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Simple and Effective Text Matching with Richer Alignment Features

机译:简单有效的文本匹配,具有更丰富的对齐功能

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In this paper, we present a fast and strong neural approach for general purpose text matching applications. We explore what is sufficient to build a fast and well-performed text matching model and propose to keep three key features available for inter-sequence alignment: original point-wise features, previous aligned features, and contextual features while simplifying all the remaining components. We conduct experiments on four well-studied benchmark datasets across tasks of natural language inference, paraphrase identification and answer selection. The performance of our model is on par with the state-of-the-art on all datasets with much fewer parameters and the inference speed is at least 6 times faster compared with similarly performed ones.
机译:在本文中,我们提出了一种用于通用文本匹配应用程序的快速而强大的神经方法。我们探索了足以建立一个快速且性能良好的文本匹配模型的方法,并建议保留三个可用于序列间对齐的关键功能:原始的逐点功能,先前的对齐功能和上下文功能,同时简化所有其余组件。我们针对自然语言推理,释义识别和答案选择等任务,对四个经过充分研究的基准数据集进行了实验。我们的模型的性能与参数少得多的所有数据集的技术水平相近,并且推理速度至少比类似数据集快6倍。

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