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An Empirical Exploration of Skip Connections for Sequential Tagging

机译:顺序标记跳过连接的经验探索

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In this paper, we empirically explore the effects of various kinds of skip connections in stacked bidirectional LSTMs for sequential tagging. We investigate three kinds of skip connections connecting to LSTM cells: (a) skip connections to the gates, (b) skip connections to the internal states and (c) skip connections to the cell outputs. We present comprehensive experiments showing that skip connections to cell outputs outperform the remaining two. Furthermore, we observe that using gated identity functions as skip mappings works pretty well. Based on this novel skip connections, we successfully train deep stacked bidirectional LSTM models and obtain state-of-the-art results on CCG supertagging and comparable results on POS tagging.
机译:在本文中,我们从经验上探索了堆叠双向LSTM中用于顺序标记的各种跳过连接的影响。我们研究了三种连接到LSTM单元的跳过连接:(a)到门的跳过连接,(b)到内部状态的跳过连接,以及(c)到单元输出的跳过连接。我们提供了全面的实验,表明与单元格输出的跳过连接的性能优于其余两个。此外,我们观察到使用门控身份功能作为跳过映射非常有效。基于这种新颖的跳过连接,我们成功地训练了深度堆叠的双向LSTM模型,并获得了CCG超级标记的最新结果以及POS标记的可比结果。

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