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SA-FEMIP: A Self-Adaptive Features Extractor and Matcher IP-Core Based on Partially Reconfigurable FPGAs for Space Applications

机译:SA-FEMIP:基于部分可重构FPGA的自适应特征提取器和匹配器IP核,适用于太空应用

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摘要

Video-based navigation (VBN) is increasingly used in space applications to enable autonomous entry, descent, and landing of aircrafts. VBN algorithms require real-time performances and high computational capabilities, especially to perform features extraction and matching (FEM). In this context, field-programmable gate arrays (FPGAs) can be employed as efficient hardware accelerators. This paper proposes an improved FPGA-based FEM module. Online self-adaptation of the parameters of both the image noise filter and the features extraction algorithm is adopted to improve the algorithm robustness. Experimental results demonstrate the effectiveness of the proposed self-adaptive module. It introduces a marginal resource overhead and no timing performance degradation when compared with the reference state-of-the-art architecture
机译:基于视频的导航(VBN)越来越多地用于太空应用中,以实现飞机的自主进入,下降和着陆。 VBN算法要求实时性能和高计算能力,尤其是执行特征提取和匹配(FEM)时。在这种情况下,可以将现场可编程门阵列(FPGA)用作有效的硬件加速器。本文提出了一种改进的基于FPGA的FEM模块。通过对图像噪声滤波器和特征提取算法的参数进行在线自适应,以提高算法的鲁棒性。实验结果证明了所提出的自适应模块的有效性。与参考最新技术架构相比,它带来了边际资源开销,并且没有时序性能下降

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