首页> 外文会议>10th International Conference on Field-Programmable Logic and Applications: The Roadmap to Reconfigurable Computing FPL 2000, 10th, Aug 27-30, 2000, Villach, Austria >From Reconfigurability to Evolution in Construction Systems: Spanning the Electronic, Microfluidic and Biomolecular Domains
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From Reconfigurability to Evolution in Construction Systems: Spanning the Electronic, Microfluidic and Biomolecular Domains

机译:从可重构性到建筑系统的演变:跨越电子,微流体和生物分子领域

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This paper investigates configurability, reconfigurability and evolution of information processing hardware in conventional and unconventional media. Whereas current electronic systems have an advantage in terms of processing speed, they are at a definite disadvantage in terms of plasticity, true hardware reconfiguration and especially reconfiguration and evolution of the hardware construction system itself. Here molecular computers, including the control of chemical reaction synthesis, hold the promise of being able to achieve these properties. In particular, combinatorially complex families of molecules (such as DNA) can direct their own synthesis. The intermediate level of microfluidic systems is also open to reconfiguration and evolution and may play a vital role in linking up the electronic and molecular processing worlds. This paper discusses opportunities for and advantages of reconfiguration across these various levels and the possibility of integrating these technologies. Finally, the threshold level of construction control required for iterative bootstrapping of nanoscale construction is discussed.
机译:本文研究了传统和非传统媒体中信息处理硬件的可配置性,可重新配置性和发展。尽管当前的电子系统在处理速度方面具有优势,但是在可塑性,真正的硬件重新配置以及尤其是硬件构造系统自身的重新配置和发展方面,它们处于绝对的劣势。在这里,分子计算机,包括化学反应合成的控制,都有望实现这些特性。特别是,组合复杂的分子家族(例如DNA)可以指导其自身的合成。微流体系统的中间水平也对重构和进化开放,并可能在连接电子和分子处理领域方面发挥至关重要的作用。本文讨论了跨这些不同级别进行重新配置的机会和优势,以及集成这些技术的可能性。最后,讨论了纳米级构造的迭代自举所需的构造控制的阈值水平。

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