Q3 2026

Digital twin frameworks for smoking and nicotine dependence: toward predictive and personalised smoking cessation

Ruqaiyyah Siddiqui · Naveed Ahmed Khan
10.1186/s43168-026-00648-7 381 المشاهدات 0 الاقتباسات
0
الاقتباسات
381
المشاهدات
الملخص

Abstract
Despite decades of public health interventions, tobacco use remains one of the leading preventable causes of disease worldwide. While cessation programmes and pharmacotherapies have improved outcomes, relapse rates remain high because nicotine addiction is dynamic, context-dependent, and strongly modulated by individual physiology, psychology, and social environment. Digital twin technology is an adaptive computational model that continuously mirrors the state of a real person, thus offering a new approach to understand, predict, and manage smoking behaviour and its health consequences. By integrating physiological, behavioural, environmental, and molecular data, digital twins could provide real-time insight into craving cycles, stress triggers, and therapeutic response. This article proposes a conceptual framework for constructing digital twins for smokers, discusses potential applications in prevention, cessation, and harm reduction, and highlights ethical and technical challenges. The approach could transform smoking cessation from a reactive, population-based model to a proactive, personalised, and data-driven process.

الاستشهاد بهذا المقال (APA)
Ruqaiyyah, S., Naveed, A. K. (2026). Digital twin frameworks for smoking and nicotine dependence: toward predictive and personalised smoking cessation. Egyptian Journal of Bronchology. https://doi.org/10.1186/s43168-026-00648-7
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الوصول
عرض النص الكامل عبر DOI
نُشر في
الرقم الدولي ISSN 1687-8426
الربعية Q3
درجة المؤشر القياس العربي 82
التخصص Medicine & Health Sciences
الناشر Springer (Biomed Central Ltd.)
الدولة 🇪🇬 Egypt
عرض ملف المجلة →
المؤلفون
تفاصيل النشر
السنة 2026
اللغة English
أُضيف في 14 Aug 2026