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May 8, 2026IEEE Computer Graphics and Applications0 citations

Accessible Fine-grained Data Representation via Spatial Audio

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CLCan LiuWJWenjie JiangSRShaolun Ruan

Key Points

  • The aim is to improve data accessibility for blind and low-vision individuals through spatial audio representation.
  • User study with 26 participants, including 10 blind and low-vision participants.
  • Participants performed four data perception tasks.
  • Comparison of spatial audio and pitch representation techniques.
  • Spatial audio significantly improved recognition of data signs and exact values compared to pitch representation.
  • Performance on data trend identification was similar between the two representations.
  • Spatial audio had inferior accuracy on data value comparison.

Abstract

Pitch-based sonification of quantitative data increases the accessibility of data visualizations that are otherwise inaccessible for blind and low-vision (BLV) individuals. We argue that, although pitch representations can reveal the coarse-grained information of data, such as data trend and value comparison, they cannot effectively convey the fine-grained details like the sign and exact value of individual data points. Informed by existing sound perception research, we propose a spatial audio-based approach by representing data values as the sound direction in the azimuth plane to achieve accessible fine-grained data representation. We conducted a user study with 26 participants (including 10 BLV participants) on four data perception tasks. The results show our approach significantly outperforms pitch representation on fine-grained data perception tasks like recognizing data signs and exact values, and performs similarly on data trend identification, despite its inferior accuracy on data value comparison.

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Cite This Study

Liu et al. (2026) studied this question.

synapsesocial.com/papers/69fd7d94bfa21ec5bbf05f4ahttps://doi.org/10.1109/mcg.2026.3690590
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Spatial Audio-Enhanced Multimodal Graph Rendering for Efficient Data Trend Learning on Touchscreen Devices2024 · 3 citations
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  4. 4Parallel Chords: an audio-visual analytics design for parallel coordinates2024 · 1 citations
  5. 5Humans use local spectrotemporal correlations to detect rising and falling pitch2024