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Sentiment Analysis for Tourism Insights: A Machine Learning Approach

Domain:

natural language processing

Record type:

papermodel
Creator:
ChaMus
Editor:
UniDét
Publisher:
CCSDMDPI
Host:avatar
International audience This paper explores international tourism regarding Morocco’s leading touristic city Marrakech, and, more precisely, its two prominent public spaces, Jemaa el-Fna and the Medina. Following a web-scraping process of English reviews on TripAdvisor, a machine learning technique is proposed to gather insights into prominent topics in the data, and their corresponding sentiment with a specific voting model. This process allows decision makers to direct their focus onto certain issues, such as safety concerns, animal conditions, health, or pricing issues. In addition, the voting method outperforms Vader, a widely used sentiment prediction tool. Furthermore, an LLM (Large Language Model) is proposed, the SieBERT-Marrakech. It is a SieBERT model fine-tuned on our data. The model outlines good performance metrics, showing even better results than GPT-4o, and it may be an interesting choice for tourism sentiment predictions in the context of Marrakech.

Visit

hal.science

Tasks

sentiment analysistext classificationtopic classification

Languages

Arabic, Moroccan Spoken

Tags

[INFO]Computer Science [cs][SHS]Humanities and Social Sciences

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