Unobtrusive ambulatory estimation of knee joint angles during walking using gyroscope and accelerometer data - a preliminary evaluation study

Osteoarthritis has the highest prevalence in the elderly population, with a rising tendency. Currently often special gait labs are used for objective diagnostic assessment of functional motion deficits or treatment outcome, e.g in patients suffering from gonarthrosis. The artificial lab setting and short measurement periods affect the explanatory power of this method. Inertial multi-sensor systems in contrast allow for monitoring human gait independent of a lab setting. However, recent approaches concerning important knee function parameter analyses have not been validated for long-term monitoring yet.The aim of our research for this paper is to evaluate our wearable joint kinematics measurement system (KINEMATIC-WEAR) for assessing maximum knee joint angles during extended periods of normal walking. Our prototype consists of small multi-sensor nodes with combined tri-axial accelerometer, gyroscope and magnetometer which were attached with kinesiotape to the thigh and shank of a subject while walking at different speeds on a treadmill. The computed maximum knee joint angles were compared with reference measurements performed by a physician on video frames captured during walking, as was the correlation between both value sets. Our results show an excellent correlation of 0.96 between clinical reference measurements and our computed angles. While the accuracy is good for slow walking speeds of 0.28 m/s (lkm/h, mean error: 2.6 deg±1.5) and 0.56 m/s (2km/h, mean error: 2.0 deg±1.6), our algorithm over-estimates the angles by 6.3±3.6 degrees at 0.83 m/s (3 km/h), likely induced by soft tissue motion during heel-strike. Our preliminary results show that our system allows for unobtrusive, long-term out-of-Iab monitoring of knee joint motion parameters. Further studies are necessary to evaluate the system for arthritis patients.

[1]  B M Jolles,et al.  Evaluation of a mixed approach combining stationary and wearable systems to monitor gait over long distance. , 2010, Journal of biomechanics.

[2]  Yutaka Hata,et al.  Analyzing 3D Knee Kinematics Using Accelerometers, Gyroscopes and Magnetometers , 2007, 2007 IEEE International Conference on System of Systems Engineering.

[3]  Arnold D. M. Kester,et al.  Functional improvement after unicompartmental knee replacement: a follow-up study with a performance based knee test , 2007, Knee Surgery, Sports Traumatology, Arthroscopy.

[4]  Ryo Takeda,et al.  Gait analysis using gravitational acceleration measured by wearable sensors. , 2009, Journal of biomechanics.

[5]  Henrica C W de Vet,et al.  Construct validity of the DynaPort KneeTest: a comparison with observations of physical therapists. , 2005, Osteoarthritis and cartilage.

[6]  Yutaka Hata,et al.  Wearable knee kinematics monitoring system of MARG sensor and pressure sensor systems , 2009, 2009 IEEE International Conference on System of Systems Engineering (SoSE).

[7]  Rienk M A van der Slikke,et al.  Reproducibility and validity of the DynaPort KneeTest. , 2005, Arthritis and rheumatism.

[8]  C B Terwee,et al.  Longitudinal and cross-sectional validity of the DynaPort Knee Test in adults with nontraumatic knee complaints in general practice. , 2008, Journal of clinical epidemiology.

[9]  Angelo M. Sabatini,et al.  Quaternion-based extended Kalman filter for determining orientation by inertial and magnetic sensing , 2006, IEEE Transactions on Biomedical Engineering.

[10]  M. Sati,et al.  Quantitative assessment of skin-bone movement at the knee , 1996 .

[11]  Dana P. Goldman,et al.  Health Status and Medical Treatment of the Future Elderly , 2004 .

[12]  Es Grood,et al.  A joint coordinate system for the clinical description of three-dimensional motions: Application to the human knee joint. , 1983 .

[13]  B. Andrews,et al.  Detecting absolute human knee angle and angular velocity using accelerometers and rate gyroscopes , 2001, Medical and Biological Engineering and Computing.

[14]  Yutaka Hata,et al.  A 3-DOF knee joint angle measurement system with inertial and magnetic sensors , 2010, 2010 IEEE International Conference on Systems, Man and Cybernetics.

[15]  Dana P. Goldman,et al.  Health Status and Medical Treatment of the Future Elderly: Final Report , 1995 .

[16]  Yoshio Inoue,et al.  Ambulatory Estimation of Knee-Joint Kinematics in Anatomical Coordinate System Using Accelerometers and Magnetometers , 2011, IEEE Transactions on Biomedical Engineering.

[17]  J. V. van Dieën,et al.  Measuring functional abilities of patients with knee problems: rationale and construction of the DynaPort knee test , 2002, Knee Surgery, Sports Traumatology, Arthroscopy.