 4.0de
dc.rights.licenceCreative Commons - Attribution 4.0en
ssoar.contributor.institutionFDBde
internal.statusformal und inhaltlich fertig erschlossende
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dc.type.stockarticlede
dc.type.documentZeitschriftenartikelde
dc.type.documentjournal articleen
dc.source.pageinfo1-4de
internal.identifier.classoz10105
internal.identifier.journal2496
internal.identifier.document32
internal.identifier.ddc300
dc.identifier.doihttps://doi.org/10.21105/joss.03395de
dc.description.pubstatusVeröffentlichungsversionde
dc.description.pubstatusPublished Versionen
internal.identifier.licence16
internal.identifier.pubstatus1
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