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Automatic Recognition of Finger Spelling for LIBRAS based on a Two-Layer Architecture

机译:基于两层体系结构的LIBRAS手指拼写的自动识别

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Different feature extraction techniques have been applied to the problem of automatic finger spelling (and gesture) recognition problem. However, different hand postures and gestures with different complexities have been given the same space representation. Our approach tries to get rid off the assumption that one size fits all. A two level architecture was investigated where signs with similar hand postures were grouped together for a preliminary artificial neural network (ANN) classification. A second ANN was applied to disambiguate the confusions among symbols, using another space representation. Our results indicate that it is possible to improve recognition rates with this approach.
机译:不同的特征提取技术已应用于自动手指拼写(和手势)识别问题。但是,不同的手势和具有不同复杂性的手势已被赋予相同的空间表示。我们的方法试图摆脱一种假设,即“适合所有人”。研究了一种两级体系结构,其中将具有相似手势的信号组合在一起,以进行初步的人工神经网络(ANN)分类。使用另一个空间表示法,使用第二个ANN消除符号之间的混淆。我们的结果表明,使用这种方法可以提高识别率。

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