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METHODS FOR FLOW SPACE QUALITY SCORE PREDICTION BY NEURAL NETWORKS

机译:神经网络的流空间质量得分预测方法

摘要

An artificial neural network is applied to a plurality of flow predictor features to generate a flow space probability of error for a base call. A base quality value for the base call is determined based on the flow space probability of error. The base call and flow predictor features are based on the flow space signal measurements generated in response to the nucleotide flow to the reaction confinement region. For an array of reaction confinement regions, a plurality of parallel neural networks is applied to produce a probability of error for each reaction confinement region. A given neural network of the parallel neural networks is applied to the plurality of flow predictor features corresponding to a given reaction confinement region in the array to provide the flow space probability of error for the given reaction confinement region.
机译:人工神经网络被应用于多个流量预测器特征,以生成针对基本调用的错误的流量空间概率。基于错误的流空间概率确定基本调用的基本质量值。碱基检出和流预测子特征是基于响应于核苷酸流向反应限制区而产生的流空间信号测量结果。对于反应限制区域的阵列,应用多个并行神经网络为每个反应限制区域产生错误的概率。将平行神经网络的给定神经网络应用于与阵列中给定反应限制区域相对应的多个流动预测器特征,以提供给定反应限制区域的流动空间误差概率。

著录项

  • 公开/公告号WO2019140146A1

    专利类型

  • 公开/公告日2019-07-18

    原文格式PDF

  • 申请/专利权人 LIFE TECHNOLOGIES CORPORATION;

    申请/专利号WO2019US13127

  • 发明设计人 WANG CHAO;INGERMAN EUGENE;

    申请日2019-01-11

  • 分类号G16B30;C12Q1/6869;

  • 国家 WO

  • 入库时间 2022-08-21 11:53:55

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