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Constrained mixture estimation for analysis and robust classification of clinical time series

机译:约束混合物估计,用于临床时间序列的分析和可靠分类

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摘要

Motivation: Personalized medicine based on molecular aspects of diseases, such as gene expression profiling, has become increasingly popular. However, one faces multiple challenges when analyzing clinical gene expression data; most of the well-known theoretical issues such as high dimension of feature spaces versus few examples, noise and missing data apply. Special care is needed when designing classification procedures that support personalized diagnosis and choice of treatment. Here, we particularly focus on classification of interferon-β (IFNβ) treatment response in Multiple Sclerosis (MS) patients which has attracted substantial attention in the recent past. Half of the patients remain unaffected by IFNβ treatment, which is still the standard. For them the treatment should be timely ceased to mitigate the side effects.
机译:动机:基于疾病分子方面的个性化医学,例如基因表达谱分析,已经越来越流行。然而,在分析临床基因表达数据时,人们面临着多重挑战。大多数众所周知的理论问题都适用,例如特征空间的高维与少量示例,噪声和数据丢失。在设计支持个性化诊断和治疗选择的分类程序时,需要特别注意。在这里,我们特别关注多发性硬化症(MS)患者中干扰素-β(IFNβ)治疗反应的分类,这在最近已引起了广泛关注。一半患者仍未受到IFNβ治疗的影响,这仍然是标准治疗。对于他们来说,应该及时停止治疗以减轻副作用。

著录项

  • 来源
    《Bioinformatics》 |2009年第12期|p.6-14|共9页
  • 作者单位

    1Center of Informatics, Federal University of Pernambuco, Recife, Brazil, 2School of Computing Science, Simon Fraser University, Burnaby, BC, Canada and 3Department of Computational Molecular Biology, Max Planck Institute for Molecular Genetics, Berlin, Germany;

  • 收录信息 美国《科学引文索引》(SCI);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
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