Medical Cyberspace Subliminal Affective Collective Consciousness: Machine Learning Discriminates Back Pain vs Hip/Knee Osteoarthritis Web Pages Emotional Fingerprints

Davide Caldo, Silvia Bologna, Luana Conte, Muhammad Saad Amin, Luca Anselma, Valerio Basile, Hossain Murad, Alessandro Mazzei, PAOLO HERITIER, Riccardo Ferracini, Elizaveta Kon, Giorgio De Nunzio

Risultato della ricerca: Contributo su rivistaArticolo in rivistapeer review

Abstract

Back pain is the leading cause of disability worldwide. Its emergence relates not only to the musculoskeletal degeneration biological substrate but also to psychosocial factors; emotional components play a pivotal role. In modern society, people are significantly informed by the Internet; in turn, they contribute social validation to a “successful” digital information subset in a dynamic interplay. The Affective component of medical pages has not been previously investigated, a significant gap in knowledge since they represent a critical biopsychosocial feature. We tested the hypothesis that successful pages related to spine pathology embed a consistent emotional pattern, allowing discrimination from a control group. The pool of web pages related to spine or hip/knee pathology was automatically selected by relevance and popularity and submitted to automated sentiment analysis to generate emotional patterns. Machine Learning (ML) algorithms were trained to predict page original topics from patterns with binary classification. ML showed high discrimination accuracy; disgust emerged as a discriminating emotion. The findings suggest that the digital affective “successful content” (collective consciousness) integrates patients’ biopsychosocial ecosystem, with potential implications for the emergence of chronic pain, and the endorsement of health-relevant specific behaviors. Awareness of such effects raises practical and ethical issues for health information providers.
Lingua originaleInglese
pagine (da-a)1-11
Numero di pagine11
RivistaScientific Reports
Volume13
DOI
Stato di pubblicazionePubblicato - 2022

Keywords

  • back pain
  • herniated disc
  • disability
  • sentiment analysis
  • chronic pain
  • affective neuroscience

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