Automatic generation of accurate subject-specific bone finite element models to be used in clinical studies

被引:128
作者
Viceconti, M
Davinelli, M
Taddei, F
Cappello, A
机构
[1] Ist Ortoped Rizzoli, Lab Tecnol Med, I-40136 Bologna, Italy
[2] Univ Bologna, DEIS, Bologna, Italy
关键词
finite element analysis; computed tomography; subject-specific computer models;
D O I
10.1016/j.jbiomech.2003.12.030
中图分类号
Q6 [生物物理学];
学科分类号
071011 [生物物理学];
摘要
Most of the finite element models of bones used in orthopaedic biomechanics research are based on generic anatomies. However, in many cases it would be useful to generate from CT data a separate finite element model for each subject of a study group. In a recent study a hexahedral mesh generator based on a grid projection algorithm was found very effective in terms of accuracy and automation. However, so far the use of this method has been documented only on data collected in vitro and only for long bones. The present study was aimed at verifying if this method represents a procedure for the generation of finite element models of human bones from data collected in vivo, robust, accurate, automatic and general enough to be used in clinical studies. Robustness, automation and numerical accuracy of the proposed method were assessed on five femoral CT data sets of patients affected by various pathologies. The generality of the method was verified by processing a femur, an ileum, a phalanx, a proximal femur reconstruction, and the micro-CT of a small sample of spongy bone. The method was found robust enough to cope with the variability of the five femurs, producing meshes with a numerical accuracy and a computational weight comparable to those found in vitro. Even when the method was used to process the other bones the levels of mesh conditioning remained within acceptable limits. Thus, it may be concluded that the method presents a generality sufficient to cope with almost any orthopaedic application. (C) 2004 Elsevier Ltd. All rights reserved.
引用
收藏
页码:1597 / 1605
页数:9
相关论文
共 39 条
[1]
SEMIAUTOMATIC COMPUTER CONSTRUCTION OF 3-DIMENSIONAL SHAPES FOR THE FINITE-ELEMENT METHOD [J].
AHARON, S ;
BERCOVIER, M .
COMPUTER METHODS AND PROGRAMS IN BIOMEDICINE, 1993, 41 (02) :135-146
[2]
Hip contact forces and gait patterns from routine activities [J].
Bergmann, G ;
Deuretzbacher, G ;
Heller, M ;
Graichen, F ;
Rohlmann, A ;
Strauss, J ;
Duda, GN .
JOURNAL OF BIOMECHANICS, 2001, 34 (07) :859-871
[3]
COMPARISON OF HUMAN AND CANINE EXTERNAL FEMORAL MORPHOLOGIES IN THE CONTEXT OF TOTAL HIP-REPLACEMENT [J].
BLOEBAUM, RD ;
OTA, DT ;
SKEDROS, JG ;
MANTAS, JP .
JOURNAL OF BIOMEDICAL MATERIALS RESEARCH, 1993, 27 (09) :1149-1159
[4]
BOISSONNAT J, 1992, INRIA, V22
[5]
NEW METHOD TO ANALYZE MECHANICAL BEHAVIOR OF SKELETAL PARTS [J].
BREKELMA.WA ;
SLOOFF, TJJH ;
POORT, HW .
ACTA ORTHOPAEDICA SCANDINAVICA, 1972, 43 (05) :301-&
[6]
COMPRESSIVE BEHAVIOR OF BONE AS A 2-PHASE POROUS STRUCTURE [J].
CARTER, DR ;
HAYES, WC .
JOURNAL OF BONE AND JOINT SURGERY-AMERICAN VOLUME, 1977, 59 (07) :954-962
[7]
The mesh-matching algorithm:: an automatic 3D mesh generator for finite element structures [J].
Couteau, B ;
Payan, Y ;
Lavallée, S .
JOURNAL OF BIOMECHANICS, 2000, 33 (08) :1005-1009
[8]
INFLUENCE OF THIGH MUSCLES ON THE AXIAL STRAINS IN A PROXIMAL FEMUR DURING EARLY STANCE IN GAIT [J].
CRISTOFOLINI, L ;
VICECONTI, M ;
TONI, A ;
GIUNTI, A .
JOURNAL OF BIOMECHANICS, 1995, 28 (05) :617-624
[9]
Influence of muscle forces on femoral strain distribution [J].
Duda, GN ;
Heller, M ;
Albinger, J ;
Schulz, O ;
Schneider, E ;
Claes, L .
JOURNAL OF BIOMECHANICS, 1998, 31 (09) :841-846
[10]
FERNER H, 1982, SOBOTTA ATLANTE ANAT