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Dynamic Circuit Specialisation for Key-Based Encryption Algorithms and DNA Alignment

机译:基于密钥的加密算法和DNA比对的动态电路专业化

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Parameterised reconfiguration is a method for dynamic circuit specialization on FPGAs. The main advantage ofthis new concept is the high resource efficiency. Additionally, there is an automated tool flow,TMAP, that converts a hardwaredesign into a more resource-efficient run-time reconfigurable design without a large design effort. We will start by explainingthe core principles behind the dynamic circuit specialization technique. Next, we show the possible gains in encryption applicationsusing an AES encoder. Our AES design shows a 20.6% area gain compared to an unoptimized hardware implementation and a5.3% gain compared to a manually optimized third-party hardware implementation. We also usedTMAPon a Triple-DES and anRC6 implementation, where we achieve a 27.8% and a 72.7% LUT-area gain. In addition, we discuss a run-time reconfigurableDNA aligner. We focus on the optimizations to the dynamic specialization overhead. Our final design is up to 2.80-times moreefficient on cheaper FPGAs than the original DNA aligner when at least one DNA sequence is longer than 758 characters. Mostsequences in DNA alignment are of the order 213.
机译:参数化重新配置是在FPGA上进行动态电路专门化的一种方法。这个新概念的主要优点是资源利用率高。此外,还有一个自动化的工具流程TMAP,可以将硬件设计转换为资源效率更高的运行时可重新配置设计,而无需进行大量设计工作。我们将从解释动态电路专业化技术背后的核心原理开始。接下来,我们展示使用AES编码器的加密应用程序可能获得的收益。与未经优化的硬件实现相比,我们的AES设计显示出20.6%的面积增加,与与手动优化的第三方硬件实现相比,增加了5.3%的面积。我们还将TMAP用于Triple-DES和anRC6实施中,在LUT区域中实现了27.8%和72.7%的增益。此外,我们讨论了运行时可重配置的DNA对齐器。我们专注于动态专业化开销的优化。当至少一个DNA序列长于758个字符时,我们的最终设计在价格更便宜的FPGA上比原始DNA对准器高出2.80倍。 DNA比对中的大多数序列为213。

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