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Swarm Based Fuzzy Discriminant Analysis for Multifunction Prosthesis Control

机译:基于群体的多功能假体控制模糊判别分析

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In order to interface the amputee's with the real world, the myoelectric signal (MES) from human muscles is usually utilized within a pattern recognition scheme as an input to the controller of a prosthetic device. Since the MES is recorded using multi channels, the feature vector size can become very large. In order to reduce the computational cost and enhance the generalization capability of the classifier, a dimensionality reduction method is needed to identify an informative moderate size feature set. This paper proposes a new fuzzy version of the well known Fisher's Linear Discriminant Analysis (LDA) feature projection technique. Furthermore, based on the fact that certain muscles might contribute more to the discrimination process, a novel feature weighting scheme is also presented by employing Particle Swarm Optimization (PSO) for the weights calculation. The new method, called PSOFLDA, is tested on real MES datasets and compared with other techniques to prove its superiority.
机译:为了使截肢者与现实世界对接,通常在模式识别方案中利用来自人类肌肉的肌电信号(MES)作为修复设备控制器的输入。由于MES是使用多通道记录的,因此特征向量的大小可能会变得非常大。为了降低计算成本并增强分类器的泛化能力,需要一种降维方法来识别信息量适中的特征集。本文提出了著名的Fisher线性判别分析(LDA)特征投影技术的新模糊版本。此外,基于某些肌肉可能对判别过程做出更大贡献的事实,还采用粒子群优化(PSO)进行权重计算,提出了一种新颖的特征加权方案。该新方法称为PSOFLDA,已在真实的MES数据集上进行了测试,并与其他技术进行了比较以证明其优越性。

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