JT
J.D. Top
3 records found
1
Enhancing Diabetes Care through AI-Driven Lie Detection in a Diabetes Support System
Testing the validity of lie detection using an SVM model trained on linguistic cues
This paper presents a deception-detection module for a diabetes support system, addressing the challenge of unreliable patient self-reporting and ultimately attempting to improve diabetes care. The research is for a system called CHIP developed by the Hybrid Intelligence project
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Entropy-Based Modeling For Detecting Behavioral Anomalies in Users of a Diabetes Lifestyle Management Support System
Identifying non-adherence indicators in a chatbot-based diabetes support system
Individuals with diabetes face rigorous demands when it comes to managing their health, yet patients sometimes struggle to stay adherent to treatment. CHIP is an AI-based conversational platform that allows patients to report lifestyle factors and receive personalized suppor
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Detecting Patient Deception and Adherence in Diabetes Support Using AI-Generated Conversation Summaries
Leveraging chat summaries to Enhance Doctor-Patient Communication
Unreliable patient self-reporting complicates diabetes management. This study investigates how AI-generated summaries of patient-chatbot conversations can be structured to help healthcare professionals detect deception and non-adherence. To address this, we developed a novel pipe
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