2020
DOI: 10.48550/arxiv.2010.07827
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Interpretation of Swedish Sign Language using Convolutional Neural Networks and Transfer Learning

Abstract: The automatic interpretation of sign languages is a challenging task, as it requires the usage of high level vision and high level motion processing systems for providing accurate image perception. In this paper, we use Convolutional Neural Networks (CNNs) and transfer learning in order to make computers able to interpret signs of the Swedish Sign Language (SSL) hand alphabet. Our model consist of the implementation of a pre-trained InceptionV3 network, and the usage of the mini-batch gradient descent optimiza… Show more

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