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Updated: Jan 11, 2026

Behavioral Assessment of Visual Function via Optomotor Response and Cognitive Function via Y-Maze in Diabetic Rats
Published on: October 23, 2020
Enhancing accessibility: a multi-level platform for visual question answering in diabetic retinopathy for individuals
Sarah Alotaibi1, Suheer Al-Hadhrami1,2, Saad Al-Ahmadi1
1Department of Computer Science, College of Computer and Information Sciences, King Saud University, Riyadh, Saudi Arabia.
None:
Individuals with visual disabilities possess impairments that affect their ability to perceive visual information, ranging from partial to complete vision loss. Visual disabilities affect about 2.2 billion people globally. In this paper, we introduce a new multi-level Visual Questioning Answering (VQA) framework for visually disabled people that leverages the strengths of various VQA models of the multi-level components to enhance system performance. The model relies on a bi-level architecture that employs two distinct layers. In the first level, the model classifies the question type. This classification guides the visual question to the appropriate component model in the second level. This bi-level architecture incorporates a switch function that enables the system to select the optimal VQA model for each specific question, hence enhancing overall accuracy. The experimental findings indicate that the multi-level VQA technique is significantly effective. The bi-level VQA model enhances the overall accuracy over the state-of-the-art from 87.41% to 88.41%. This finding suggests the use of multiple levels with different models can boost the VQA systems' performance. This research presents a promising direction for developing advanced, multi-level VQA systems. Future work may explore optimizing and experimenting with various model levels to enhance performance further.
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