most citedMiMICRI: Towards Domain-centered Counterfactual Explanations of Cardiovascular Image Classification Models

12 citations · 29 across the 5 of their papers we have counts for

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cs.HC202412 cited

MiMICRI: Towards Domain-centered Counterfactual Explanations of Cardiovascular Image Classification Models

Grace Guo, Lifu Deng, Animesh Tandon +2

The recent prevalence of publicly accessible, large medical imaging datasets has led to a proliferation of artificial intelligence (AI) models for cardiovascular image classificati…

cs.HC20243 cited

What We Augment When We Augment Visualizations: A Design Elicitation Study of How We Visually Express Data Relationships

Grace Guo, John Stasko, Alex Endert

Visual augmentations are commonly added to charts and graphs in order to convey richer and more nuanced information about relationships in the data. However, many design spaces pro…

cs.HC20242 cited

Visualizing Intelligent Tutor Interactions for Responsive Pedagogy

Grace Guo, Aishwarya Mudgal Sunil Kumar, Adit Gupta +3

Intelligent tutoring systems leverage AI models of expert learning and student knowledge to deliver personalized tutoring to students. While these intelligent tutors have demonstra…

cs.HC20241 cited

Explainability in JupyterLab and Beyond: Interactive XAI Systems for Integrated and Collaborative Workflows

Grace Guo, Dustin Arendt, Alex Endert

Explainable AI (XAI) tools represent a turn to more human-centered and human-in-the-loop AI approaches that emphasize user needs and perspectives in machine learning model developm…

cs.HC2020

A Comparative Analysis of Industry Human-AI Interaction Guidelines

Austin P. Wright, Zijie J. Wang, Haekyu Park +6

With the recent release of AI interaction guidelines from Apple, Google, and Microsoft, there is clearly interest in understanding the best practices in human-AI interaction. Howev…

cs.HC202011 cited

Should We Trust (X)AI? Design Dimensions for Structured Experimental Evaluations

Fabian Sperrle, Mennatallah El-Assady, Grace Guo +3

This paper systematically derives design dimensions for the structured evaluation of explainable artificial intelligence (XAI) approaches. These dimensions enable a descriptive cha…