Natural language processing in dermatology: A systematic literature review and state of the art

Author:

Paganelli Alessia1ORCID,Spadafora Marco23ORCID,Navarrete‐Dechent Cristian4ORCID,Guida Stefania5ORCID,Pellacani Giovanni6ORCID,Longo Caterina23ORCID

Affiliation:

1. Dermatology Unit Azienda Unità Sanitaria Locale—IRCCS di Reggio Emilia Reggio Emilia Italy

2. University of Modena and Reggio Emilia Modena Italy

3. Azienda Unità Sanitaria Locale—IRCCS di Reggio Emilia Skin Cancer Center Reggio Emilia Italy

4. Melanoma and Skin Cancer Unit, Department of Dermatology, Escuela de Medicina Pontificia Universidad Católica de Chile Santiago Chile

5. Dermatology Clinic IRCCS San Raffaele Scientific Institute Milan Italy

6. Department of Clinical Internal, Anesthesiological and Cardiovascular Sciences, Dermatology Clinic Sapienza University of Rome Rome Italy

Abstract

AbstractBackgroundNatural Language Processing (NLP) is a field of both computational linguistics and artificial intelligence (AI) dedicated to analysis and interpretation of human language.ObjectivesThis systematic review aims at exploring all the possible applications of NLP techniques in the dermatological setting.MethodsExtensive search on ‘natural language processing’ and ‘dermatology’ was performed on MEDLINE and Scopus electronic databases. Only journal articles with full text electronically available and English translation were considered. The PICO (Population, Intervention or exposure, Comparison, Outcome) algorithm was applied to our study protocol.ResultsNatural Language Processing (NLP) techniques have been utilized across various dermatological domains, including atopic dermatitis, acne/rosacea, skin infections, non‐melanoma skin cancers (NMSCs), melanoma and skincare. There is versatility of NLP in data extraction from diverse sources such as electronic health records (EHRs), social media platforms and online forums. We found extensive utilization of NLP techniques across diverse dermatological domains, showcasing its potential in extracting valuable insights from various sources and informing diagnosis, treatment optimization, patient preferences and unmet needs in dermatological research and clinical practice.ConclusionsWhile NLP shows promise in enhancing dermatological research and clinical practice, challenges such as data quality, ambiguity, lack of standardization and privacy concerns necessitate careful consideration. Collaborative efforts between dermatologists, data scientists and ethicists are essential for addressing these challenges and maximizing the potential of NLP in dermatology.

Publisher

Wiley

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