Abstract
Artificial intelligence (AI) is rapidly transitioning from innovation to routine clinical application in dermatology. This review examines how AI-enabled technologies are being developed and integrated across diverse clinical purposes and workflows. Using a structured assessment template, we analyzed international initiatives and industry-led innovations to identify the clinical gaps addressed, underlying technologies, use cases, and real-world implementation experiences. The resulting profiles highlight a broad spectrum of AI-driven and enabled applications, including wearable sensors with haptic feedback for objective symptom monitoring; patient-initiated teledermatology platforms that enhance access to specialist care; non-invasive diagnostic tools employing impedance spectroscopy; autonomous triage systems for dermoscopic lesions; and sensors that combine intrinsic skin biomarkers with exposome analytics. Collectively, these technologies illustrate a shift toward generating objective, reproducible data that complement clinical assessment, facilitating earlier detection, streamlined referrals, and longitudinal, patient-centred care. While validation studies are encouraging, regulatory and reimbursement pathways, along with limited data diversity, are current hurdles to a more large-scale adoption. By synthesizing insights from these technological approaches, this review aims to provide dermatologists with a pragmatic overview of AI-driven health technologies as emerging, evidence-based, commercial initiatives that may shape the future of dermatologic care.
| Original language | English |
|---|---|
| Journal | JEADV Clinical Practice |
| Number of pages | 11 |
| ISSN | 2768-6566 |
| DOIs | |
| Publication status | Accepted/In press - 9 Apr 2026 |
Keywords
- artificial intelligence
- dermatology
- digital health
- sensors
- startups
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