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PINS: a perturbation clustering approach for data integration and disease subtyping

机译:PINS:一种用于数据集成和疾病分型的扰动聚类方法

摘要

Disease subtyping is accomplished by a computer-implemented algorithm that manipulates a first genetic dataset to construct a set of first connectivity matrices. To this set of matrices Gaussian noise is introduced to generate a perturbed dataset. The computer-implemented algorithm assesses which of the set of first connectivity matrices was least affected by introduction of noise and that matric is used to define the optimal clustering. Once the optimal clustering is determined, computer-implemented supervised classification is performed to determine, for a particular patient, with which disease subtype cluster that person's genetic data most closely aligns. Armed with this knowledge, the treatment regimen is specified with much higher likelihood of success.
机译:疾病分型通过计算机执行的算法完成,该算法操纵第一遗传数据集以构建一组第一连通性矩阵。对这组矩阵引入了高斯噪声,以生成一个扰动的数据集。计算机实现的算法评估第一组连接矩阵中的哪一个受噪声引入的影响最小,并且该矩阵用于定义最佳聚类。一旦确定了最佳聚类,就将执行计算机执行的监督分类,以针对特定患者确定该人的遗传数据与哪个疾病亚型聚类最接近。有了这些知识,就可以以更高的成功率指定治疗方案。

著录项

  • 公开/公告号US10529451B2

    专利类型

  • 公开/公告日2020-01-07

    原文格式PDF

  • 申请/专利权人 WAYNE STATE UNIVERSITY;

    申请/专利号US201615068048

  • 发明设计人 SORIN DRAGHICI;TIN CHI NGUYEN;

    申请日2016-03-11

  • 分类号G16H50/20;G06K9/62;G16H40/63;G06F19;

  • 国家 US

  • 入库时间 2022-08-21 11:19:00

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