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A Correlational Encoder Decoder Architecture for Pivot Based Sequence Generation

机译:基于枢轴的序列生成的相关编码器解码器体系结构

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Interlingua based Machine Translation (MT) aims to encode multiple languages into a common linguistic representation and then decode sentences in multiple target languages from this representation. In this work we explore this idea in the context of neural encoder decoder architectures, albeit on a smaller scale and without MT as the end goal. Specifically, we consider the case of three languages or modalities X, Z and Y wherein we are interested in generating sequences in Y starting from information available in X. However, there is no parallel training data available between X and Y but, training data is available between X & Z and Z & Y (as is often the case in many real world applications). Z thus acts as a pivot/bridge. An obvious solution, which is perhaps less elegant but works very well in practice is to train a two stage model which first converts from X to Z and then from Z to Y. Instead we explore an interlingua inspired solution which jointly learns to do the following (i) encode X and Z to a common representation and (ii) decode Y from this common representation. We evaluate our model on two tasks: (i) bridge transliteration and (ii) bridge captioning. We report promising results in both these applications and believe that this is a right step towards truly interlingua inspired encoder decoder architectures.
机译:基于Interlingua的机器翻译(MT)旨在将多种语言编码成一种通用的语言表示形式,然后根据该表示形式以多种目标语言对句子进行解码。在这项工作中,我们在神经编码器解码器体系结构的背景下探索了这个想法,尽管规模较小并且没有以MT为最终目标。具体来说,我们考虑三种语言或模态X,Z和Y的情况,其中我们有兴趣从X中可用的信息开始在Y中生成序列。但是,X和Y之间没有可用的并行训练数据,但是训练数据是在X&Z和Z&Y之间可用(在许多实际应用中经常如此)。 Z因此充当枢轴/桥。一个显而易见的解决方案(可能不太优雅,但在实践中效果很好)是训练一个两阶段模型,该模型首先从X转换为Z,然后从Z转换为Y。相反,我们探索一种受国际语言启发的解决方案,该方法共同学习以下工作(i)将X和Z编码为一个通用表示,并(ii)从该通用表示中解码Y。我们在两个任务上评估我们的模型:(i)桥梁音译和(ii)桥梁字幕。我们在这两种应用中均报告了令人鼓舞的结果,并相信这是朝着真正受国际语言启发的编码器解码器架构迈出的正确一步。

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