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Medical Engineering & Physics|July 4, 2016
Quantifying trabecular bone material anisotropy and orientation using low resolution clinical CT images: A feasibility studyS Majid Nazemi, David M L Cooper, James D JohnstonComputer Methods in Biomechanics and Biomedical Engineering|September 12, 2019
Separate modeling of cortical and trabecular bone offers little improvement in FE predictions of local structural stiffness at the proximal tibiaS Mehrdad Hosseini Kalajahi, S Majid Nazemi, James D JohnstonMedical Engineering & Physics|December 25, 2019
An exclusion approach for addressing partial volume artifacts with quantititive computed tomography-based finite element modeling of the proximal tibiaS Mehrdad Hosseini Kalajahi, S Majid Nazemi, James D JohnstonMedical Engineering & Physics|June 16, 2015
Individual and combined effects of OA-related subchondral bone alterations on proximal tibial surface stiffness: a parametric finite element modeling studyMorteza Amini, S Majid Nazemi, Joel L Lanovaz, et al.Clinical Biomechanics (Bristol, Avon)|November 15, 2016
Optimizing finite element predictions of local subchondral bone structural stiffness using neural network-derived density-modulus relationships for proximal tibial subchondral cortical and trabecular boneS Majid Nazemi, Morteza Amini, Saija A Kontulainen, et al.Clinical Biomechanics (Bristol, Avon)|May 31, 2015
Prediction of local proximal tibial subchondral bone structural stiffness using subject-specific finite element modeling: Effect of selected density-modulus relationshipS Majid Nazemi, Morteza Amini, Saija A Kontulainen, et al.Journal of Biomechanics|June 12, 2017
Accounting for spatial variation of trabecular anisotropy with subject-specific finite element modeling moderately improves predictions of local subchondral bone stiffness at the proximal tibiaS Majid Nazemi, S Mehrdad Hosseini Kalajahi, David M L Cooper, et al.Pageof 1