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Novel uses for machine learning and other computational methods for the design and interpretation of genetic microarrays.

机译:用于机器学习和其他计算方法的新颖用途,用于设计和解释遗传微阵列。

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摘要

It is clear that high-throughput techniques, such as rapid DNA sequencing and gene chips are changing the science of genetics. Hypothesis-driven science is now strongly complemented by these newer data-driven approaches. Over the course of the past decade, DNA microarrays, also known as gene chips, have come into prominence for genetic-level analysis throughout the life sciences. Using these microarrays, a scientist is able to perform hundreds of thousands of experiments on the surface of a single one-inch-by-one-inch wafer in the space of a single afternoon, generating more data than an army of researchers could have a generation ago. This potential flood of data brings many informatic challenges in both analysis and design. It is well understood that computer science will play a crucial role in their development and application. This thesis presents novel applications of machine learning and other computational methods to central tasks in high-throughput biology. These tasks include gene-chip design, detection of genomic variation, and the interpretation of gene-expression patterns.
机译:显然,诸如快速DNA测序和基因芯片之类的高通量技术正在改变遗传学。这些新的数据驱动方法现在大大增强了假设驱动的科学。在过去的十年中,DNA微阵列(也称为基因芯片)在整个生命科学领域的基因水平分析中占据了重要地位。使用这些微阵列,科学家可以在一个下午的时间里在单个1英寸乘1英寸晶圆的表面上进行成千上万的实验,所产生的数据超过了一大批研究人员能够获得的数据。一代以前。潜在的数据泛滥在分析和设计中都带来了许多信息方面的挑战。众所周知,计算机科学将在其开发和应用中发挥关键作用。本文提出了机器学习和其他计算方法在高通量生物学中的核心任务的新应用。这些任务包括基因芯片设计,基因组变异检测以及基因表达模式的解释。

著录项

  • 作者

    Molla, Michael N.;

  • 作者单位

    The University of Wisconsin - Madison.;

  • 授予单位 The University of Wisconsin - Madison.;
  • 学科 Biology Bioinformatics.
  • 学位 Ph.D.
  • 年度 2007
  • 页码 120 p.
  • 总页数 120
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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