Revealing Neural Network Bias to Non-Experts Through Interactive Counterfactual Examples
January 07, 2020 Β· Declared Dead Β· π arXiv.org
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Authors
Chelsea M. Myers, Evan Freed, Luis Fernando Laris Pardo, Anushay Furqan, Sebastian Risi, Jichen Zhu
arXiv ID
2001.02271
Category
cs.HC: Human-Computer Interaction
Cross-listed
cs.AI
Citations
14
Venue
arXiv.org
Last Checked
4 months ago
Abstract
AI algorithms are not immune to biases. Traditionally, non-experts have little control in uncovering potential social bias (e.g., gender bias) in the algorithms that may impact their lives. We present a preliminary design for an interactive visualization tool CEB to reveal biases in a commonly used AI method, Neural Networks (NN). CEB combines counterfactual examples and abstraction of an NN decision process to empower non-experts to detect bias. This paper presents the design of CEB and initial findings of an expert panel (n=6) with AI, HCI, and Social science experts.
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