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Deep Learning to Predict Geographic Atrophy Area and Growth Rate from Multimodal Imaging

Neha Anegondi, Simon S. Gao, Verena Steffen, Richard F. Spaide, Srinivas R. Sadda, Frank G. Holz, Christina Rabe, Lee Honigberg, Elizabeth M. Newton, Julia Cluceru, Michael Kawczynski, Thomas Bengtsson, Daniela Ferrara, Qi Yang

2022Ophthalmology Retina50 citationsDOIOpen Access PDF

Abstract

OBJECTIVE: To develop deep learning models for annualized geographic atrophy (GA) growth rate prediction using fundus autofluorescence (FAF) images and spectral-domain OCT volumes from baseline visits, which can be used for prognostic covariate adjustment to increase power of clinical trials. DESIGN: This retrospective analysis estimated GA growth rate as the slope of a linear fit on all available measurements of lesion area over a 2-year period. Three multitask deep learning models-FAF-only, OCT-only, and multimodal (FAF and OCT)-were developed to predict concurrent GA area and annualized growth rate. PARTICIPANTS: Patients were from prospective and observational lampalizumab clinical trials. METHODS: The 3 models were trained on the development data set, tested on the holdout set, and further evaluated on the independent test sets. Baseline FAF images and OCT volumes from study eyes of patients with bilateral GA (NCT02247479; NCT02247531; and NCT02479386) were split into development (1279 patients/eyes) and holdout (443 patients/eyes) sets. Baseline FAF images from study eyes of NCT01229215 (106 patients/eyes) and NCT02399072 (169 patients/eyes) were used as independent test sets. MAIN OUTCOME MEASURES: ) between observed and predicted lesion areas/growth rates. Confidence intervals were calculated by bootstrap resampling (B = 10 000). RESULTS: of the FAF-only model for GA lesion area was 0.98 (0.97-0.99) and 0.95 (0.93-0.96), and for GA growth rate was 0.65 (0.52-0.75) and 0.47 (0.34-0.60). CONCLUSIONS: We show the feasibility of using baseline FAF images and OCT volumes to predict individual GA area and growth rates using a multitask deep learning approach. The deep learning-based growth rate predictions could be used for covariate adjustment to increase power of clinical trials. FINANCIAL DISCLOSURE(S): Proprietary or commercial disclosure may be found after the references.

Topics & Concepts

Confidence intervalMedicineCovariateGeographic atrophyOphthalmologyClinical trialNuclear medicineStatisticsInternal medicineMacular degenerationMathematicsRetinal Diseases and TreatmentsRetinal Imaging and AnalysisGlaucoma and retinal disorders
Deep Learning to Predict Geographic Atrophy Area and Growth Rate from Multimodal Imaging | Litcius