A Transformer Architecture for the Prediction of Cognate Reflexes

G. Celano
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引用次数: 2

Abstract

This paper presents the transformer model built to participate in the SIGTYP 2022 Shared Task on the Prediction of Cognate Reflexes. It consists of an encoder-decoder architecture with multi-head attention mechanism. Its output is concatenated with the one hot encoding of the language label of an input character sequence to predict a target character sequence. The results show that the transformer outperforms the baseline rule-based system only partially.
同源反射预测的变压器体系结构
本文提出了参与同族反射预测SIGTYP 2022共享任务的变压器模型。它由一个具有多头注意机制的编码器-解码器结构组成。它的输出与输入字符序列的语言标签的唯一编码相连接,以预测目标字符序列。结果表明,该变压器仅部分优于基于规则的基准系统。
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