Test-retest reliability of the FALL FIT system for assessing and training protective arm reactions in response to a forward fall
- PMID: 35518921
- PMCID: PMC9062354
- DOI: 10.1016/j.mex.2022.101702
Test-retest reliability of the FALL FIT system for assessing and training protective arm reactions in response to a forward fall
Abstract
The use of the hands and arms is an important protective mechanism in avoiding fall-related injury. The aim of this study was to evaluate the test-retest reliability of fall dynamics and evokd protective arm response kinematics and kinetics in forward falls simulated using the FALL simulator For Injury prevention Training and assessment system (FALL FIT). Fall FIT allows experimental control of the fall height and acceleration of the body during a forward fall. Two falls were simulated starting from 4 initial lean angles in Experiment 1 and with 4 different fall accelerations in Experiment 2. Fourteen younger adults (25.1±3.5 years) and 13 older adults (71.3±3.7 years) participated in Experiment 1 and 13 younger adults (31.8±5.7 years) participated in Experiment 2. Intraclass correlation coefficients (ICC) were used to the evaluate absolute agreement of single measures at each condition and averages across conditions. Average measures of fall dynamics and evoked kinematics and kinetics exhibited excellent reliability (ICC(A,4)>0.86). The reliability of single measures (ICC(A,1) > 0.59) was good to excellent, although 18% of single measures had a reliability (ICC(A,1)) between 0.00 and 0.57. The FALL FIT was shown to have good to excellent reliability for most measures. FALL FIT can produce a wide range of fall dynamics through modulation of initial lean angle and body acceleration. Additionally, the range of fall velocities and evoked kinematics and kinetics are consistent with previous fall research.•The FALL FIT can be used to gain further insight into the control of protective arm reactions and may provide a therapeutic tool to assess and train protective arm reactions.
Keywords: Falls; Injury; Upper extremity.
© 2022 The Author(s). Published by Elsevier B.V.
Conflict of interest statement
The authors declare that they have no known competing financial interests or personal relationships that could have appeared to influence the work reported in this paper.
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References
-
- James S.L., Lucchesi L.R., Bisignano C., Castle C.D., Dingels Z.V., Fox J.T., Hamilton E.B., Henry N.J., Krohn K.J., Liu Z., Mccracken D., Nixon M.R., Roberts N.L.S., Sylte D.O., Adsuar J.C., Arora A., Briggs A.M., Collado-Mateo D., Cooper C., Dandona L., Dandona R., Ellingsen C.L., Fereshtehnejad S.M., Gill T.K., Haagsma J.A., Hendrie D., Jürisson M., Kumar G.A., Lopez A.D., Miazgowski T., Miller T.R., Mini G.K., Mirrakhimov E.M., Mohamadi E., Olivares P.R., Rahim F., Riera L.S., Villafaina S., Yano Y., Hay S.I., Lim S.S., Mokdad A.H., Naghavi M., Murray C.J.L. The global burden of falls: global, regional and national estimates of morbidity and mortality from the global burden of disease study 2017. Inj. Prev. 2019:3–11. doi: 10.1136/injuryprev-2019-043286. - DOI - PMC - PubMed
-
- Jager T.E., Weiss H.B., Coben J.H., Pepe P.E. Traumatic brain injuries evaluated in U.S. emergency departments, 1992–1994. Acad. Emerg. Med. 2000;7:134–140. - PubMed
-
- U.S.D. of H. and H.S. Centers for Disease Control and Prevention, Surveillance report of traumatic brain injury-related hospitalizations and deaths by age group, sex, and mechanism of injury—United States, 2016 and 2017, 2021.
-
- Palvanen M., Kannus P., Parkkari J., Pitkäjärvi T., Pasanen M., Vuori I., Järvinen M. The injury mechanisms of osteoporotic upper extremity fractures among older adults: A controlled study of 287 consecutive patients and their 108 controls. Osteoporos. Int. 2000;11:822–831. doi: 10.1007/s001980070040. - DOI - PubMed
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