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Zannoni, C., Mantovani, R., Viceconti, M., 1998. Material properties assignment to finite element models of bone structures: a new method. Med Eng Phys 20(10), 735-40.
Viceconti, M., Bellingeri, L., Cristofolini, L., Toni, A., 1998. A comparative study on different methods of automatic mesh generation of human femurs. Med Eng Phys 20(1), 1-10.
Viceconti, M., Zannoni, C., Pierotti, L., 1998. TRI2SOLID: an application of reverse engineering methods to the creation of CAD models of bone segments. Comput Methods Programs Biomed 56(3), 211-20.
Testi, D., Viceconti, M., Baruffaldi, F., Cappello, A., 1999. Risk of fracture in elderly patients: a new predictive index based on bone mineral density and finite element analysis. Comput Methods Programs Biomed 60(1), 23-33.
Testi, D., Viceconti, M., Cappello, A., Gnudi, S., Toni, A., 2001. Fracture prediction for the femoral neck using finite element models. Chir Organi Mov 86(1), 59-64.
Testi, D., Cappello, A., Chiari, L., Viceconti, M., Gnudi, S., 2001. Comparison of logistic and Bayesian classifiers for evaluating the risk of femoral neck fracture in osteoporotic patients. Med Biol Eng Comput 39(6), 633-7.
Testi, D., Viceconti, M., Cappello, A., Gnudi, S., 2002. Prediction of hip fracture can be significantly improved by a single biomedical indicator. Ann Biomed Eng 30(6), 801-7.
Testi, D., Cappello, A., Sgallari, F., Rumpf, M., Viceconti, M., 2004. A new software for prediction of femoral neck fractures. Comput Methods Programs Biomed 75(2), 141-5.
Viceconti, M., Davinelli, M., Taddei, F., Cappello, A., 2004. Automatic generation of accurate subject-specific bone finite element models to be used in clinical studies. J Biomech 37(10), 1597-605.
Taddei, F., Cristofolini, L., Martelli, S., Gill, H. S., Viceconti, M., 2006. Subject-specific finite element models of long bones: An in vitro evaluation of the overall accuracy. J Biomech 39(13), 2457-67.
Cristofolini, L., Juszczyk, M., Martelli, S., Taddei, F., Viceconti, M., 2007. In vitro replication of spontaneous fractures of the proximal human femur. J Biomech 40(13), 2837-45.
Schileo, E., Taddei, F., Malandrino, A., Cristofolini, L., Viceconti, M., 2007. Subject-specific finite element models can accurately predict strain levels in long bones. J Biomech 40(13), 2982-9.
Schileo, E., Dall'ara, E., Taddei, F., Malandrino, A., Schotkamp, T., Baleani, M., Viceconti, M., 2008. An accurate estimation of bone density improves the accuracy of subject-specific finite element models. J Biomech 41(11), 2483-91.
Schileo, E., Taddei, F., Cristofolini, L., Viceconti, M., 2008. Subject-specific finite element models implementing a maximum principal strain criterion are able to estimate failure risk and fracture location on human femurs tested in vitro. J Biomech 41(2), 356-67.
Juszczyk, M. M., Cristofolini, L., Viceconti, M., 2011. The human proximal femur behaves linearly elastic up to failure under physiological loading conditions. J Biomech 44(12), 2259-66.
Grassi, L., Schileo, E., Taddei, F., Zani, L., Juszczyk, M., Cristofolini, L., Viceconti, M., 2012. Accuracy of finite element predictions in sideways load configurations for the proximal human femur. J Biomech 45(2), 394-9.
Viceconti, M., Taddei, F., Cristofolini, L., Martelli, S., Falcinelli, C., Schileo, E., 2012. Are spontaneous fractures possible? An example of clinical application for personalised, multiscale neuro-musculo-skeletal modelling. J Biomech 45(3), 421-426.
Schileo, E., Balistreri, L., Grassi, L., Cristofolini, L., Taddei, F., 2014. To what extent can linear finite element models of human femora predict failure under stance and fall loading configurations? J Biomech 47(14), 3531-8.
Falcinelli, C., Schileo, E., Balistreri, L., Baruffaldi, F., Bordini, B., Viceconti, M., Albisinni, U., Ceccarelli, F., Milandri, L., Toni, A., Taddei, F., 2014. Multiple loading conditions analysis can improve the association between finite element bone strength estimates and proximal femur fractures: A preliminary study in elderly women. Bone Oct(67), 71-80.
Taddei, F., Palmadori, I., Taylor, W. R., Heller, M. O., Bordini, B., Toni, A., Schileo, E., 2014. European Society of Biomechanics S.M. Perren Award 2014: Safety factor of the proximal femur during gait: a population-based finite element study. J Biomech 47(14), 3433-40.
Zani, L., Erani, P., Grassi, L., Taddei, F., Cristofolini, L., 2015. Strain distribution in the proximal Human femur during in vitro simulated sideways fall. J Biomech 48(10), 2130-43.
Li, X., Viceconti, M., Cohen, M. C., Reilly, G. C., Carre, M. J., Offiah, A. C., 2015. Developing CT based computational models of pediatric femurs. J Biomech 48(10), 2034-40.
Qasim, M., Farinella, G., Zhang, J., Li, X., Yang, L., Eastell, R., Viceconti, M., 2016. Patient-specific finite element estimated femur strength as a predictor of the risk of hip fracture: the effect of methodological determinants. Osteoporos Int 27(9), 2815-22.
Dall'Ara, E., Eastell, R., Viceconti, M., Pahr, D., Yang, L., 2016. Experimental validation of DXA-based finite element models for prediction of femoral strength. J Mech Behav Biomed Mater 63, 17-25.
Taddei, F., Falcinelli, C., Balistreri, L., Henys, P., Baruffaldi, F., Sigurdsson, S., Gudnason, V., Harris, T. B., Dietzel, R., Armbrecht, G., Boutroy, S., Schileo, E., 2016. Left-right differences in the proximal femur's strength of post-menopausal women: a multicentric finite element study. Osteoporos Int 27(4), 1519-28.
Altai, Z., Viceconti, M., Offiah, C.A., Li, X., 2018. Investigating the mechanical response of paediatric bone under bending and torsion using finite element analysis. Biomechanics and Modeling in Mechanobiology, 17(4), 1001-1009.
Altai, Z., Qasim, M., Li, X., Viceconti, M., 2019. The effect of boundary and loading conditions on patient classification using finite element predicted risk of fracture. Clinical Biomechanics, 68, 137-143.
Bhattacharya, P., Altai, Z., Qasim, M., Viceconti, M., 2019. A multiscale model to predict current absolute risk of femoral fracture in a postmenopausal population. Biomechanics and Modeling in Mechanobiology, 18(2), 301-318.
Winsor, C., Li, X., Qasim, M., Henak, C. R., Pickhardt, P. J., Ploeg, H., Viceconti, M., 2021. Evaluation of patient tissue selection methods for deriving equivalent density calibration for femoral bone quantitative CT analyses. Bone, 143, 115759.
Aldieri, A., Terzini, M., Audenino, A. L., Bignardi, C., Paggiosi, M., Eastell, R., Viceconti, M., Bhattacharya, P., 2022. Personalised 3D assessment of trochanteric soft tissues improves hip fracture classification accuracy. Annals of Biomedical Engineering, 50(3), 303-313.
Li, J., Viceconti, M., Li, X., Bhattacharya, P., Naimark, M. J. D., Osseyran, A., 2023. Cost-effectiveness analysis of CT-based finite element modeling for osteroporosis screening in secondary fracture prevention: An early health technology assessment in the Netherlands. MDM Policy & Practice 8(2), 1-20.
Allison, G., Almutairi, S., Offiah, C. A., Li, X., 2026. PyPeCT2S: Pythonic paediatric computed tomography to strength with automatic landmarking for the automation of bone strength analysis in children. PLoS One, https://doi.org/10.1371/journal.pone.0352689