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AGREE: Attention-Based Tour Group Recommendation with Multi-modal Data

机译:同意:具有多模式数据的基于注意力的旅游团推荐

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摘要

Tour recommendation aims to design a sequence of Points of Interest (POIs) for a tourist that suits his/her preference. Most existing tour recommenders mainly focus on recommending a POI sequence to a single tourist but cannot be applied to the tour group, which is a common way to travel. Designing a tour group recommender is more challenging in aggregating group preference and tracking influence changes during a tour. Hence we propose a novel approach named AGREE (Attention-based Tour Group Recommendation), which leverages the attention mechanism, to adjust members' influence dynamically. Specifically, our model aggregates group's preference based on members' history data in different modalities, utilizing attention sub-networks to focus on influential ones in each modality across a POI sequence. Then we adopt a bi-directional recurrent unit (Bi-GRU) to generate the POI sequence. Experimental results show that the proposed scheme outperforms benchmark methods on a real-world dataset.
机译:游览推荐旨在为游客设计适合其偏好的一系列兴趣点(POI)。现有的大多数旅行推荐者主要专注于向单个游客推荐POI序列,但不能应用于旅行团,这是一种常见的旅行方式。设计旅行团推荐者在汇总旅行团偏好并跟踪旅行过程中的影响力变化方面更具挑战性。因此,我们提出了一种名为AGREE(基于注意力的旅游团推荐)的新颖方法,该方法利用了注意力机制来动态调整成员的影响力。具体来说,我们的模型根据成员在不同方式下的历史数据汇总了群体的偏好,利用关注子网络专注于POI序列中每种方式下有影响力的网络。然后,我们采用双向递归单元(Bi-GRU)生成POI序列。实验结果表明,该方案优于真实数据集的基准测试方法。

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