基于深度学习和物联网的便携式英语翻译系统

IF 0.5 Q4 TELECOMMUNICATIONS Internet Technology Letters Pub Date : 2023-02-16 DOI:10.1002/itl2.416
Nan Cao
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引用次数: 0

摘要

便携式英语翻译系统在日常生活中越来越重要。现有的基于Transformer的在线英语翻译在服务端已经成为主流。但是Transformer失去了捕获本地依赖项的能力,从而导致本地语法错误。图卷积运算可以对局部关系进行充分的建模。为此,本文提出了一种新的基于物联网技术的便携式英语翻译图嵌入式变压器网络(GETN)。具体来说,该便携式设备将语音信号转换为文本,然后通过互联网技术传输到服务器。通过在现有的Transformer中引入图卷积模块,可以有效地对局部关系进行建模。现有英语语法纠错数据集的结果表明,图嵌入机制可以用更少的参数实现更高的翻译效果,有效缓解局部语法错误。
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A portable English translation system through deep learning and internet of things

Portable English translation systems are increasingly important in daily life. Existing online English translation based on Transformer has become mainstream on the service side. But Transformer loses the ability to capture local dependencies, leading to local syntax errors. The graph convolution operation can fully model the local relationship. Therefore, this paper proposes a new graph embedded Transformer network (GETN) for Portable English translation based on Internet of Things technology. Specifically, the portable device converts the voice signal into text, and then transmits it to the server through Internet technology. By introducing the graph convolution module into the existing Transformer, local relations can be effectively modeled. The results of the existing English grammatical error correction dataset show that the graph-embedded mechanism can achieve a higher translation effect with fewer parameters and effectively alleviate local syntax errors.

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