Improving Orienteering-based Tourist Trip Planning with Social Sensing

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This publication doesn't include Institute of Computer Science. It includes Faculty of Informatics. Official publication website can be found on muni.cz.
Authors

PERSIA Fabio PILATO Giovanni GE Mouzhi BOLZONI Paolo D'AURIA Daniela SVEN Helmer

Year of publication 2020
Type Article in Periodical
Magazine / Source Future Generation Computer Systems
MU Faculty or unit

Faculty of Informatics

Citation
Web http://dx.doi.org/10.1016/j.future.2019.10.028
Doi http://dx.doi.org/10.1016/j.future.2019.10.028
Keywords Social sensing;Orienteering;Semantic mapping;Semantic similarity
Description We enhance a tourist trip planning framework based on orienteering with category constraints by adding social sensing. This allows us to customize a user’s experience without putting the burden of preference elicitation on the user. We identify the interests of a user by analyzing their Tweets and then match these interests to descriptions of points of interests. For this analysis we adapt different schemes for social sensing to the needs of our orienteering context and compare them to find the most suitable approach. We show that our technique is fast enough for use in real-time dynamic settings and also has a higher accuracy compared to previous approaches. Additionally, we integrate a more efficient algorithm for solving the orienteering problem, boosting the overall performance and utility of our framework further, as demonstrated by the positive user satisfaction received by real users.

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