End-to-end learning of safe stimulation parameters for cortical neuroprosthetic vision.

IF 3.8
Burcu Küçükoğlu, Bodo Rueckauer, Jaap de Ruyter van Steveninck, Maureen van der Grinten, Yağmur Güçlütürk, Pieter R Roelfsema, Umut Güçlü, Marcel van Gerven
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Abstract

Objective.Direct electrical stimulation of the brain via cortical visual neuroprostheses is a promising approach to restore basic sight for the visually impaired by inducing a percept of localized light called 'phosphenes'. Apart from the challenge of condensing complex sensory information into meaningful stimulation patterns at low temporal and spatial resolution, providing safe stimulation levels to the brain is crucial.Approach.We propose an end-to-end framework to learn optimal stimulation parameters (amplitude, pulse width and frequency) within safe biological constraints. The learned stimulation parameters are passed to a biologically plausible phosphene simulator which takes into account the size, brightness, and temporal dynamics of perceived phosphenes.Main results.Our experiments on naturalistic navigation videos demonstrate that constraining stimulation parameters to safe levels not only maintains task performance in image reconstruction from phosphenes but consistently results in more meaningful phosphene vision, while providing insights into the optimal range of stimulation parameters.Significance.Our study presents a stimulus-generating encoder that learns stimulation parameters (1) satisfying safety constraints, and (2) maximizing the combined objective of image reconstruction and phosphene interpretability with a highly realistic phosphene simulator accounting for temporal dynamics of stimulation. End-to-end learning of stimulation parameters this way enables enforcement of critical biological safety constraints as well as technical limits of the hardware at hand.

皮质神经假体视觉安全刺激参数的端到端学习。
目的:通过皮质视觉神经假体直接电刺激大脑是一种很有前途的方法,通过诱导局部光的感知来恢复视力障碍患者的基本视力。除了在低时间和空间分辨率下将复杂的感觉信息浓缩成有意义的刺激模式的挑战外,为大脑提供安全的刺激水平是至关重要的方法。 ;我们提出了一个端到端框架,以在安全的生物约束下学习最佳刺激参数(幅度,脉冲宽度和频率)。学习到的刺激参数被传递到一个生物学上合理的磷光体模拟器,该模拟器考虑到感知到的磷光体的大小、亮度和时间动态。我们在自然主义导航视频上的实验表明,将刺激参数限制在安全水平不仅可以保持从光幻视中重建图像的任务性能,而且可以始终产生更有意义的光幻视视觉,同时提供了对刺激参数最佳范围的见解。我们的研究提出了一种刺激生成编码器,它可以学习刺激参数(1)满足安全约束,(2)最大化图像重建和光幻视可解释性的综合目标,并使用高度逼真的光幻视模拟器来考虑刺激的时间动态。通过这种方式对增产参数进行端到端学习,可以强制执行关键的生物安全约束以及现有硬件的技术限制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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