Revealing Neural Network Bias to Non-Experts Through Interactive Counterfactual Examples

Myers, Chelsea M., Freed, Evan, Pardo, Luis Fernando Laris, Furqan, Anushay, Risi, Sebastian, Zhu, Jichen

arXiv.org Artificial Intelligence 

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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