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Simple and sophisticated inning summary generation based on encoder-decoder model and transfer learning

机译:基于编码器-解码器模型和传递学习的简单而复杂的inning摘要生成

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This paper describes an inning summarization method for a baseball game by using an encoder-decoder model. Each inning in a baseball game contains some events, such as hits, strikeouts, homeruns and scoring. Simplified description of the events leads to the improvement of readability of the inning information. Our method learns a relation between play-by-play data in each inning and inning reports. We also incorporate sophisticated expressions acquired from game summaries with the model. We call them Game-changing Phrase, GP. One problem in our task is the size of training data for the learning. To solve this problem, we apply a transfer learning approach into our method. In the experiment, we evaluate the effectiveness of our method with the transfer learning.
机译:本文描述了一种使用编码器-解码器模型的棒球比赛的局限摘要方法。棒球比赛中的每一局都包含一些事件,例如命中,三振,全垒打和得分。对事件的简化描述可以提高限制信息的可读性。我们的方法学习每局和局报告中逐次播放数据之间的关系。我们还将从游戏摘要中获取的复杂表达式与模型相结合。我们称其为改变游戏规则的短语,GP。我们任务中的一个问题是用于学习的训练数据的大小。为了解决这个问题,我们将迁移学习方法应用到我们的方法中。在实验中,我们通过转移学习评估了我们方法的有效性。

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