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Human Activity Recognition Dataset for Pedestrians with Mobility Disabilitiesopen access

Authors
Woo, YejiHwang, SungjinOh, SeungwooKang, MyungwonLee, SungyoonKim, JieunCha, JaehyukKim, Kwanguk Kenny
Issue Date
Jan-2026
Publisher
NATURE PORTFOLIO
Citation
SCIENTIFIC DATA, v.13, no.1, pp 1 - 14
Pages
14
Indexed
SCIE
SCOPUS
Journal Title
SCIENTIFIC DATA
Volume
13
Number
1
Start Page
1
End Page
14
URI
https://scholarworks.bwise.kr/hanyang/handle/2021.sw.hanyang/217612
DOI
10.1038/s41597-025-06527-y
ISSN
2052-4463
2052-4463
Abstract
Human activity recognition (HAR) provided several benefits to people without disabilities. Researchers have provided public HAR datasets and developed technologies based on these datasets. However, the activities of pedestrians with mobility disabilities have not been actively investigated because related datasets do not exist. In this study, we compile an HAR dataset comprising basic activities for people with and without mobility disabilities (including activity categories of still, walking, crutches, walkers, manual wheelchairs, and electric wheelchairs). Our dataset contains sensor data from smart devices (smartphones and smartwatches) collected from 120 participants. We also provide baseline analyses of our dataset: (1) recognition tasks according to the pedestrian activities, (2) impact of sensor combinations, (3) classification models, (4) evaluation methods, and (5) combining smartphone and smartwatch sensors. The results indicate that the classification accuracies are 99.64% for the random evaluation and 98.79% for the user-independent evaluation using the best combinations. We hope that this study will expand HAR research for people with mobility disabilities and renew enthusiasm for subsequent applications related to this topic.
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