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A New Hand Posture Recognizer Based on Hybrid Wavelet Network Including a Fuzzy Decision Support System

机译:包含模糊决策支持系统的基于混合小波网络的新型手势识别器

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In this paper we present a novel hand posture recognizer based on wavelet network learnt by fast wavelet transform (FWN) including a fuzzy decision support system (FDSS). Our contribution in this paper resides in proposing a new classification way for the FWN classifier. The FWN having an hybrid architecture (using as activation functions both wavelet and scaling ones) provides hybrid weight vectors when approximating an image. The FWN classification phase was achieved by computing simple distances between test and training weight vectors. Those latter are composed of two types of coefficients that are not in the same value range which may influence on the distances computing. This can cause wrong recognitions. So, to overcome this lacuna, a new classification strategy is proposed. It operates a human reasoning mode employing a FDSS to calculate similarity degrees between test and training images. Comparisons with other works are presented and discussed. Obtained results have shown that the new hand posture recognizer performs better than previously established ones. ...
机译:在本文中,我们提出了一种基于小波网络的新型手势识别器,该小波网络是通过包含模糊决策支持系统(FDSS)的快速小波变换(FWN)学习的。我们在本文中的贡献在于为FWN分类器提出一种新的分类方法。具有混合体系结构的FWN(将小波和缩放函数都用作激活函数)在逼近图像时提供混合权重向量。 FWN分类阶段是通过计算测试和训练权重向量之间的简单距离来实现的。后者由两种类型的系数组成,它们不在相同的值范围内,这可能会影响距离计算。这可能会导致错误的识别。因此,为克​​服这一缺陷,提出了一种新的分类策略。它使用FDSS来操作人类推理模式,以计算测试图像和训练图像之间的相似度。介绍和讨论与其他作品的比较。获得的结果表明,新的手势识别器的性能要优于以前建立的手势识别器。 ...

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