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February 26, 2026Sensors1 citationsOpen Access

A High-Frequency Wearable IMU-Based System for Countermovement Jump Assessment

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APAntonio Pousibet-GarridoCBCristina BenaventeJMJ. A. Moreno-Pérez

Key Points

  • This research aims to develop and validate a wearable IMU system for assessing countermovement jumps.
  • Developed a custom inertial measurement unit (IMU) system for CMJ on the lower back.
  • Tested system with 119 CMJ trials from 19 participants against a force platform.
  • Implemented an algorithm for detecting take-off and landing based on vertical acceleration.
  • Achieved a detection rate of 97.43% for jump assessment.
  • Showed slight underestimation of flight time with a bias of -0.0117 seconds.
  • Provided effective field-based monitoring despite some variability compared to force-platform measurements.

Abstract

The countermovement jump (CMJ) is widely used to monitor neuromuscular performance in sport, but its assessment is largely dependent on force platforms, which limits their use outside the laboratory due to their cost and limited portability. This work describes the development and validation of a fully custom wearable inertial measurement unit (IMU) system for CMJ assessment. The platform is based on a single IMU placed on the lower back and sampled at 1 kHz, and includes Bluetooth Low Energy (BLE) communication together with dedicated PC and smartphone applications. A new algorithm based on the derivative of vertical acceleration was implemented to identify take-off and landing instants. The system was evaluated using 119 CMJ trials performed by 19 participants and validated against a force platform used as the criterion reference. Different acceleration thresholds were tested, with 0.2 g providing the best compromise between detection robustness and the statistical quality of the measurements, yielding a detection rate of 97.43%. Agreement analysis showed a small systematic underestimation of flight time (bias = −0.0117 s), with moderate limits of agreement across the observed range. These results indicate that the proposed system may be suitable for practical, field-based CMJ monitoring, although the observed variability relative to force-platform measurements should be considered, particularly in applications requiring individual-level decision making.

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Cite This Study

Pousibet-Garrido et al. (2026) studied this question.

synapsesocial.com/papers/699f95951bc9fecf3dab3709https://doi.org/10.3390/s26051408
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