NER: Designing Reliable Computers Using Molecular Nanotechnology
NER: Designing Reliable Computers Using Molecular Nanotechnology
批准号:
0210197
负责人:
David Lilja
金额:
$7.0万
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2002
资助国家:
美国
项目状态:
已结题
起止时间:
2002-07-01 至 2004-06-30
中文摘要
大卫LiljaU明尼苏达州0210197最近的工作在物理,化学和材料科学已经产生了纳米尺度的结构的外来材料使用复杂的制造技术。 然而,在计算机工程领域,很少有人研究如何用这些新器件构建完整的计算机系统。这个探索性项目的目标是开始开发用分子纳米器件构建有限状态机(FSM)的新技术。 FSM是任何数字计算系统的基本构建块之一。 在这个项目中,我们引入NanoBoxes作为一种可能的抽象,用于构建可靠的有限状态机用于分子计算机系统。分子纳米器件的可靠性和错误特性与传统的硅基CMOS晶体管的相应特性有很大的不同。 这些纳米器件的特点提出了新的挑战,计算机设计师将需要一个全新的方法来设计有限状态机。 我们开发的技术最终可以用来用分子纳米器件构建整个计算机系统。这是一个高风险/高回报的项目。 风险在于,我们需要从大量尚在开发中的设备中开发出设计计算机的新方法。通过观察新开发的分子设备的共同趋势,我们对它们的弱驱动能力和不稳定性做出了假设。 虽然我们希望我们可以调整和扩展传统的空间,时间和信息冗余技术的容错到这个新的领域的分子计算机,新的将是必要的,以开发适当的解决方案。这个项目是高回报,但是,因为通过进行计算机体系结构的研究与纳米器件本身的研究,我们将简化开发过程,以便能够更快地拥有功能齐全的分子计算机,而不是等待纳米器件研究的巩固。 此外,我们在为分子纳米器件定制技术的同时,我们的技术也将适用于量子纳米器件和纳米级传统CMOS器件的错误检测和校正,这些器件随着晶体管尺寸的缩小而变得越来越容易出错。 它将启动博士学位论文的研究。电子和计算机工程专业的学生将他们的研究集中在这个新领域。 我们还希望能有几个多发性硬化症患者。学生在这项工作,并可能提供研究机会,本科生通过现有的实习计划在明尼苏达大学。
英文摘要
David LiljaU Minnesota0210197Recent work in physics, chemistry, and materials science hasproduced nanometer-scale structures out of exotic materials usingsophisticated fabrication techniques. However, very little work hasbeen conducted in computer engineering to investigate how to buildfull-scale computer systems out of these new devices.The goal of this exploratory project is to begin to develop newtechniques for constructing finite state machines (FSMs) out ofmolecular nanodevices. FSMs are one of the fundamental buildingblocks of any digital computing system. In this project, weintroduce NanoBoxes as a possible abstraction for constructingreliable finite state machines for use in molecular computersystems.The reliability and error characteristics of molecular nanodevicesare substantially different from the corresponding characteristicsof traditional silicon-based CMOS transistors. These nanodevicecharacteristics present new challenges to computer designers whichwill require an entirely new approach for designing finite statemachines. The techniques we develop eventually could be used tobuild entire computer systems out of molecular nanodevices.This is a high-risk/high-reward project. The risk is that we needto develop new approaches for designing computers out of a largecollection of devices which are still under development themselves.By observing common trends in newly developed molecular devices, wemake assumptions about their weak drive capabilities and theirunstable nature. While we expect that we can adapt and extendtraditional space, time, and information redundancy techniques forfault-tolerance into this new domain of molecular computers, newideas will be necessary to develop appropriate solutions.This project is high-reward, however, since by conducting computerarchitecture research in tandem with research on the nanodevicesthemselves, we will be streamlining the development process to beable to have fully-functional molecular computers more quickly thanif we wait for the nanodevice research to solidify. Furthermore,while we are tailoring our techniques for molecular nanodevices, ourtechniques also will be applicable to error detection and correctionin quantum nanodevices and in nanometer-scale conventional CMOSdevices, which are becoming more fault-prone as transistor sizesshrink.This project will make substantial contributions to educational andhuman resource development. It will initiate the dissertationresearch of a Ph.D. student in electrical and computer engineeringto focus their research in this new area. We also expect to involvea few M.S. students in this work and possibly provide researchopportunities for undergraduate students through existing internshipprograms at the University of Minnesota.
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会议论文
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依托单位:
海外基金