视网膜感光细胞的低误差、高速和大规模硬件实现:锥状细胞和杆状细胞

IF 3 3区 计算机科学 Q2 ENGINEERING, ELECTRICAL & ELECTRONIC Aeu-International Journal of Electronics and Communications Pub Date : 2024-07-24 DOI:10.1016/j.aeue.2024.155456
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引用次数: 0

摘要

近来,人们一直非常关注制造假肢和医疗干预措施,以帮助治疗疾病、康复和改善生物功能。研究人员尤其关注为大脑、心脏、神经系统等精细的生物部分开发硬件模型。视网膜是人们特别感兴趣的一个领域,它是眼睛最薄、最内层的部分。本研究论文的重点是为视网膜视锥细胞和视杆细胞开发一种高速、低误差的硬件实现方法。当前的数学模型通常使用多个非线性函数来描述这些细胞的行为。然而,这些非线性函数有时会限制速度。在这项研究中,我们探索使用三角函数来近似视锥细胞和视杆细胞的非线性特性,从而提高性能。模拟结果表明,建议的模型符合初级视锥和视杆细胞的功能,特别是在时间特性、动态响应和误差范围方面。通过在 Virtex-5 现场可编程门阵列(FPGA)板上大规模(300 个单元)实施所建议的模型,观察到了显著的优势。其中一个优势是,对于锥状细胞和杆状细胞,建议模型的合成频率分别比原始模型快 3.35 倍和 3.44 倍。另一个优势是,与实现原始模型的单个单元相比,在 FPGA 上实现 300 个拟议模型单元的能力仅增加了两倍的硬件资源使用量。在 Virtex-5 可重构电路板(FPGA)上实现硬件的结果表明,所提出的框架是合理的,具有紧凑的硬件尺寸和合适的网络频率。
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Low-error, high-speed, and large-scale hardware implementation of retinal photoreceptor cells: Cone and rod cells

In recent times, there has been a significant focus on creating prosthetics and medical interventions to aid in the treatment of diseases, recovery, and the improvement of biological functions. Researchers have particularly directed their attention toward developing hardware models for delicate biological parts such as the brain, heart, nervous system, and. One area of particular interest is the retina, which is the thinnest and innermost layer of the eye. This research paper focuses on the development of a high-speed and low-error hardware implementation for retinal cone and rod cells. Current mathematical models often use multiple nonlinear functions to describe the behavior of these cells. However, these nonlinear functions can sometimes be limiting in terms of speed. In this study, we explore the use of trigonometric functions to approximate the non-linear properties of retinal cone and rod cells, allowing for improved performance. The results of the simulation show that the suggested model is in line with the functioning of primary cone and rod cells, particularly in relation to time characteristics, dynamic response, and margin of error. By implementing the proposed model in Large-Scale (300 cell) on a Virtex-5 Field Programmable Gate Array (FPGA) board, notable benefits were observed. One of these advantages includes increasing the synthesis frequency of the proposed model by 3.35 and 3.44 times faster than the original model for the cone cell and rod cell, respectively. Another advantage is the ability to implement 300 cells of the proposed models on the FPGA, compared to the implementation of a single cell of the original models, with only a two-fold increase in the amount of hardware resources used. The proposed framework is legitimate and features a compact hardware size and suitable network frequency, as demonstrated by the outcomes from implementing the hardware on the Virtex-5 reconfigurable board (FPGA).

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来源期刊
CiteScore
6.90
自引率
18.80%
发文量
292
审稿时长
4.9 months
期刊介绍: AEÜ is an international scientific journal which publishes both original works and invited tutorials. The journal''s scope covers all aspects of theory and design of circuits, systems and devices for electronics, signal processing, and communication, including: signal and system theory, digital signal processing network theory and circuit design information theory, communication theory and techniques, modulation, source and channel coding switching theory and techniques, communication protocols optical communications microwave theory and techniques, radar, sonar antennas, wave propagation AEÜ publishes full papers and letters with very short turn around time but a high standard review process. Review cycles are typically finished within twelve weeks by application of modern electronic communication facilities.
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