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Application of a Neurofuzzy System to Identification of Some Classes of Soft Tissues Utilizing Experimental Data

机译:神经模糊系统在利用实验数据识别某些类别的软组织中的应用

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In this paper, a combined neurofuzzy system is developed for identification of different classes of soft tissues and for exploitation of their mechanical properties by using the experimental data. These data were resulted from force-displacement curves of soft tissues in uniaxial compression test. The developed system is able to identify a particular tissue among the others. By utilization of fuzzy logic, similarity of experimental data to normal or average state can be identified. The similarity can be used as a criterion for assessment of health of tissues. A code was developed to study performance and convergence of the network. Results of the simulation showed that the network converges with a high velocity and is capable of identifying different types of soft tissues with a high degree of accuracy.
机译:在本文中,开发了一种组合的神经模糊系统,用于通过使用实验数据来识别不同类别的软组织并利用其机械特性。这些数据来自单轴压缩试验中软组织的力-位移曲线。开发的系统能够识别其他组织。通过使用模糊逻辑,可以确定实验数据与正常或平均状态的相似性。相似度可以用作评估组织健康的标准。开发了一个代码来研究网络的性能和融合。仿真结果表明,该网络以较高的速度收敛,并且能够高精度地识别不同类型的软组织。

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