Gaitography Applied to Prosthetic Walking
Overview
Medical Informatics
Authors
Affiliations
During walking on an instrumented treadmill with an embedded force platform or grid of pressure sensors, center-of-pressure (COP) trajectories exhibit a characteristic butterfly-like shape, reflecting the medio-lateral and anterior-posterior weight shifts associated with alternating steps. We define "gaitography" as the analysis of such COP trajectories during walking (the "gaitograms"). It is currently unknown, however, if gaitography can be employed to characterize pathological gait, such as lateralized gait impairments. We therefore registered gaitograms for a heterogeneous sample of persons with a trans-femoral and trans-tibial amputation during treadmill walking at a self-selected comfortable speed. We found that gaitograms directly visualize between-person differences in prosthetic gait in terms of step width and the relative duration of prosthetic and non-prosthetic single-support stance phases. We further demonstrated that one should not only focus on the gaitogram's shape but also on the time evolution along that shape, given that the COP evolves much slower in the single-support phase than in the double-support phase. Finally, commonly used temporal and spatial prosthetic gait characteristics were derived, revealing both individual and systematic differences in prosthetic and non-prosthetic step lengths, step times, swing times, and double-support durations. Because gaitograms can be rapidly collected in an unobtrusive and markerless manner over multiple gait cycles without constraining foot placement, clinical application of gaitography seems both expedient and appealing. Studies examining the repeatability of gaitograms and evaluating gaitography-based gait characteristics against a gold standard with known validity and reliability are required before gaitography can be clinically applied.
Cross-step detection using center-of-pressure based algorithm for real-time applications.
Zadravec M, Matjacic Z J Neuroeng Rehabil. 2024; 21(1):161.
PMID: 39285381 PMC: 11403786. DOI: 10.1186/s12984-024-01460-4.
Two-year course of walking adaptability in persons living with late effects of polio.
Tuijtelaars J, Brehm M, Twisk J, Nollet F J Rehabil Med. 2024; 56:jrm14727.
PMID: 38497608 PMC: 10964025. DOI: 10.2340/jrm.v56.14727.
Adeniyi A, Stramel D, Rahman D, Rahman M, Yadav A, Zhou J Sci Rep. 2023; 13(1):19381.
PMID: 37938618 PMC: 10632386. DOI: 10.1038/s41598-023-46145-5.
A Scientometric Analysis and Visualization of Prosthetic Foot Research Work: 2000 to 2022.
Shi Q, Yick K, Wu J, Huang X, Tse C, Chan M Bioengineering (Basel). 2023; 10(10).
PMID: 37892868 PMC: 10604169. DOI: 10.3390/bioengineering10101138.
Six Minutes Walking in Polio Survivors: Effects on Fatigue and Walking Adaptability.
Tuijtelaars J, Keller M, Nollet F, Brehm M, van Dieen J, Roerdink M J Rehabil Med. 2022; 54:jrm00355.
PMID: 36524415 PMC: 9774744. DOI: 10.2340/jrm.v54.2155.