cs.AI updates on arXiv.org 08月14日
Perceptual Reality Transformer: Neural Architectures for Simulating Neurological Perception Conditions
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本文提出一种模拟八种神经感知条件的感知现实转换器,采用六种不同的神经网络架构,通过科学依据的视觉转换,实现从自然图像到特定感知状态的学习映射,提升医学教育、同理心培训和辅助技术发展。

arXiv:2508.09852v1 Announce Type: cross Abstract: Neurological conditions affecting visual perception create profound experiential divides between affected individuals and their caregivers, families, and medical professionals. We present the Perceptual Reality Transformer, a comprehensive framework employing six distinct neural architectures to simulate eight neurological perception conditions with scientifically-grounded visual transformations. Our system learns mappings from natural images to condition-specific perceptual states, enabling others to experience approximations of simultanagnosia, prosopagnosia, ADHD attention deficits, visual agnosia, depression-related changes, anxiety tunnel vision, and Alzheimer's memory effects. Through systematic evaluation across ImageNet and CIFAR-10 datasets, we demonstrate that Vision Transformer architectures achieve optimal performance, outperforming traditional CNN and generative approaches. Our work establishes the first systematic benchmark for neurological perception simulation, contributes novel condition-specific perturbation functions grounded in clinical literature, and provides quantitative metrics for evaluating simulation fidelity. The framework has immediate applications in medical education, empathy training, and assistive technology development, while advancing our fundamental understanding of how neural networks can model atypical human perception.

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神经感知模拟 视觉转换器 医疗教育
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