JSAI2020

Presentation information

Organized Session

Organized Session » OS-7

[2C5-OS-7b] OS-7 (2)

Wed. Jun 10, 2020 3:50 PM - 5:10 PM Room C (jsai2020online-3)

藤井 慶輔(名古屋大学)、竹内 孝(NTT)、竹内 一郎(名古屋工業大学)、田部井 靖生(理化学研究所)、依田 憲(名古屋大学)、前川 卓也(大阪大学)

4:30 PM - 4:50 PM

[2C5-OS-7b-03] User Clustering based on Distributed Representations for Understanding Tourist Behaviors

Motoi Kubo1,2, 〇Hiroki Tanaka1,2, Satoshi Nakamura1,2 (1. RIKEN Center for Advanced Intelligence Project Tourism Information Analytics Team, 2. Nara Institute of Science and Technology)

Keywords:Tourism behavior analysis, Spatio-temporal data, Distributed representation, Bidirectional LSTM, Hierarchical clustering

In order to promote inbound tourism, we need to analyze behaviors and destinations of tourists, and understand their trends.
In this study, we attempted to cluster tourists' behaviors using a time-series distributed representations. A previous work used the Long-short term memory (LSTM) to predict tourists' next visiting places. In this study, we extended it to the Bi-directional LSTM (Bi-LSTM). To obtain tourist clusters, we calculated the distance of representation vectors derived from the LSTM and the Bi-LSTM. Our results showed that the LSTM grouped tourists who visited similar places, and the Bi-LSTM could also obtain tourist clusters who visited places in reversed order of routes.

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