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Recognition of Static Gestures Applied to Brazilian Sign Language (Libras)

机译:识别应用于巴西手语的静态手势(Libras)

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This paper aims at describing an approach developed for the recognition of gestures on digital images. In this way, two shape descriptors were used: the histogram of oriented gradients (HOG) and Zernike invariant moments (ZIM). A feature vector composed by the information acquired with both descriptors was used to train and test a two stage Neural Network, which is responsible for performing the recognition. In order to evaluate the approach in a practical context, a dataset containing 9600 images representing 40 different gestures (signs) from Brazilian Sign Language (Libras) was composed. This approach showed high recognition rates (hit rates), reaching a final average of 96.77%.
机译:本文旨在描述为识别数字图像上的手势而开发的方法。以这种方式,使用了两个形状描述符:面向梯度(HOG)和Zernike不变时刻(ZIM)的直方图。由两个描述符获取的信息组成的特征向量用于培训和测试两个阶段神经网络,该网络负责执行识别。为了在实际情况下评估方法,组成了包含来自巴西手语(Libras)的40个不同手势(Libras)的9600张图像的数据集。这种方法表现出高识别率(命中率),最终平均为96.77%。

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