Evaluation of Two DigitalWound Area Measurement Methods Using a Non-Randomized, Single-Center, Controlled Clinical Trial
Other authors
Publication date
2024ISSN
2079-9292
Abstract
A prospective, single-center, non-randomized, pre-marketing clinical investigation was conducted
with a single group of subjects to collect skin lesion images. These images were subsequently
utilized to compare the results obtained from a traditional method of wound size measurement with
two novel methods developed using Machine Learning (ML) approaches. Both proposed methods
automatically calculate the wound area from an image. One method employs a two-dimensional
system with the assistance of an external calibrator, while the other utilizes an Augmented Reality
(AR) system, eliminating the need for a physical calibration object. To validate the correlation between
these methods, a gold standard measurement with digital planimetry was employed. A total of
67 wound images were obtained from 41 patients between 22 November 2022 and 10 February 2023.
The conducted pre-marketing clinical investigation demonstrated that the ML algorithms are safe
for both the intended user and the intended target population. They exhibit a high correlation with
the gold standard method and are more accurate than traditional methods. Additionally, they meet
the manufacturer’s expected use. The study validated the performance, safety, and usability of the
implemented methods as a valuable tool in the measurement of skin lesions.
Document Type
Article
Language
English
Keywords
Pages
18 p.
Publisher
MDPI
Recommended citation
Casanova-Lozano, L., Reifs-Jiménez, D., Martí-Ejarque, M. D. M., Reig-Bolaño, R., Grau-Carrión, S. (2024) Evaluation of Two Digital Wound Area Measurement Methods Using a Non-Randomized, Single-Center, Controlled Clinical Trial. Electronics, 13(12), num: 2390. https://doi.org/10.3390/electronics13122390
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- Articles [1542]
Except where otherwise noted, this item's license is described as http://creativecommons.org/licenses/by/4.0/

