Related Experiment Video
Updated: May 5, 2026

Quantification of Hypopigmentation Activity In Vitro
Published on: March 6, 2019
Automated Measurement of Depigmentation Extent with a New AI Tool Applied to the Example of Vitiligo
Yalei Chen1, Tatjana Lukic2, All-Shine Chen3
1Pfizer Inc., Cambridge, MA, USA. yalei.chen@pfizer.com.
Introduction:
We have developed a digital algorithm to assess skin pigmentation, specifically an artificial intelligence-based image analysis tool that segments photographed lesions and then scores them by Facial Vitiligo Area Scoring Index (F-VASI), in place of trained site investigators. Vitiligo, the disease used in this exemplary demonstration of the algorithm, is a chronic, acquired, immune-mediated depigmentation disease characterized by white macules and/or patches of skin. The F-VASI is a clinician-reported outcome that relies on manual assessment of affected body surface area (BSA) and level of depigmentation and is subject to inter- and intra-rater variability. Here, we present automated medical image segmentation of vitiligo lesions and digitization of validated scores, including F-VASI, BSA, and percentage of depigmentation (%Depigmentation).
Methods:
Our convolutional neural network ("UNet") uses encoder-decoder architecture to process photographic images and quantify areas of skin affected by vitiligo.
Results:
We trained and validated our model using cross-polarized participant photos from clinical trials, achieving 81% accuracy when predicting vitiligo lesions in new photos. In addition, we created an algorithm to digitize F-VASI assessment using estimates of BSA and %Depigmentation that were calculated using the predicted lesions in the photos. We were able to achieve an interclass correlation coefficient of 0.91 when comparing our digital F-VASI score to the manually estimated F-VASI score.
Conclusion:
We found that using a UNet to segment vitiligo lesions can allow us to digitize clinically meaningful measures for vitiligo.
Trial Registration:
The phase 2b study: NCT03715829.
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