SIBI字母表导论利用神经连接网络作为公共学习媒介

Zahrah Fadhilah, Noveri Lysbetti Marpaung
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引用次数: 0

摘要

SIBI是印度尼西亚使用的手语之一,在社区,特别是学校(SLB)中得到了广泛的应用。聋人和言语群体的交流限制导致他们与公众的交流受到限制,特别是许多不懂手语或SIBI的公众。因此,本研究是为了成为大众认识SIBI字母的学习媒体,以支持与聋人和言语社区的交流。这项研究是为了成为一个媒介,可以作为一个学习媒介,在SIBI字母表的介绍。本研究使用的方法是CNN。之所以使用CNN,是因为它是一种深度学习方法,在图像识别方面的效果最为显著。使用的数据为2600张图像,分为80%的训练数据和20%的验证数据。通过比较产生最佳准确度的参数,进行了十次训练。使用的参数是批大小和epoch。从10次试验中,使用批大小8和epoch 50获得了最佳精度。产生的最佳准确率为85%的训练准确率和87%的验证准确率。
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Pengenalan Alfabet SIBI Menggunakan Convolutional Neural Network sebagai Media Pembelajaran Bagi Masyarakat Umum
SIBI is one of the Sign Languages used in Indonesia and has been widely used in the community, especially the school (SLB). Communication limitations of the deaf and speech community cause limited communication with the general public, especially many general public who do not know Sign Language or SIBI. For this reason, this research was conducted in order to become a learning media for the general public in recognizing the SIBI alphabet so that it can support communication with the deaf and speech community. This research was conducted to become a medium that can be used as a learning medium in the introduction of the SIBI alphabet. The method used in this research is CNN. CNN is used because it is a deep learning method that has the most significant results in image recognition. The data used is 2,600 images which are divided into 80% training data and 20% validation data. Training was done ten times by comparing the parameters that produce the best accuracy. The parameters used are batch size and epoch. From ten trials, the best accuracy is obtained using batch size 8 and epoch 50. The best accuracy produced is 85% training accuracy and 87% validation accuracy.
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