Power to the Oracle? Design Principles for Interactive Labeling Systems in Machine Learning
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Zusammenfassung
Labeling is the process of enclosing information to some object. In machine learning it is required as ground truth to leverage the potential of supervised techniques. A key challenge in labeling is that users are not necessarily eager to behave as simple oracles, that is, repeatedly answering questions whether a label is right or wrong. In this respect, scholars acknowledge designing interactivity in labeling systems as a promising area for further improvements. In recent years, a considerable number of articles focusing on interactive labeling systems have been published. However, there is a lack of consolidated principles how to design these systems. In this article, we identify and discuss five design principles for interactive labeling systems based on a literature review and offer a frame for detecting common ground in the implementation of corresponding solutions. With these guidelines, we strive to contribute design knowledge for the increasingly important class of interactive labeling systems.
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- BibTeX
Nadj, M., Knaeble, M., Li, M. X. & Maedche, A.,
(2020).
Power to the Oracle? Design Principles for Interactive Labeling Systems in Machine Learning.
KI - Künstliche Intelligenz: Vol. 34, No. 2.
Springer.
(S. 131-142).
DOI: 10.1007/s13218-020-00634-1
@article{mci/Nadj2020,
author = {Nadj, Mario AND Knaeble, Merlin AND Li, Maximilian Xiling AND Maedche, Alexander},
title = {Power to the Oracle? Design Principles for Interactive Labeling Systems in Machine Learning},
journal = {KI - Künstliche Intelligenz},
volume = {34},
number = {2},
year = {2020},
,
pages = { 131-142 } ,
doi = { 10.1007/s13218-020-00634-1 }
}
author = {Nadj, Mario AND Knaeble, Merlin AND Li, Maximilian Xiling AND Maedche, Alexander},
title = {Power to the Oracle? Design Principles for Interactive Labeling Systems in Machine Learning},
journal = {KI - Künstliche Intelligenz},
volume = {34},
number = {2},
year = {2020},
,
pages = { 131-142 } ,
doi = { 10.1007/s13218-020-00634-1 }
}
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Mehr Information
ISSN: 1610-1987
Datum: 2020
Typ: Text/Journal Article

