Camera Configuration for Wearable Electronic Travel Aids Supporting Urban Mobility of Visually Impaired People

Visually impaired people face urban mobility hazards such as vehicles, pedestrians, curbs, and steps. Wearable electronic travel aids can support obstacle avoidance only when these hazards fall within sensing coverage. Existing studies have focused mainly on algorithms and human–computer interaction, while the sensing coverage required by real-world hazards remains less examined. We collected 1486 min of street-scene video, built urban mobility hazard samples, and used simulation to compare target pixel counts over time for cameras with different horizontal fields of view. Among 81,353 valid samples, hazards showed concentrated high-frequency categories and a rich long tail, mainly including vehicles, scooters, pedestrians, curbs, bollards, poles, trees, and steps. Simulation showed that a horizontal field of view of approximately 120° balanced pixel coverage and sustained observation. We then built a chest-mounted four-camera prototype and conducted a feasibility demonstration at a real intersection. Camera configuration should therefore be guided by real-world hazard visibility, and coordinated multi-camera coverage is a promising design choice for wearable ETAs in urban environments.

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Publication Details

Journal
Sensors
Published
2026-09-15
DOI
https://doi.org/10.3390/s26185841
Primary Topic
Tactile and Sensory Interactions
Type
article
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article

Camera Configuration for Wearable Electronic Travel Aids Supporting Urban Mobility of Visually Impaired People

Jinjing Zhao, J. P. Zheng, Yancheng Li, Jingjing Xu et al.
Sensors
Tactile and Sensory Interactions
article

Camera Configuration for Wearable Electronic Travel Aids Supporting Urban Mobility of Visually Impaired People

Jinjing Zhao, J. P. Zheng, Yancheng Li, Jingjing Xu, Yiding Liu, Shengyong Xu, Caiyi Wang, Xuantuo Huang
article en

Abstract

Visually impaired people face urban mobility hazards such as vehicles, pedestrians, curbs, and steps. Wearable electronic travel aids can support obstacle avoidance only when these hazards fall within sensing coverage. Existing studies have focused mainly on algorithms and human–computer interaction, while the sensing coverage required by real-world hazards remains less examined. We collected 1486 min of street-scene video, built urban mobility hazard samples, and used simulation to compare target pixel counts over time for cameras with different horizontal fields of view. Among 81,353 valid samples, hazards showed concentrated high-frequency categories and a rich long tail, mainly including vehicles, scooters, pedestrians, curbs, bollards, poles, trees, and steps. Simulation showed that a horizontal field of view of approximately 120° balanced pixel coverage and sustained observation. We then built a chest-mounted four-camera prototype and conducted a feasibility demonstration at a real intersection. Camera configuration should therefore be guided by real-world hazard visibility, and coordinated multi-camera coverage is a promising design choice for wearable ETAs in urban environments.

SensorsVol. 26(18)
Shandong University (CN), Peking University (CN)
Sustainable cities and communities
Openalex Percentile: Top 9%
Tactile and Sensory Interactions
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Camera Configuration for Wearable Electronic Travel Aids Supporting Urban Mobility of Visually Impaired People — Jinjing Zhao, J. P. Zheng, et al. · Sensors (2026) | TGRS Research Map | TGRS