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首页> 外文期刊>Journal of biomechanical engineering. >A Neurogenetic Approach to a Multiobjective Design Optimization of Spinal Pedicle Screws
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A Neurogenetic Approach to a Multiobjective Design Optimization of Spinal Pedicle Screws

机译:椎弓根螺钉多目标设计的神经遗传学方法

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A pedicle screw fixation has been widely used to treat spinal diseases. Clinical reports have shown that the weakest part of the spinal fixator is the pedicle screw. However, previous studies have only focused on either screw breakage or screw loosening. There have been no studies that have addressed the multiobjective design optimization of the pedicle screws. The multiobjective optimization methodology was applied and it consisted of finite element method, Taguchi method, artificial neural networks, and genetic algorithms. Three-dimensional finite element models for both the bending strength and the pullout strength of the pedicle screw were first developed and arranged on an L_(25) orthogonal array. Then, artificial neural networks were used to create two objective functions. Finally, the optimum solutions of the pedicle screws were obtained by genetic algorithms. The results showed that the optimum designs had higher bending and pullout strengths compared with commercially available screws. The optimum designs of pedicle screw revealed excellent biomechanical performances. The neurogenetic approach has effectively decreased the time and effort required for searching for the optimal designs of pedicle screws and has directly provided the selection information to surgeons.
机译:椎弓根螺钉固定术已被广泛用于治疗脊柱疾病。临床报告显示,脊柱固定器最薄弱的部分是椎弓根螺钉。但是,以前的研究仅集中在螺丝断裂或螺丝松动上。尚无研究解决椎弓根螺钉的多目标设计优化问题。应用了多目标优化方法,该方法由有限元方法,田口方法,人工神经网络和遗传算法组成。首先建立了椎弓根螺钉抗弯强度和拉拔强度的三维有限元模型,并将其布置在L_(25)正交阵列上。然后,使用人工神经网络来创建两个目标函数。最后,通过遗传算法获得了椎弓根螺钉的最佳方案。结果表明,与市售螺钉相比,最佳设计具有更高的弯曲和拉拔强度。椎弓根螺钉的最佳设计显示了出色的生物力学性能。神经遗传学方法有效地减少了寻找椎弓根螺钉最佳设计所需的时间和精力,并直接向外科医生提供了选择信息。

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