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Updated: Sep 27, 2026

Movement Retraining using Real-time Feedback of Performance
Published on: January 17, 2013
Technical evaluation of transport-derived movement trajectories during knee osteoarthritis rehabilitation
Pooja Kumari Kumari Jha1, Vikas Kumar2, Jagannatha Sahoo3
1Indian Institute of Technology Guwahati, Indian Institute of Technology Guwahati, Guwahati, 781039, India.
Abstract:
Wearable inertial sensors enable repeated movement recording during knee osteoarthritis rehabilitation, but methods for summarizing multivariable changes across routine sessions remain exploratory. This retrospective technical evaluation examined a normalized transport-derived deviation (NTD) constructed from paired shank-mounted inertial measurement units. Seven participants contributed 46 paired-sensor sessions over 45 days. An approximately 30 s active movement segment from each session was divided into 13 windows and represented using 58 time-domain, frequency-domain and cross-sensor features. Session distributions were compared with each participant's first usable sensor session using an archived entropically regularized transport implementation. The output was normalized by the baseline-to-final-session value. Mean NTD values at the scheduled assessment days were 0.00, 0.02, 0.23, 0.63 and 1.00. Fourteen of the 46 displayed values were structurally constrained baseline or final values; no monotonic constraint was applied to the 32 interior observations, which formed non-decreasing trajectories. At interior scheduled days 5, 15 and 30, absolute differences between mean NTD and participant-adjusted normalized elapsed time were 0.057, 0.076 and 0.019. Twenty-one of the 46 archived calculations reached the 500-iteration limit without meeting the 1 × 10-6 residual criterion. A log-domain stabilized recomputation of all 46 primary comparisons satisfied a 1 × 10-8 criterion, with a mean absolute archived-to-stabilized NTD difference of 0.004 (maximum 0.018) across the 32 interior observations. Across support-point counts of 100 to 1000, interior archived NTD values changed by 0.009 to 0.026 on average. Routine paired-shank recordings were organized into ordered longitudinal trajectories and the resulting trajectory structure was numerically reproducible under the evaluated implementation. NTD should presently be interpreted as an implementation-specific retrospective coordinate rather than a validated rehabilitation outcome. By defining the requirements for standardized movement tasks, prospective normalization and reproducible sensor placement, these findings provide a practical foundation for prospective validation of transport-based rehabilitation assessment.
