When Large Language Models Meet Personalization: Perspectives of Challenges and Opportunities
Jin Chen, Zheng Liu, Xu Huang, Chenwang Wu, Qi Liu, Gangwei Jiang,, Yuanhao Pu, Yuxuan Lei, Xiaolong Chen, Xingmei Wang, Defu Lian, Enhong, Chen

TL;DR
This paper discusses how large language models revolutionize personalization by enabling active user engagement, expanding scope, and integrating external tools, while also exploring the challenges and future opportunities in this emerging field.
Contribution
It provides a comprehensive review of the challenges in personalization and explores how large language models can address these issues and expand personalization capabilities.
Findings
Large language models enable proactive and explainable user interactions.
They expand personalization from information filtering to providing personalized services.
Potential integration of external tools for end-to-end personalization tasks.
Abstract
The advent of large language models marks a revolutionary breakthrough in artificial intelligence. With the unprecedented scale of training and model parameters, the capability of large language models has been dramatically improved, leading to human-like performances in understanding, language synthesizing, and common-sense reasoning, etc. Such a major leap-forward in general AI capacity will change the pattern of how personalization is conducted. For one thing, it will reform the way of interaction between humans and personalization systems. Instead of being a passive medium of information filtering, large language models present the foundation for active user engagement. On top of such a new foundation, user requests can be proactively explored, and user's required information can be delivered in a natural and explainable way. For another thing, it will also considerably expand the…
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Taxonomy
TopicsTopic Modeling · Scientific Computing and Data Management
