Poster + Presentation + Paper
4 March 2022 Training of an artificial intelligence algorithm for automatic detection of the Van Herick grade
Author Affiliations +
Proceedings Volume 11941, Ophthalmic Technologies XXXII; 119410C (2022) https://doi.org/10.1117/12.2607610
Event: SPIE BiOS, 2022, San Francisco, California, United States
Conference Poster
Abstract
Van Herick technique is a qualitative tool for assessing the anterior chamber angle and can be exploited as a simple screening alternative to gonioscopy. In our previous papers, we presented a novel instrument able to automatically perform the Van Herick manoeuvre. Therefore, to fully automate the screening method from the acquired images, it is still necessary to automatically determine the Van Herick grade. In this paper, we present a deep learning algorithm for automatically determining the Van Herick grade. In particular, the performances of three different Convolutional Neural Networks have been verified by acquiring the eye images of 80 patients. All the networks return the Van Herick grade classification with sufficient accuracy for a screening system and, after proper training, can offer a real-time response.
Conference Presentation
© (2022) COPYRIGHT Society of Photo-Optical Instrumentation Engineers (SPIE). Downloading of the abstract is permitted for personal use only.
Davide Cassanelli, Tommaso Fedullo, Giovanni Gibertoni, Giorgia Saporito, Manuela Ferrazza, Francesco Oddone, Ivano Riva, Luciano Quaranta, Federico Tramarin, and Luigi Rovati "Training of an artificial intelligence algorithm for automatic detection of the Van Herick grade", Proc. SPIE 11941, Ophthalmic Technologies XXXII, 119410C (4 March 2022); https://doi.org/10.1117/12.2607610
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KEYWORDS
Eye

Artificial intelligence

Detection and tracking algorithms

MATLAB

Computed tomography

Convolutional neural networks

Network architectures

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