Abstract Objectives Accurate, continuous spinal posture tracking is critical for understanding musculoskeletal disorders and developing personalized treatment. However, current solutions are costly, obtrusive, or insufficiently accurate in daily life. This study quantifies the accuracy of FlexTail, a flexible, wearable sensor that integrates printed strain-gauge electronics to capture three-dimensional (3D) spinal motion in real-time. Methods FlexTail’s performance is benchmarked with 3D-printed validation templates: three fixed-diameter S-shaped flexion paths (100, 150 and 250 mm flexion diameter), a spine-shaped path, and a 90° torsion path. The measured deformation is compared to the known geometry to quantify the precision of the device. We analyze 10 FlexTail devices and repeat each measure 10 times. Results Across flexion templates, the mean positional error is 3.61 mm. The 250 mm flexion template yields the lowest error, 2.12 mm. The mean torsional error is 0.13°, and the spine-shaped template shows an angular deviation of 1.05° with a positional error of 2.95 mm. The intra-device deviations stay below 0.60 mm and 0.051° for flexion and torsion, respectively. Conclusions FlexTail delivers reliable flexion and torsion tracking with accuracy equal to clinical systems. Its soft, integrated form factor supports long-term, unobtrusive use as a tool for biomechanical analysis and digital health applications.
Masch et al. (Wed,) studied this question.