Following the trend of other safety-critical industries like automotive and avionics, the space domain is witnessing an increase in the on-board computing performance demands. This raise in performance needs comes from both control and payload parts of the spacecraft and calls for advanced electronics systems able to provide high computational power under the constraints of the harsh space environment. On the non-technical side, for strategic reasons it is mandatory to get European independence on the used computing technology. In this project, we study the applicability of embedded GPUs in space, which have shown a dramatic improvement of their performance per-watt ratio coming from their proliferation in consumer markets based on competitive European technology. To that end, we perform an analysis of the existing space application domains to identify which software domains can benefit from their use. Moreover, we survey the embedded GPU domain in order to assess whether embedded GPUs can provide the required computational power and identify the challenges which need to be addressed for their adoption in space. In this paper, we describe the steps followed in the project, as well as a summary of results obtained from our analyses so far in the project.
翻译:遵循汽车和航空等其他安全关键行业的趋势,空间领域正在目睹机载计算性能需求的增长,性能需求的增长来自航天器的控制部分和有效载荷部分,要求先进的电子系统能够在严酷的空间环境的限制下提供高计算力。在非技术方面,出于战略原因,必须使废旧计算机技术获得欧洲独立。在这一项目中,我们研究了嵌入的GPU在空间的适用性,这些GPU在消费市场中以具有竞争力的欧洲技术为基础,其性能每瓦比率大幅提高。为此,我们对现有空间应用领域进行了分析,以确定哪些软件领域可以从中受益。此外,我们调查嵌入的GPU域,以评估嵌入的GPU能否提供所需的计算力,并确定在空间采用这些计算机技术时需要应对的挑战。在这份文件中,我们描述了项目中采取的步骤,并总结了项目迄今分析的结果。