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Multi-Channel Temporal Interference Retinal Stimulation Based on Reinforcement Learning

delete2025-09-05
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PRE
AI
X
Xiayu Chen
W
W.K. Chan
Y
Yingqiang Meng
R
Runze Liu
Y
Yueyi Yu
胡胜 cover
胡胜 (Sheng Hu)
J
Jijun Han
X
Xiaoxiao Wang
J
Jiawei Zhou
B
Bensheng Qiu
Y
Yanming Wang
DOI:10.1109/JBHI.2025.3605434delete
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Abstract

Abstract

En 中文
Retinal degenerative diseases such as age-related macular degeneration and retinitis pigmentosa cause severe vision impairment, while current electrical stimulation therapies are limited by poor spatial targeting precision. As a promising non-invasive alternative, the efficacy of temporal interference stimulation (TIS) for retinal targeting depends on optimized multi-electrode parameters. This study reconstructed a whole-head finite element model with detailed ocular structures and applied reinforcement learning (RL)-based multi-channel electrode parameter optimization to retinal stimulation. Systematic evaluation demonstrated that the focal precision of TIS improves with increasing channel numbers (consistent across all subject head models), with RL significantly outperforming conventional genetic algorithms (GA) and unsupervised neural networks (USNN) in focusing capability. Furthermore, by implementing the computationally intensive envelope calculation using the JAX framework, we achieved a nearly order-of-magnitude reduction in optimization time (to approx. 2 minutes per run on an RTX 4090D), significantly enhancing the practical feasibility of the proposed RL framework. This work provides a novel and computationally efficient methodology for precise non-invasive neuromodulation parameter optimization, applicable not only to retinal diseases but potentially to broader neurological conditions.
Keywords:
High-performance computing
multi-channel
reinforcement learning
retinal
temporal interference stimulation

Journal

IEEE Journal of Biomedical and Health Informatics cover
IEEE Journal of Biomedical and Health Informatics
IF:
6.8
Papers:
4.5K
Citations:
2.0W

Organization

A
Anhui Medical University
Scholars:
3.4K
Papers: 904
Citations: 2.6K
U
university of science and technology of china
Scholars:
1.0W
Papers: 3.9K
Citations: 3
W
wenzhou medical university
Scholars:
7.4K
Papers: 1.9K
Citations: 0
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