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A new method to include the gravitational forces in a finite element model of the scoliotic spine.

, , , , and . Medical Biol. Eng. Comput., 49 (8): 967-977 (2011)

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A New Method to Generate a Patient-Specific Finite Element Model of the Human Buttocks., , and . IEEE Trans. Biomed. Eng., 55 (2): 774-783 (2008)Virtual prototyping of a brace design for the correction of scoliotic deformities., , and . Medical Biol. Eng. Comput., 45 (5): 467-473 (2007)Towards the Self-Calibration of A Multiview Radiographic Imaging System for the 3D Reconstruction of the Human Spine and Rib Cage., , , , , and . IJPRAI, 13 (5): 761-779 (1999)Mechanobiological bone growth: comparative analysis of two biomechanical modeling approaches., , , and . Medical Biol. Eng. Comput., 47 (4): 357-366 (2009)Biomechanics of thoracolumbar junction vertebral fractures from various kinematic conditions., , , , and . Medical Biol. Eng. Comput., 52 (1): 87-94 (2014)Finite element modeling of the growth plate in a detailed spine model., , and . Medical Biol. Eng. Comput., 45 (10): 977-988 (2007)Biomechanical comparison of fusionless growth modulation corrective techniques in pediatric scoliosis., , , and . Medical Biol. Eng. Comput., 49 (12): 1437-1445 (2011)A new method to include the gravitational forces in a finite element model of the scoliotic spine., , , , and . Medical Biol. Eng. Comput., 49 (8): 967-977 (2011)Assessment of the 3-D reconstruction and high-resolution geometrical modeling of the human skeletal trunk from 2-D radiographic images., , , , , and . IEEE Trans. Biomed. Eng., 50 (8): 989-998 (2003)Finite element analysis of the influence of loading rate on a model of the full lumbar spine under dynamic loading conditions., , , and . Medical Biol. Eng. Comput., 50 (9): 903-915 (2012)