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The Promise of Reconfigurable Computing for Hyperspectral Imaging Onboard Systems: A Review and Trends

机译:高光谱成像车载系统可重构计算的前景:回顾与趋势

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Hyperspectral imaging is an important technique in remote sensing which is characterized by high spectral resolutions. With the advent of new hyperspectral remote sensing missions and their increased temporal resolutions, the availability and dimensionality of hyperspectral data is continuously increasing. This demands fast processing solutions that can be used to compress and/or interpret hyperspectral data onboard spacecraft imaging platforms in order to reduce downlink connection requirements and perform a more efficient exploitation of hyperspectral data sets in various applications. Over the last few years, reconfigurable hardware solutions such as field-programmable gate arrays (FPGAs) have been consolidated as the standard choice for onboard remote sensing processing due to their smaller size, weight, and power consumption when compared with other high-performance computing systems, as well as to the availability of more FPGAs with increased tolerance to ionizing radiation in space. Although there have been many literature sources on the use of FPGAs in remote sensing in general and in hyperspectral remote sensing in particular, there is no specific reference discussing the state-of-the-art and future trends of applying this flexible and dynamic technology to such missions. In this work, a necessary first step in this direction is taken by providing an extensive review and discussion of the (current and future) capabilities of reconfigurable hardware and FPGAs in the context of hyperspectral remote sensing missions. The review covers both technological aspects of FPGA hardware and implementation issues, providing two specific case studies in which FPGAs are successfully used to improve the compression and interpretation (through spectral unmixing concepts) of remotely sensed hyperspectral data. Based on the two considered case studies, we also highlight the major challenges to be addressed in the near future in this emerging and fast growing research area.
机译:高光谱成像是遥感中的一项重要技术,其特征在于具有高光谱分辨率。随着新的高光谱遥感任务的出现及其时间分辨率的提高,高光谱数据的可用性和维数不断增加。这就需要快速处理解决方案,该解决方案可用于压缩和/或解释航天器成像平台上的高光谱数据,以减少下行链路连接要求并在各种应用中更有效地利用高光谱数据集。在过去的几年中,可重构硬件解决方案(如现场可编程门阵列(FPGA))已被整合为板载遥感处理的标准选择,因为与其他高性能计算相比,它们具有更小的尺寸,重量和功耗。系统,以及更多FPGA的可用性,这些FPGA对空间中的电离辐射具有更高的容忍度。尽管有很多文献资料表明在一般的遥感中,特别是在高光谱遥感中使用FPGA,但没有具体的参考文献讨论将这种灵活和动态的技术应用于FPGA的最新技术和未来趋势。这样的任务。在这项工作中,通过在高光谱遥感任务背景下对可重构硬件和FPGA的(当前和将来)功能进行广泛的回顾和讨论,朝着这个方向迈出了必要的第一步。这篇综述涵盖了FPGA硬件的技术方面和实现问题,并提供了两个特定的案例研究,在这些案例研究中,FPGA成功地用于改善遥感高光谱数据的压缩和解释(通过频谱分解概念)。基于两个经过深思熟虑的案例研究,我们还重点介绍了这个新兴且快速增长的研究领域在不久的将来要解决的主要挑战。

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