Generative artificial intelligence in ophthalmology: multimodal retinal images for the diagnosis of Alzheimer's disease with convolutional neural networks
I. R. Slootweg, M. Thach, K. R. Curro-Tafili, F. D. Verbraak, F. H., Bouwman, Y. A. L. Pijnenburg, J. F. Boer, J. H. P. de Kwisthout, L., Bagheriye, P. J. Gonz\'alez

TL;DR
This study explores using multimodal retinal images and convolutional neural networks, enhanced with synthetic data from diffusion models, to predict Alzheimer's disease with improved accuracy and interpretability.
Contribution
Introduces a novel approach combining synthetic image generation with multimodal CNNs for Alzheimer's diagnosis from retinal images, enhancing predictive performance.
Findings
Synthetic data improved unimodal CNN performance.
Multimodal classifiers with metadata achieved highest accuracy.
Class activation maps identified relevant retinal regions for AD.
Abstract
Background/Aim. This study aims to predict Amyloid Positron Emission Tomography (AmyloidPET) status with multimodal retinal imaging and convolutional neural networks (CNNs) and to improve the performance through pretraining with synthetic data. Methods. Fundus autofluorescence, optical coherence tomography (OCT), and OCT angiography images from 328 eyes of 59 AmyloidPET positive subjects and 108 AmyloidPET negative subjects were used for classification. Denoising Diffusion Probabilistic Models (DDPMs) were trained to generate synthetic images and unimodal CNNs were pretrained on synthetic data and finetuned on real data or trained solely on real data. Multimodal classifiers were developed to combine predictions of the four unimodal CNNs with patient metadata. Class activation maps of the unimodal classifiers provided insight into the network's attention to inputs. Results. DDPMs…
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Taxonomy
TopicsRetinal Imaging and Analysis
MethodsSoftmax · Attention Is All You Need · Diffusion
