ChatGPT and Persuasive Technologies for the Management and Delivery of Personalized Recommendations in Hotel Hospitality
Manolis Remountakis, Konstantinos Kotis, Babis Kourtzis, and George E., Tsekouras

TL;DR
This paper investigates integrating ChatGPT and persuasive technologies into hotel recommender systems to enhance personalization, influence user behavior, and improve guest satisfaction and business outcomes through a pilot case study.
Contribution
It introduces a novel approach combining large language models and persuasive techniques to improve hotel recommendation systems and demonstrates preliminary positive impacts through a case study.
Findings
Enhanced personalization through ChatGPT's understanding of user preferences.
Increased user engagement and satisfaction with integrated persuasive techniques.
Potential for higher booking rates and improved hotel revenue.
Abstract
Recommender systems have become indispensable tools in the hotel hospitality industry, enabling personalized and tailored experiences for guests. Recent advancements in large language models (LLMs), such as ChatGPT, and persuasive technologies, have opened new avenues for enhancing the effectiveness of those systems. This paper explores the potential of integrating ChatGPT and persuasive technologies for automating and improving hotel hospitality recommender systems. First, we delve into the capabilities of ChatGPT, which can understand and generate human-like text, enabling more accurate and context-aware recommendations. We discuss the integration of ChatGPT into recommender systems, highlighting the ability to analyze user preferences, extract valuable insights from online reviews, and generate personalized recommendations based on guest profiles. Second, we investigate the role of…
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Taxonomy
TopicsRecommender Systems and Techniques · FinTech, Crowdfunding, Digital Finance · Advanced Bandit Algorithms Research
