Validity of the eJamar Game Controller for Measuring Hand Range of Motion and Grip Strength in Hand Rehabilitation
Abstract
1. Introduction
2. Materials and Methods
2.1. eJamar Game Controller
2.2. Angle Estimation Method
2.3. ROM Assessment Graphical User Interface
2.4. Validation Procedure
2.4.1. Participants
2.4.2. Protocol
2.5. Statistical Analysis
2.6. Use of the GenAI
3. Results
3.1. Robot-Based Validation of eJGC Angle Measures
3.2. Performance of eJGC with Patients
3.2.1. ROM Correlations for Most Affected Hand
3.2.2. ROM Correlations for Less Affected Hand
3.2.3. Analysis for Hand Grip Strength
4. Discussion
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| ADL | activities of daily living |
| AR | agreement rate |
| eJGC | eJamar game controller |
| DoF | degrees of freedom |
| GUI | graphical user interface |
| HGS | hand grip strength |
| ICC | intraclass correlation coefficient |
| IMU | inertial measurement unit |
| MAE | mean absolute error |
| ROM | range of motion |
| RS | rehabilitation specialist |
References
- Yang, Z.; Lim, P.P.H.; Teo, S.H.; Chen, H.; Qiu, H.; Pua, Y.H. Association of wrist and forearm range of motion measures with self-reported functional scores amongst patients with distal radius fractures: A longitudinal study. BMC Musculoskelet. Disord. 2018, 19, 142. [Google Scholar] [CrossRef] [PubMed]
- Norkin, C.C.; White, D.J. Measurement of Joint Motion: A Guide to Goniometry; FA Davis: Philadelphi, PA, USA, 2016. [Google Scholar]
- Ryu, J.; Cooney, W.P., III; Askew, L.J.; An, K.N.; Chao, E.Y. Functional ranges of motion of the wrist joint. J. Hand Surg. 1991, 16, 409–419. [Google Scholar] [CrossRef] [PubMed]
- Keller, M.M.; Barnes, R.; Brandt, C.; Hepworth, L.M. Hand rehabilitation programmes for second to fifth metacarpal fractures: A systematic literature review. S. Afr. J. Physiother. 2021, 77, 1536. [Google Scholar] [CrossRef] [PubMed]
- Pozmohova, N.; Bogdanovska, N.; Kalonova, I.; Boichenko, C.; Bessarabova, O. Effect of occupational therapy intervention in a comprehensive rehabilitation program on patients with early rheumatoid arthritis. J. Phys. Educ. Sport 2021, 21, 3024–3029. [Google Scholar]
- Vaishya, R.; Misra, A.; Vaish, A.; Ursino, N.; D’Ambrosi, R. Hand grip strength as a proposed new vital sign of health: A narrative review of evidences. J. Heal. Popul. Nutr. 2024, 43, 7. [Google Scholar] [CrossRef] [PubMed]
- Kassay, A.D.; Daher, B.; Lalone, E. An analysis of wrist and forearm range of motion using the Dartfish motion analysis system. J. Hand Ther. 2021, 34, 604–611. [Google Scholar] [CrossRef] [PubMed]
- Gandbhir, V.N.; Cunha, B. Goniometer. 2025. Available online: https://www.ncbi.nlm.nih.gov/books/NBK558985/ (accessed on 20 March 2026).
- McGrath, R.; Johnson, N.; Klawitter, L.; Mahoney, S.; Trautman, K.; Carlson, C.; Rockstad, E.; Hackney, K.J. What are the association patterns between handgrip strength and adverse health conditions? A topical review. SAGE Open Med. 2020, 8, 2050312120910358. [Google Scholar] [CrossRef] [PubMed]
- Beaudart, C.; Rolland, Y.; Cruz-Jentoft, A.J.; Bauer, J.M.; Sieber, C.; Cooper, C.; Al-Daghri, N.; Araujo de Carvalho, I.; Bautmans, I.; Bernabei, R.; et al. Assessment of muscle function and physical performance in daily clinical practice: A position paper endorsed by the European Society for Clinical and Economic Aspects of Osteoporosis, Osteoarthritis and Musculoskeletal Diseases (ESCEO). Calcif. Tissue Int. 2019, 105, 1–14. [Google Scholar] [CrossRef] [PubMed]
- Surangsrirat, D.; Bualuangngam, T.; Sri-iesaranusorn, P.; Chaiyaroj, A.; Buekban, C.; Thanawattano, C.; Poopitaya, S. Comparison of the wrist range of motion measurement between inertial measurement unit glove, smartphone device and standard goniometer. Appl. Sci. 2022, 12, 3418. [Google Scholar] [CrossRef]
- Rashid, A.; Hasan, O. Wearable technologies for hand joints monitoring for rehabilitation: A survey. Microelectron. J. 2019, 88, 173–183. [Google Scholar] [CrossRef]
- Reid, S.; Egan, B. The validity and reliability of DrGoniometer, a smartphone application, for measuring forearm supination. J. Hand Ther. 2019, 32, 110–117. [Google Scholar] [CrossRef] [PubMed]
- Arman, N.; Oktay, A.B.; Tarakci, D.; Tarakci, E.; Akgul, Y.S. The validity of an objective measurement method using the Leap Motion Controller for fingers wrist, and forearm ranges of motion. Hand Surg. Rehabil. 2021, 40, 394–399. [Google Scholar] [CrossRef] [PubMed]
- Gonçalves, R.S.; Souza, M.R.d.; Carbone, G. Analysis of the leap motion controller’s performance in measuring wrist rehabilitation tasks using an industrial robot arm reference. Sensors 2022, 22, 4880. [Google Scholar] [CrossRef] [PubMed]
- Weichert, F.; Bachmann, D.; Rudak, B.; Fisseler, D. Analysis of the accuracy and robustness of the leap motion controller. Sensors 2013, 13, 6380–6393. [Google Scholar] [CrossRef] [PubMed]
- Cela, A.F.; Oña, E.D.; Jardón, A. eJamar: A Novel Exergame Controller for Upper Limb Motor Rehabilitation. Appl. Sci. 2024, 14, 11676. [Google Scholar] [CrossRef]
- Oña, E.D.; Yepez-Figueroa, J.J.; Cela, A.; Jardón, A. Preliminary Evaluation of eJamar Game Controller as Hand Range of Motion Measurement Tool. In Advances in Applied Technologies for Disability and Inclusion, Proceedings of the 13th Congreso Iberoamericano de Tecnologías de Apoyo a la Discapacidad, IBERDISCAP 2025, Seville, Spain, 3–5 November 2025; Springer: Cham, Switzerland, 2026; in press. [Google Scholar]
- Cazañas, A.; de San Miguel, A.; Parra, E. Estimating Sample Size for Usability Testing. Enfoque UTE 2017, 8, 172–185. [Google Scholar] [CrossRef]
- Rojo, A.; Santos-Paz, J.Á.; Sánchez-Picot, Á.; Raya, R.; García-Carmona, R. FarmDay: A Gamified Virtual Reality Neurorehabilitation Application for Upper Limb Based on Activities of Daily Living. Appl. Sci. 2022, 12, 7068. [Google Scholar] [CrossRef]
- Naqvi, U.; Margetis, K.; Sherman, A.L. Muscle strength grading. In StatPearls [Internet]; StatPearls Publishing: Treasure Island, FL, USA, 2025. [Google Scholar]
- Doğan, N.Ö. Bland-Altman analysis: A paradigm to understand correlation and agreement. Turk. J. Emerg. Med. 2018, 18, 139–141. [Google Scholar] [CrossRef] [PubMed]








| Mean (SD) | Female/Male | Right/Left | |
|---|---|---|---|
| Age | 58 (12.5) | ||
| Gender | 26/6 | ||
| Dominant hand | 31/1 | ||
| More affected hand | 14/18 |
| Hand | Pearson | -Factor | MAE (°) | ICC | IC 95% | AR (%) |
|---|---|---|---|---|---|---|
| MAH | 0.61 | <0.001 * | 18.2 | 0.478 | [0.38, 0.57] | 39.8 |
| LAH | 0.62 | <0.001 * | 17.53 | 0.54 | [0.46, 0.61] | 42.2 |
| ROM | Pearson | -Factor | MAE (°) | ICC | IC 95% | AR (%) |
|---|---|---|---|---|---|---|
| Pronation | 0.27 | 0.14 | 2.6 | 0.26 | [−0.087, 0.56] | 93.8 |
| Supination | 0.85 | <0.05 * | 1.13 | 0.84 | [0.70, 0.91] | 93.8 |
| Flexion | 0.34 | 0.06 | 19.9 | 0.16 | [−0.069, 0.57] | 18.8 |
| Extension | 0.40 | <0.05 * | 21.2 | 0.19 | [0.070, 0.66] | 3.13 |
| Radial dev. | 0.12 | 0.53 | 12.9 | 0.10 | [−0.26, 0.43] | 25.0 |
| Ulnar dev. | −0.016 | 0.92 | 47.5 | −0.001 | [−0.35, 0.33] | 0.0 |
| ROM | Pearson | -Factor | MAE (°) | ICC | IC 95% | AR (%) |
|---|---|---|---|---|---|---|
| Pronation | −0.076 | 0.68 | 1.94 | −0.018 | [−0.36, 0.32] | 93.8 |
| Supination | −0.12 | 0.50 | 1.10 | −0.044 | [−0.39, 0.29] | 96.9 |
| Flexion | 0.62 | <0.05 * | 20.2 | 0.32 | [0.27, 0.76] | 15.6 |
| Extension | 0.15 | 0.42 | 25 | 0.05 | [−0.21, 0.47] | 3.13 |
| Radial dev. | 0.46 | <0.05 * | 12.63 | 0.33 | [−0.012, 0.61] | 31.3 |
| Ulnar dev. | 0.20 | 0.26 | 5.80 | 0.02 | [−0.15, 0.51] | 3.13 |
| Hand | Pearson | -Factor | MAE (kg-f) | ICC | IC 95% | AR (%) |
|---|---|---|---|---|---|---|
| MAH | 0.88 | <0.05 * | 3.93 | 0.81 | [0.58, 0.91] | 6.25 |
| LAH | 0.91 | <0.05 * | 4.51 | 0.66 | [0.25, 0.85] | 3.12 |
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Cela, A.; Oña, E.D.; Jardón, A. Validity of the eJamar Game Controller for Measuring Hand Range of Motion and Grip Strength in Hand Rehabilitation. Eng 2026, 7, 197. https://doi.org/10.3390/eng7050197
Cela A, Oña ED, Jardón A. Validity of the eJamar Game Controller for Measuring Hand Range of Motion and Grip Strength in Hand Rehabilitation. Eng. 2026; 7(5):197. https://doi.org/10.3390/eng7050197
Chicago/Turabian StyleCela, Andrés, Edwin Daniel Oña, and Alberto Jardón. 2026. "Validity of the eJamar Game Controller for Measuring Hand Range of Motion and Grip Strength in Hand Rehabilitation" Eng 7, no. 5: 197. https://doi.org/10.3390/eng7050197
APA StyleCela, A., Oña, E. D., & Jardón, A. (2026). Validity of the eJamar Game Controller for Measuring Hand Range of Motion and Grip Strength in Hand Rehabilitation. Eng, 7(5), 197. https://doi.org/10.3390/eng7050197

