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Threshold Logic Properties and Methods: Applications to Post-CMOS Design Automation and Gene Regulation Modeling.

机译:阈值逻辑属性和方法:在CMOS后设计自动化和基因调控建模中的应用。

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摘要

Threshold logic has been studied by at least two independent group of researchers. One group of researchers studied threshold logic with the intention of building threshold logic circuits. The earliest research to this end was done in the 1960's. The major work at that time focused on studying mathematical properties of threshold logic as no efficient circuit implementations of threshold logic were available. Recently many post-CMOS (Complimentary Metal Oxide Semiconductor) technologies that implement threshold logic have been proposed along with efficient CMOS implementations. This has renewed the effort to develop efficient threshold logic design automation techniques. This work contributes to this ongoing effort. Another group studying threshold logic did so, because the building block of neural networks---the Perceptron, is identical to the threshold element implementing a threshold function. Neural networks are used for various purposes as data classifiers. This work contributes tangentially to this field by proposing new methods and techniques to study and analyze functions implemented by a Perceptron.;After completion of the Human Genome Project, it has become evident that most biological phenomenon is not caused by the action of single genes, but due to the complex interaction involving a system of genes. In recent times, the 'systems approach' for the study of gene systems is gaining popularity. Many different theories from mathematics and computer science has been used for this purpose. Among the systems approaches, the Boolean logic gene model has emerged as the current most popular discrete gene model. This work proposes a new gene model based on threshold logic functions (which are a subset of Boolean logic functions). The biological relevance and utility of this model is argued illustrated by using it to model different in-vivo as well as in-silico gene systems.
机译:至少有两个独立的研究人员对阈值逻辑进行了研究。一组研究人员研究了阈值逻辑,目的是构建阈值逻辑电路。为此,最早的研究是在1960年代。当时的主要工作集中在研究阈值逻辑的数学特性,因为没有可用的阈值逻辑有效电路实现。最近,已经提出了许多实现阈值逻辑的后CMOS(互补金属氧化物半导体)技术以及有效的CMOS实现。这重新开始了开发高效阈值逻辑设计自动化技术的工作。这项工作为这项正在进行的工作做出了贡献。另一个研究阈值逻辑的小组这样做了,因为神经网络的构建模块Perceptron与实现阈值功能的阈值元素相同。神经网络出于各种目的被用作数据分类器。这项工作提出了新的方法和技术,以研究和分析感知器实现的功能,为这一领域做出了切身的贡献。;人类基因组计划完成后,很明显,大多数生物学现象不是由单个基因的作用引起的,但由于涉及基因系统的复杂相互作用。近年来,用于基因系统研究的“系统方法”越来越受欢迎。为此目的使用了许多与数学和计算机科学不同的理论。在系统方法中,布尔逻辑基因模型已成为当前最流行的离散基因模型。这项工作提出了一个基于阈值逻辑函数(布尔逻辑函数的子集)的新基因模型。该模型的生物学相关性和实用性通过使用其对不同的体内和计算机内基因系统建模来说明。

著录项

  • 作者

    Linge Gowda, Tejaswi.;

  • 作者单位

    Arizona State University.;

  • 授予单位 Arizona State University.;
  • 学科 Applied Mathematics.;Computer Science.;Biology Bioinformatics.;Mathematics.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 209 p.
  • 总页数 209
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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