Published February 20, 2026 | Version v2

FaiST: Fairness in Speech Technology

Description

The FaiST dataset is an English speech corpus composed of natural, conversational audio gathered from speakers in the United States who represent several racial and ethnic groups. Speakers either explicitly self-identify or are identified by other speakers as belonging to a particular demographic group during the recorded interaction. This work curates these signals to support two primary goals: (i) enabling the community to assess the fairness of speech and language technologies under realistic conversational conditions, and (ii) facilitating the development of more equitable systems through training on data whose demographic labels are grounded in how people describe themselves in context.

The label includes self-identified race, ethnicity, national origin, type of identification, and the span. Span is the exact line in the conversation where a speaker identifies themselves or another speaker as belonging to a certain demographic group. Type is either self-identification (speaker identifies themselves) or other-person in-interaction (speaker identifies someone else).

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Additional details

Related works

Is described by
Conference paper: 10.21437/Interspeech.2025-1102 (DOI)

Funding

U.S. National Science Foundation
FAI: A New Paradigm for the Evaluation and Training of Inclusive Automatic Speech Recognition 2147350