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Jennifer Wortman Vaughan
Jennifer Wortman Vaughan
Senior Principal Research Manager, Microsoft Research, New York City
Verified email at microsoft.com - Homepage
Title
Cited by
Cited by
Year
A theory of learning from different domains
S Ben-David, J Blitzer, K Crammer, A Kulesza, F Pereira, JW Vaughan
Machine Learning 79 (1-2), 151-175, 2010
48232010
Datasheets for datasets
T Gebru, J Morgenstern, B Vecchione, JW Vaughan, H Wallach, HD Iii, ...
Communications of the ACM 64 (12), 86-92, 2021
37232021
Improving fairness in machine learning systems: What do industry practitioners need?
K Holstein, J Wortman Vaughan, H Daumé III, M Dudik, H Wallach
Proceedings of the 2019 CHI Conference on Human Factors in Computing Systems …, 2019
14092019
Manipulating and measuring model interpretability
F Poursabzi-Sangdeh, DG Goldstein, JM Hofman, JW Wortman Vaughan, ...
Proceedings of the 2021 CHI Conference on Human Factors in Computing Systems …, 2021
11282021
Understanding the Effect of Accuracy on Trust in Machine Learning Models
M Yin, J Wortman Vaughan, H Wallach
Proceedings of the 2019 CHI Conference on Human Factors in Computing Systems …, 2019
8042019
Interpreting Interpretability: Understanding Data Scientists' Use of Interpretability Tools for Machine Learning
H Kaur, H Nori, S Jenkins, R Caruana, H Wallach, J Wortman Vaughan
Proceedings of the 2020 CHI Conference on Human Factors in Computing Systems …, 2020
7832020
Learning bounds for domain adaptation
J Blitzer, K Crammer, A Kulesza, F Pereira, J Wortman
Advances in neural information processing systems, 129-136, 2007
6332007
Co-designing checklists to understand organizational challenges and opportunities around fairness in ai
MA Madaio, L Stark, J Wortman Vaughan, H Wallach
Proceedings of the 2020 CHI Conference on Human Factors in Computing Systems …, 2020
6212020
Online task assignment in crowdsourcing markets
CJ Ho, JW Vaughan
Twenty-Sixth AAAI Conference on Artificial Intelligence, 2012
4582012
Learning from multiple sources
K Crammer, M Kearns, J Wortman
Journal of Machine Learning Research 9 (Aug), 1757-1774, 2008
3742008
Adaptive task assignment for crowdsourced classification
CJ Ho, S Jabbari, JW Vaughan
Proceedings of the 30th International Conference on Machine Learning (ICML …, 2013
3472013
AI Transparency in the Age of LLMs: A Human-Centered Research Roadmap
QV Liao, JW Vaughan
arXiv preprint arXiv:2306.01941, 2023
2902023
Making Better Use of the Crowd: How Crowdsourcing Can Advance Machine Learning Research.
JW Vaughan
Journal of Machine Learning Research 18, 193:1-193:46, 2017
2722017
Run the GAMUT: A comprehensive approach to evaluating game-theoretic algorithms
E Nudelman, J Wortman, Y Shoham, K Leyton-Brown
AAMAS 4, 880-887, 2004
2622004
Understanding the role of human intuition on reliance in human-AI decision-making with explanations
V Chen, QV Liao, J Wortman Vaughan, G Bansal
Proceedings of the ACM on Human-Computer Interaction 7 (CSCW2), 1-32, 2023
2342023
Assessing the Fairness of AI Systems: AI Practitioners' Processes, Challenges, and Needs for Support
M Madaio, L Egede, H Subramonyam, J Wortman Vaughan, H Wallach
Proceedings of the ACM on Human-Computer Interaction 6 (CSCW1), 1-26, 2022
2292022
The Disparate Effects of Strategic Manipulation
L Hu, N Immorlica, JW Vaughan
ACM Conference on Fairness, Accountability, and Transparency (FAT*), 2019
2292019
The true sample complexity of active learning
MF Balcan, S Hanneke, JW Vaughan
Machine learning 80 (2-3), 111-139, 2010
2292010
Behavioral experiments on biased voting in networks
M Kearns, S Judd, J Tan, J Wortman
Proceedings of the National Academy of Sciences 106 (5), 1347-1352, 2009
2282009
Incentivizing High Quality Crowdwork
CJ Ho, A Slivkins, S Suri, JW Vaughan
Proceedings of the 24th International Conference on World Wide Web, 419-429, 2015
2212015
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Articles 1–20