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Hardware Acceleration for Thermodynamic Constrained DNA Code Generation

机译:用于热力学约束DNA代码生成的硬件加速

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Reliable DNA computing requires a large pool of oligonucleotides that do not cross-hybridize. In this paper, we present a transformed algorithm to calculate the maximum weight of the 2-stem common subsequence of two DNA oligonucleotides. The result is the key part of the Gibbs free energy of the DNA cross-hybridized duplexes based on the nearest-neighbor model. The transformed algorithm preserves the physical data locality and hence is suitable for implementation using a systolic array. A novel hybrid architecture that consists of a general purpose microprocessor and a hardware accelerator for accelerating the discovery of DNA under thermodynamic constraints is designed, implemented and tested. Experimental results show that the hardware system provides more than 250X speed-up compared to a software only implementation.
机译:可靠的DNA计算需要大量不会交叉杂交的寡核苷酸。在本文中,我们提出了一种转换算法来计算两个DNA寡核苷酸的2茎共同子序列的最大权重。结果是基于最近邻居模型的DNA交叉杂交双链体的吉布斯自由能的关键部分。转换后的算法保留了物理数据的局部性,因此适合使用脉动阵列来实现。设计,实施和测试了一种新颖的混合体系结构,该体系结构由通用微处理器和硬件加速器组成,用于在热力学约束下加速DNA的发现。实验结果表明,与仅软件实现相比,硬件系统可提供超过250倍的提速。

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