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Research Article

Accuracy and precision of internal displacement and strain measurements in long human bones using HR-pQCT and digital volume correlation

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Article: 2313871 | Received 10 Apr 2023, Accepted 30 Jan 2024, Published online: 15 Feb 2024

References

  • Basler SE, Mueller TL, Christen D, Wirth AJ, Muller R, van Lenthe GH. 2011. Towards validation of computational analyses of peri-implant displacements by means of experimentally obtained displacement maps. Comput Methods Biomech Biomed Engin. 14(2):165–11.
  • Baum T, Grande Garcia E, Burgkart R, Gordijenko O, Liebl H, Jungmann PM, Gruber M, Zahel T, Rummeny EJ, Waldt S, et al. 2015. Osteoporosis imaging: effects of bone preservation on MDCT-based trabecular bone microstructure parameters and finite element models. BMC Med Imaging. 15:22.
  • Bay BK, Smith TS, Fyhrie DP, Saad M. 1999. Digital volume correlation: three-dimensional strain mapping using X-ray tomography. Exp Mech. 39(3):217–226.
  • Bonnick SL, Johnston CC, Kleerekoper M, Lindsay R, Miller P, Sherwood L, Siris E. 2001. Importance of precision in bone density measurements. J Clin Densitom. 4(2):105–110.
  • Buades A, Coll B, Morel JM. 2005. A non-local algorithm for image denoising. 2005 IEEE Computer Society Conference on Computer Vision and Pattern Recognition; San Diego, CA, USA (CVPR’05).
  • Cavazzoni G, Cristofolini L, Dall’ara E, Palanca M. 2023. Bone metastases do not affect the measurement uncertainties of a global digital volume correlation algorithm. Front Bioeng Biotechnol. 11:1152358.
  • Chambolle A. 2004. An algorithm for total variation minimization and applications. J Math Imaging Vis. 20(1):89–97.
  • Chen Y, Dall’ara E, Sales E, Manda K, Wallace R, Pankaj P, Viceconti M. 2017. Micro-CT based finite element models of cancellous bone predict accurately displacement once the boundary condition is well replicated: a validation study. J Mech Behav Biomed Mater. 65:644–651. doi: 10.1016/j.jmbbm.2016.09.014.
  • Comini F, Palanca M, Cristofolini L, Dall’ara E. 2019. Uncertainties of synchrotron microCT-based digital volume correlation bone strain measurements under simulated deformation. J Biomech. 86:232–237.
  • Dall’ara E, Barber D, Viceconti M. 2014. About the inevitable compromise between spatial resolution and accuracy of strain measurement for bone tissue: a 3D zero-strain study. J Biomech. 47(12):2956–2963.
  • Dall’ara E, Tozzi G. 2022. Digital volume correlation for the characterization of musculoskeletal tissues: Current challenges and future developments. Front Bioeng Biotechnol. 10:1010056.
  • Kroker A, Zhu Y, Manske SL, Barber R, Mohtadi N, Boyd SK. 2017. Quantitative in vivo assessment of bone microarchitecture in the human knee using HR-pQCT. Bone. 97:43–48. doi: 10.1016/j.bone.2016.12.015.
  • Kuglin CD, Hines DC. 1975. The phase correlation image alignment method. IEEE Conference on Cybernetics and Society; New York, NY, USA. p. 163–165.
  • Kusins J, Knowles N, Ryan M, Dall’ara E, Ferreira L. 2019. Performance of QCT-Derived scapula finite element models in predicting local displacements using digital volume correlation. J Mech Behav Biomed Mater. 97:339–345.
  • Liu L, Morgan EF. 2007. Accuracy and precision of digital volume correlation in quantifying displacements and strains in trabecular bone. J Biomech. 40(15):3516–3520.
  • Martelli S, Giorgi M, Dall’ Ara E, Perilli E. 2021. Damage tolerance and toughness of elderly human femora. Acta Biomater. 123:167–177.
  • Martelli S, Perilli E. 2018. Time-elapsed synchrotron-light microstructural imaging of femoral neck fracture. J Mech Behav Biomed Mater. 84:265–272.
  • Morgan EF, Keaveny TM. 2001. Dependence of yield strain of human trabecular bone on anatomic site. J Biomech. 34(5):569–577.
  • Munch B, Trtik P, Marone F, Stampanoni M. 2009. Stripe and ring artifact removal with combined wavelet–Fourier filtering. Opt Express. 17(10):8567–8591.
  • Nelder JA, Mead R. 1965. A simplex method for function minimization. Comput J. 7(4):308–313. doi: 10.1093/comjnl/7.4.308.
  • Oliviero S, Giorgi M, Dall’ara E. 2018. Validation of finite element models of the mouse tibia using digital volume correlation. J Mech Behav Biomed Mater. 86:172–184.
  • Palanca M, Cristofolini L, Dall’ara E, Curto M, Innocente F, Danesi V, Tozzi G. 2016. Digital volume correlation can be used to estimate local strains in natural and augmented vertebrae: An organ-level study. J Biomech. 49(16):3882–3890.
  • Palanca M, Tozzi G, Cristofolini L, Viceconti M, Dall’ara E. 2015. Three-dimensional local measurements of bone strain and displacement: comparison of three digital volume correlation approaches. J Biomech Eng. 137(7):071006.
  • Pena Fernandez M, Barber AH, Blunn GW, Tozzi G. 2018. Optimization of digital volume correlation computation in SR-microCT images of trabecular bone and bone-biomaterial systems. J Microsc. 272(3):213–228.
  • Rapagna S, Berahmani S, Wyers CE, van den Bergh JPW, Reynolds KJ, Tozzi G, Janssen D, Perilli E. 2019. Quantification of human bone microarchitecture damage in press-fit femoral knee implantation using HR-pQCT and digital volume correlation. J Mech Behav Biomed Mater. 97:278–287.
  • Ridzwan MIZ, Sukjamsri C, Pal B, van Arkel RJ, Bell A, Khanna M, Baskaradas A, Abel R, Boughton O, Cobb J, et al. 2018. Femoral fracture type can be predicted from femoral structure: A finite element study validated by digital volume correlation experiments. J Orthop Res. 36(3):993–1001.
  • Smith TS, Bay BK, Rashid MM. 2002. Digital volume correlation including rotational degrees of freedom during minimization. Exp Mech. 42(3):272–278. doi: 10.1007/BF02410982.
  • Tjong W, Kazakia GJ, Burghardt AJ, Majumdar S. 2012. The effect of voxel size on high-resolution peripheral computed tomography measurements of trabecular and cortical bone microstructure. Med Phys. 39(4):1893–1903.
  • Tozzi G, Dall’ara E, Palanca M, Curto M, Innocente F, Cristofolini L. 2017. Strain uncertainties from two digital volume correlation approaches in prophylactically augmented vertebrae: local analysis on bone and cement-bone microstructures. J Mech Behav Biomed Mater. 67:117–126.
  • Tozzi G, Zhang QH, Tong J. 2014. Microdamage assessment of bone-cement interfaces under monotonic and cyclic compression. J Biomech. 47(14):3466–3474.
  • Verhulp E, van Rietbergen B, Huiskes R. 2004. A three-dimensional digital image correlation technique for strain measurements in microstructures. J Biomech. 37(9):1313–1320.
  • Zauel R, Yeni YN, Bay BK, Dong XN, Fyhrie DP. 2006. Comparison of the linear finite element prediction of deformation and strain of human cancellous bone to 3D digital volume correlation measurements. J Biomech Eng. 128(1):1–6.