Applied Sciences· 2026Q2
Akıllı Telefon Tabanlı Hareket Yakalama, Biyomekanik Analiz İçin Uygulanabilirliği Gösterdi
Smartphone-Based Estimation of Ground Reaction Forces and Lower-Limb Kinematics During Functional Tasks Using OpenCap: A Feasibility Study
- 0atıf
- Q2SCImago
- 2026yıl
Kısa özet
Yapılan bir fizibilite çalışması, akıllı telefon tabanlı işaretsiz hareket yakalama sistemi olan OpenCap'in, sagittal düzlem hareketleri ve sonuç GRF'leri için laboratuvar ekipmanlarıyla yüksek uyumla (%0.988'den büyük kosinüs benzerliği) alt ekstremite kinematiğini ve yer tepki kuvvetlerini (GRF'ler) tahmin edebildiğini buldu.
Yapay zekâ ile başlık ve abstract'tan üretildi; tam metin okunmaz.
Özet (abstract)
(1) Background: Markerless motion capture may enable scalable biomechanical assessment outside laboratory environments, yet its applicability to tasks involving elevated foot contacts and rapid loading transitions remains insufficiently characterized. This feasibility study evaluated OpenCap, an open-source smartphone-based markerless system, for estimating lower-limb kinematics and ground reaction forces during stair ascent, stair descent, squat, sit-to-stand, and forward lunge. (2) Methods: One healthy adult completed three repetitions of each task while data were acquired simultaneously with three smartphones, an eight-camera Vicon system, and two force plates. OpenCap/OpenSim outputs were adapted for stair and lunge kinetics and compared with marker-based kinematics and force-plate measurements using root mean square error, Pearson correlation, and cosine similarity. (3) Results: Agreement was strongest for sagittal-plane lower-limb kinematics, particularly knee flexion-extension (RMSE: 1.4–10.5 deg; Pearson: 0.94–0.999). Larger discrepancies occurred for hip internal-external rotation, pelvis motion during sit-to-stand, and ankle flexion-extension. Resultant GRF waveforms showed high similarity to force-plate data (cosine similarity ≥ 0.988; RMSE: 0.069–0.167 BW). Stair descent produced the largest deviations and variability, particularly for single-limb forces. (4) Conclusions: In this feasibility study, smartphone-based markerless analysis agreed best with laboratory measurements for sagittal lower-limb kinematics and resultant GRF waveforms but showed larger discrepancies in multiplanar kinematics and limb-specific loading. The adapted pipeline is technically feasible for exploratory movement analysis, although larger, repeated-session studies are needed before clinical use.
Yazarların özeti; kaynağından alınmıştır. Applied Sciences, 2026 · DOI ↗
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