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Primary Stability Recognition of the Newly Designed Cementless Femoral Stem Using Digital Signal Processing

机译:使用数字信号处理的新型非骨水泥股骨柄的主要稳定性识别

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摘要

Stress shielding and micromotion are two major issues which determine the success of newly designed cementless femoral stems. The correlation of experimental validation with finite element analysis (FEA) is commonly used to evaluate the stress distribution and fixation stability of the stem within the femoral canal. This paper focused on the applications of feature extraction and pattern recognition using support vector machine (SVM) to determine the primary stability of the implant. We measured strain with triaxial rosette at the metaphyseal region and micromotion with linear variable direct transducer proximally and distally using composite femora. The root mean squares technique is used to feed the classifier which provides maximum likelihood estimation of amplitude, and radial basis function is used as the kernel parameter which mapped the datasets into separable hyperplanes. The results showed 100% pattern recognition accuracy using SVM for both strain and micromotion. This indicates that DSP could be applied in determining the femoral stem primary stability with high pattern recognition accuracy in biomechanical testing.
机译:应力屏蔽和微动是决定新设计的非骨水泥股骨柄成功的两个主要问题。实验验证与有限元分析(FEA)的相关性通常用于评估股骨管内茎的应力分布和固定稳定性。本文重点介绍了使用支持向量机(SVM)进行特征提取和模式识别的应用,以确定植入物的主要稳定性。我们在干axial端区域用三轴玫瑰花结测量应变,并使用复合股骨在近端和远端用线性可变直接换能器测量微动。均方根技术用于提供分类器,该分类器提供最大的幅度似然估计,径向基函数用作将数据集映射到可分离的超平面的核参数。结果表明,使用SVM进行应变和微动均达到100%模式识别精度。这表明DSP可以在生物力学测试中以较高的模式识别精度应用于确定股骨干的原始稳定性。

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