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Measurement of anisotropic vertebral trabecular bone loss during aging by quantitative image analysis
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Calcified Tissue International, 1988, Volume 43, Number 3, Pages 143-149
Book Chapter
A Volumetric Finite Element Scheme to Investigate the Mechanical Properties of Normal and Osteoporotic Trabecular Bone
Rakesh Saxena and Tony S. Keller
Solid Mechanics and Its Applications, 1, Volume 69, IUTAM Symposium on Synthesis in Bio Solid Mechanics, Part 11, Pages 373-386
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Biologic significance of piezoelectricity
C. Andrew L. Bassett
Calcified Tissue International, 1967, Volume 1, Number 1, Pages 252-272
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“Physiological osteoporosis” and “osteoblast insufficiency” in old age
H. -J. Pesch, T. Becker, W. Bischoff and H. Seibold
Archives of Orthopaedic and Trauma Surgery, 1990, Volume 110, Number 1, Pages 1-14
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Scanning electron microscopy of human lumbar vertebral trabecular bone surfaces
J. A. P. Jayasinghe, S. J. Jones and A. Boyde
Virchows Archiv, 1993, Volume 422, Number 1, Pages 25-34
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Vertebral structure and strengthIn vivo andIn vitro
Lis Mosekilde
Calcified Tissue International, 1993, Volume 53, Supplement - 1, Pages S121-S126
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Automatic quantification of vertebral cancellous bone remodeling during aging
F. Prêteux, C. Bergot and A. M. Laval-Jeantet
Surgical and Radiologic Anatomy, 1985, Volume 7, Number 3, Pages 203-208
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The relative contribution of trabecular and cortical bone to the strength of human lumbar vertebrae
S. David Rockoff, Edward Sweet and Jeffrey Bleustein
Calcified Tissue International, 1969, Volume 3, Number 1, Pages 163-175
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Variation in trabecular structure of vertebrae with age
P. J. Atkinson
Calcified Tissue International, 1967, Volume 1, Number 1, Pages 24-32
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Vertebrae cancellous bone strength measurements by an osteopenetrometer
V. Logins, I. Pontaga and J. Saulgozis
Mechanics of Composite Materials, 1996, Volume 32, Number 4, Pages 391-397