Distributed Measurement System for Performance Evaluation of Embedded Clock Synchronization Solutions

András Wiesner, T. Kovácsházy
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引用次数: 2

Abstract

Distributed, real-time, safety-critical systems gain wide-scale acceptance in the automotive, aerospace, industrial, science, telecommunication, energy distribution, and audio-video distribution applications. In these systems, Time-Sensitive Networking (TSN) can provide the required real-time and reliable communication services. TSN requires precision, hardware-assisted time synchronization provided by the IEEE 802.1AS-Rev or its progenitor, IEEE 1588. IEEE 1588 has a long history in distributed measurement systems, such as vehicular test systems, energy distribution, astrophysics, communication systems such as 4G and 5G, etc. Most modern hardware supports the hardware requirements for IEEE 1588 or IEEE 802.1AS-Rev in some respect; however, software support is very limited on network embedded microcontrollers (MCU), i.e., most modern MCUs do not have open-source, free SW support for time synchronization. We have developed flexPTP (https://github.com/epagris/flexPTP), an open-source, open-licensed PTP implementation for MCUs based on FreeRTOS (embedded real-time OS for MCUs) and lwIP (a TCP/IP stack for MCUs). During the development of the project, we have also created a distributed measurement system for the performance evaluation of flexPTP, which is built into flexPTP. The system can be used during development, but it is also applicable for online monitoring. The data collection component of the distributed measurement system collects data from the MCUs running flexPTP in a lightweight, low resource utilization, platform-independent, MCU-conform way, and forwards the information to a central node, on which data storage, analyses, and presentation can be done. We have also developed a WEB application for online supervision of synchronization in a browser. The system also has a self-discovery feature, allowing developers to identify all nodes capable of running the data collection component of the measurement system. In the paper, we will also present the initial performance evaluation results collected from our implementation. The measurement system can be also adapted to other online and/or offline performance evaluation projects in distributed, embedded systems with some modifications.
嵌入式时钟同步解决方案性能评估的分布式测量系统
分布式、实时、安全关键系统在汽车、航空航天、工业、科学、电信、能源分配和音视频分配应用中获得了广泛的认可。在这些系统中,时间敏感网络(TSN)可以提供所需的实时、可靠的通信服务。TSN需要由IEEE 802.1AS-Rev或其前身IEEE 1588提供的精度、硬件辅助时间同步。IEEE 1588在分布式测量系统方面有着悠久的历史,如车载测试系统、能量分配、天体物理、4G、5G等通信系统。大多数现代硬件在某些方面支持IEEE 1588或IEEE 802.1AS-Rev的硬件要求;然而,软件支持在网络嵌入式微控制器(MCU)上是非常有限的,也就是说,大多数现代MCU没有开源的、免费的软件支持时间同步。我们已经开发了flexPTP (https://github.com/epagris/flexPTP),这是一个基于FreeRTOS (mcu的嵌入式实时操作系统)和lwIP (mcu的TCP/IP堆栈)的开源,开放许可的mcu PTP实现。在项目开发过程中,我们还创建了一个分布式的flexPTP绩效评估测量系统,并将其内置到flexPTP中。该系统可以在开发过程中使用,也可用于在线监控。分布式测量系统的数据采集组件以轻量级、低资源利用率、平台无关、符合mcu的方式从运行flexPTP的mcu中采集数据,并将数据转发到中心节点,在中心节点上完成数据的存储、分析和呈现。我们还开发了一个WEB应用程序,用于在浏览器中在线监督同步。该系统还具有自我发现功能,允许开发人员识别能够运行测量系统的数据收集组件的所有节点。在本文中,我们还将介绍从我们的实施中收集的初步性能评估结果。该测量系统也可以适应其他在线和/或离线的性能评估项目,在分布式,嵌入式系统进行一些修改。
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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