2022
DOI: 10.1371/journal.pdig.0000088
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Automated step detection with 6-minute walk test smartphone sensors signals for fall risk classification in lower limb amputees

Abstract: Predictive models for fall risk classification are valuable for early identification and intervention. However, lower limb amputees are often neglected in fall risk research despite having increased fall risk compared to age-matched able-bodied individuals. A random forest model was previously shown to be effective for fall risk classification of lower limb amputees, however manual labelling of foot strikes was required. In this paper, fall risk classification is evaluated using the random forest model, using … Show more

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Cited by 4 publications
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