Effect of variability in anatomical landmark location on knee kinematic description
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Summary
The objectives of this study were to develop an approach to quantify the effect of landmark location variability on both tibiofemoral and patellofemoral kinematics and to identify the critical landmarks and associated degrees of freedom that most affected the kinematic measures.
- Type
- article
- Published
- 2007-09-01
- Cited by
- 55
- References
- 41
- OpenAlex
- https://openalex.org/W1969880789
- Semantic Scholar
- https://api.semanticscholar.org/CorpusID:34278829
Keywords
Kinematics, Landmark, Gait, Cadaveric spasm, Kinematic chain
References
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- Statistical methods in finite element analysis.
- Biomechanics of the knee: methodological considerations in the in vivo kinematic analysis of the tibiofemoral and patellofemoral joint.
- An anatomy-based coordinate system for the description of the kinematic displacements in the human knee.
- Simulating dynamic activities using a five-axis knee simulator.
- Standardisation of the description of patellofemoral motion and comparison between different techniques
- ISB recommendations for standardization in the reporting of kinematic data.
- Characterizing the motion of total knee replacements in laboratory tests.
- Finite centroid and helical axis estimation from noisy landmark measurements in the study of human joint kinematics.
- Computational modelling of a total knee prosthetic loaded in a dynamic knee simulator.
- Comparison of different calculations of three-dimensional joint kinematics from video-based system data.
- Sensitivity of the knee joint kinematics calculation to selection of flexion axes.
- Design forms of total knee replacement
- Pelvis and lower limb anatomical landmark calibration precision and its propagation to bone geometry and joint angles
- Knee joint motion: Description and measurement
- Measurement of Patellar Tracking: Assessment and Analysis of the Literature
- Factors affecting patellar tracking after total knee arthroplasty.
- The effect of patellar button placement and femoral component design on patellar tracking in total knee arthroplasty.
- Probabilistic finite element prediction of knee wear simulator mechanics.
- Probability, Reliability and Statistical Methods in Engineering Design
Cited by
- Application of robotic technology in biomechanics to study joint laxity
- Biomechanical model of knee collateral ligament injury with six degrees of freedom
- Automatic model‐based semantic registration of multimodal MRI knee data
- Automatic detection of anatomical landmarks on the knee joint using MRI data
- Effects of Saddle Position on Pedalling Technique and Methods to Assess Pedalling Kinetics and Kinematics of Cyclists and Triathletes
- Statistical Modeling to Characterize Relationships between Knee Anatomy and Kinematics
- Mean-shifted surface curvature algorithm for automatic bone shape segmentation in orthopedic surgery planning: a sensitivity analysis
- Automated identification of anatomical landmarks on 3D bone models reconstructed from CT scan images
- A comparison of passive flexion-extension to normal gait in the ovine stifle joint.
- A review of probabilistic analysis in orthopaedic biomechanics
- Sensitivity Analysis of Achieving a Reach Task within a Vehicle Considering Joint Angle Variability
- Probabilistic finite element predictions of the human lower limb model in total knee replacement.
- Probabilistic Finite Element Prediction of the Active Lower Limb Model
- Dynamic finite element knee simulation for evaluation of knee replacement mechanics.
- Verification of predicted knee replacement kinematics during simulated gait in the Kansas knee simulator.
- A novel method to evaluate error in anatomical marker placement using a modified generalized Procrustes analysis
- Effects of workload and pedalling cadence on knee forces in competitive cyclists
- A statistical finite element model of the knee accounting for shape and alignment variability.
- Control of the mechanical properties of the synthetic anterior longitudinal ligament and its effect on the mechanical analogue lumbar spine model
- Computational Knee Ligament Modeling Using Experimentally Determined Zero-Load Lengths
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