Leiden Institute of Advanced Computer Science, Niels Bohrweg 1, Leiden, Netherlands.
Department of Otorhinolaryngology, Leiden University Medical Center, Albinusdreef 2, Leiden, Netherlands.
Hear Res. 2024 Jun;447:109011. doi: 10.1016/j.heares.2024.109011. Epub 2024 Apr 24.
This study introduces and evaluates the PHAST+ model, part of a computational framework designed to simulate the behavior of auditory nerve fibers in response to the electrical stimulation from a cochlear implant. PHAST+ incorporates a highly efficient method for calculating accommodation and adaptation, making it particularly suited for simulations over extended stimulus durations. The proposed method uses a leaky integrator inspired by classic biophysical nerve models. Through evaluation against single-fiber animal data, our findings demonstrate the model's effectiveness across various stimuli, including short pulse trains with variable amplitudes and rates. Notably, the PHAST+ model performs better than its predecessor, PHAST (a phenomenological model by van Gendt et al.), particularly in simulations of prolonged neural responses. While PHAST+ is optimized primarily on spike rate decay, it shows good behavior on several other neural measures, such as vector strength and degree of adaptation. The future implications of this research are promising. PHAST+ drastically reduces the computational burden to allow the real-time simulation of neural behavior over extended periods, opening the door to future simulations of psychophysical experiments and multi-electrode stimuli for evaluating novel speech-coding strategies for cochlear implants.
本研究介绍并评估了 PHAST+模型,该模型是一个计算框架的一部分,旨在模拟听神经纤维对人工耳蜗电刺激的反应行为。PHAST+ 采用了一种高效的适应和调节计算方法,非常适合模拟长时间的刺激。该方法使用了一种由经典生物物理神经模型启发的漏积分器。通过与单纤维动物数据的对比评估,我们的研究结果表明,该模型在各种刺激条件下都具有有效性,包括具有不同幅度和速率的短脉冲串。值得注意的是,PHAST+ 模型的性能优于其前身 PHAST(van Gendt 等人提出的一种现象学模型),特别是在模拟长时间的神经反应方面。虽然 PHAST+ 主要针对峰发放电率衰减进行了优化,但它在其他几个神经测量指标上表现良好,如向量强度和适应程度。这项研究的未来意义是很有前景的。PHAST+ 大大降低了计算负担,从而能够实时模拟长时间的神经行为,为未来人工耳蜗的心理物理实验和多电极刺激的模拟以及新的语音编码策略的评估打开了大门。