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Efficient Implementation of Rijndael Encryption in Reconfigurable Hardware: Improvements and Design Tradeoffs

机译:高效实现可重构硬件中的Rijndael加密:改进和设计权衡

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Performance evaluation of the Advanced Encryption Standard candidates has led to intensive study of both hardware and software implementations. However, although plentiful papers present various implementation results, it seems that efficiency could still be greatly improved by applying good design rules adapted to devices and algorithms. This paper addresses various approaches for efficient FPGA implementations of the Advanced Encryption Standard algorithm. As different applications of the AES algorithm may require different speed/area tradeoffs, we propose a rigorous study of the possible implementation schemes, but also discuss design methodology and algorithmic optimization in order to improve previously reported results. We propose heuristics to evaluate hardware efficiency at different steps of the design process. We also define an optimal pipeline that takes the place and route constraints into account. Resulting circuits significantly improve previously reported results: throughput is up to 18.5 Gbits/sec and area requirements and be limited to 542 slices and 10 RAM blocks with a ratio throughput/area improved by at least 25% of the best-know designs in the Xilinx Virtex-E technology.
机译:高级加密标准候选的性能评估导致了硬件和软件实现的密集研究。然而,尽管提出了丰富的论文,但似乎通过应用适用于设备和算法的良好设计规则,似乎仍然可以大大提高效率。本文涉及高级加密标准算法的有效FPGA实现的各种方法。由于AES算法的不同应用可能需要不同的速度/区域权衡,我们提出了对可能的实施方案的严格研究,而且还讨论了设计方法和算法优化,以便改善先前报告的结果。我们提出了启发式,以评估设计过程的不同步骤的硬件效率。我们还定义了一个最佳管道,以考虑到地点和路由约束。产生的电路显着改善了先前报告的结果:吞吐量高达18.5 Gbits / sec和面积要求,并限制为542片和10个RAM块,其中Xilinx中最熟悉的设计中的至少25%的比例吞吐量/区域的比例吞吐量/区域。 Virtex-E技术。

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