Evaluation of High-Speed Link Parameters for Highly Reliable Reconfigurable Systems Based on S-Parameters and BER

M. Orda-Zhigulina
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Abstract

Purpose of research. is to improve signal transmission parameters in high-speed signal transmission lines, including between programmable logic integrated circuits (PLIC). This improvement in signal transmission parameters is necessary to increase throughput of modern highly reliable reconfigurable systems to ensure data transfer rate of up to tens of Gbit/s. It can be done considering the influence of electrical and structural parameters of multi-layer printed circuit boards (MPCB) on them. It is possible to provide such high data rates by using a wider frequency band of transmitted signals. One of the existing approaches to this problem is to increase "physical" frequency of transmitted information signals to 25-300 GHz, which is sufficient to achieve desired rates.Methods. A method for estimating quality of high-speed signal transmission lines based on the definition of standardized methods for analyzing signal transmission parameters, such as JCOM, S-parameters and BER is proposed in the article. This method allows evaluating high-speed communication lines. Thus, the Channel Operating Margin (COM)/JCOM parameter can be used to estimate the quality of a digital communication channel - a standardized method for determining the overall channel quality indicator. Known methods are used to estimate such signal transmission parameters as S11 reflection coefficient and S21 attenuation coefficient (S-Parameters). These methods are used to estimate attenuation and loss of the information signal in the path, when copies of the signal reflected from inhomogeneities affect the original and lead to its distortion. Simulation of such parameter as Bit Error Rate (BER) is carried out according to G.821/G.826/M2100 rationing and quality control methodology.Results. The main metrics were selected to evaluate the quality of high-speed signal transmission lines. It is based on the evaluation of such signal transmission parameters as Channel Operating Margin (COM), S-parameters and Bit Error Rate (BER). Numerical evaluations of signal transmission parameters were obtained and their effect on the design parameters of high-speed signal transmission lines was estimated. It is recommended to use at least 1 transition hole between screening polygons in GND separation layers every 0.5 cm or 0.25 cm2 of WFP area. It is for a data rate of less than 25 Gbit/s, It is recommended to use at least 2 transition holes between screening polygons in GND separation layers every 0.5 cm or 0.25 cm² of PV area, if high-speed signal transmission line passes at a distance of closer than 2.5 cm from the power supply circuits in a projection on the layer where the power supply circuits are located.Conclusion. A method for calculating signal transmission parameters on high-speed signaling lines based on the calculation of Channel Operating Margin (COM), S-parameters and Bit Error Rate (BER) parameters is introduced. As part of introduced method, an analysis of signal transmission parameters was carried out. This analysis shows that when the "reference" values of electrical parameters of the line are met, the transfer holes contribute most to the signal distortion; then the layers in which the signal line is located, the number of screening polygons between the signal layers and the layers; in which the power supply circuits, the design parameters of the transition holes, as well as the length and number of segments of the high-speed line pass. Numerical evaluations of minimum number of transition holes and their diameter, the length of segments of differential pairs are given. These results can be used in pre-layout analysis step of high-speed signal transmission lines for computational modules of highly reliable reconfigurable systems.
基于s参数和误码率的高可靠可重构系统高速链路参数评估
研究目的。是提高高速信号传输线,包括可编程逻辑集成电路(PLIC)之间的信号传输参数。为了提高现代高可靠可重构系统的吞吐量,以确保高达数十Gbit/s的数据传输速率,信号传输参数的改进是必要的。可以考虑多层印刷电路板(MPCB)的电气参数和结构参数对它们的影响。通过使用更宽的传输信号频带,可以提供如此高的数据速率。解决这一问题的现有方法之一是将传输信息信号的“物理”频率提高到25-300千兆赫,这足以达到期望的速率。本文提出了一种基于JCOM、s参数和误码率等信号传输参数分析标准化方法的高速信号传输线质量估计方法。这种方法允许评估高速通信线路。因此,信道营运裕度(COM)/JCOM参数可用于估计数字通信信道的质量——一种确定整体信道质量指标的标准化方法。利用已知方法估计S11反射系数和S21衰减系数(S-Parameters)等信号传输参数。这些方法用于估计路径中信息信号的衰减和损失,当信号的副本从非均匀性反射影响原始信号并导致其失真时。根据G.821/G标准对误码率(BER)等参数进行仿真。826/M2100定量定量及质量控制方法。选取了评价高速信号传输线质量的主要指标。它是基于信道运行余量(COM)、s参数和误码率(BER)等信号传输参数的评价。对信号传输参数进行了数值计算,并估计了其对高速信号传输线设计参数的影响。建议每隔0.5 cm或0.25 cm2的WFP面积,在GND分离层屏蔽多边形之间至少设置1个过渡孔。当数据速率小于25gbit /s时,如果高速信号传输线在供电电路所在层的投影中距离供电电路小于2.5 cm,建议每隔0.5 cm或0.25 cm²光伏面积,在GND分离层屏蔽多边形之间至少设置2个过渡孔。介绍了一种基于信道运行裕度(COM)、s参数和误码率(BER)参数计算的高速通信线信号传输参数计算方法。作为介绍方法的一部分,对信号传输参数进行了分析。分析表明,当线路的电气参数达到“参考值”时,传输孔对信号畸变的贡献最大;然后是信号线所在的层数,信号层与所述层之间的屏蔽多边形数;其中电源电路、过渡孔的设计参数,以及高速线路通过的段数和长度。给出了最小过渡孔数及其直径、微分副段长度的数值计算。这些结果可用于高可靠可重构系统计算模块高速信号传输线的预布置分析步骤。
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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