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Computer Science > Artificial Intelligence

Title: EXMOS: Explanatory Model Steering Through Multifaceted Explanations and Data Configurations

Abstract: Explanations in interactive machine-learning systems facilitate debugging and improving prediction models. However, the effectiveness of various global model-centric and data-centric explanations in aiding domain experts to detect and resolve potential data issues for model improvement remains unexplored. This research investigates the influence of data-centric and model-centric global explanations in systems that support healthcare experts in optimising models through automated and manual data configurations. We conducted quantitative (n=70) and qualitative (n=30) studies with healthcare experts to explore the impact of different explanations on trust, understandability and model improvement. Our results reveal the insufficiency of global model-centric explanations for guiding users during data configuration. Although data-centric explanations enhanced understanding of post-configuration system changes, a hybrid fusion of both explanation types demonstrated the highest effectiveness. Based on our study results, we also present design implications for effective explanation-driven interactive machine-learning systems.
Comments: This is a pre-print version only for early release. Please view the conference published version from ACM CHI 2024 to get the latest version of the paper
Subjects: Artificial Intelligence (cs.AI); Human-Computer Interaction (cs.HC)
Journal reference: Proceedings of the CHI Conference on Human Factors in Computing Systems (CHI '24), May 11--16, 2024, Honolulu, HI, USA
DOI: 10.1145/3613904.3642106
Cite as: arXiv:2402.00491 [cs.AI]
  (or arXiv:2402.00491v1 [cs.AI] for this version)

Submission history

From: Aditya Bhattacharya [view email]
[v1] Thu, 1 Feb 2024 10:57:00 GMT (3813kb,D)

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