Leveraging Large Language Models for Patient Engagement: The Power of Conversational AI in Digital Health
Bo Wen, Raquel Norel, Julia Liu, Thaddeus Stappenbeck, Farhana, Zulkernine, and Huamin Chen

TL;DR
This paper reviews how large language models can enhance patient engagement in healthcare through conversational AI, showcasing applications, benefits, and ethical considerations for responsible deployment.
Contribution
It provides an overview of LLM applications in healthcare, including four case studies demonstrating their potential in patient engagement and conversational analysis.
Findings
LLMs can analyze mental health discussions on Reddit.
Personalized chatbots improve cognitive engagement in seniors.
LLMs effectively summarize medical conversations.
Abstract
The rapid advancements in large language models (LLMs) have opened up new opportunities for transforming patient engagement in healthcare through conversational AI. This paper presents an overview of the current landscape of LLMs in healthcare, specifically focusing on their applications in analyzing and generating conversations for improved patient engagement. We showcase the power of LLMs in handling unstructured conversational data through four case studies: (1) analyzing mental health discussions on Reddit, (2) developing a personalized chatbot for cognitive engagement in seniors, (3) summarizing medical conversation datasets, and (4) designing an AI-powered patient engagement system. These case studies demonstrate how LLMs can effectively extract insights and summarizations from unstructured dialogues and engage patients in guided, goal-oriented conversations. Leveraging LLMs for…
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Taxonomy
TopicsDigital Mental Health Interventions · Artificial Intelligence in Healthcare and Education · AI in Service Interactions
