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PARALLELIZATION TECHNIQUES FOR VARIABLE SELECTION AND PREDICTIVE MODELS GENERATION AND ITS APPLICATIONS

机译:变量选择和预测模型生成的并行化技术及其应用

摘要

Predictive regression models are widely used in different domains such as life sciences, healthcare, pharma etc. and variable selection, is employed as one of the key steps. Variable selection can be performed using random or exhaustive search techniques. Unlike a random approach, the exhaustive search approach, evaluates each possible combination and consequently, is a computationally hard problem, thus limiting its applications. The embodiments of the present disclosure perform i) parallelization and optimization of critical time consuming steps of the technique, Variable Selection and Modeling based on the Prediction (VSMP) ii) its applications for the generation of the best possible predictive models using input dataset (e.g., Blood Brain Barrier Permeation data) and iii) business impact of predictive models that are requires the selection of larger number of variables.
机译:预测回归模型广泛应用于生命科学,医疗保健,制药等不同领域,变量选择是关键步骤之一。可以使用随机或穷举搜索技术来执行变量选择。与随机方法不同,穷举搜索方法会评估每种可能的组合,因此是一个计算难题,因此限制了其应用。本公开的实施例执行i)该技术的关键耗时步骤的并行化和优化,基于预测的变量选择和建模(VSMP); ii)其用于使用输入数据集(例如,最佳预测模型)的生成的应用。 ,血脑屏障渗透数据)和iii)预测模型的业务影响,这需要选择更多数量的变量。

著录项

  • 公开/公告号IN201621020879A

    专利类型

  • 公开/公告日2017-12-22

    原文格式PDF

  • 申请/专利权人

    申请/专利号IN201621020879

  • 发明设计人 RAMAMURTHI NARAYANAN;KONETI GEERVANI;

    申请日2016-06-17

  • 分类号G06F19/00;G06F17/00;

  • 国家 IN

  • 入库时间 2022-08-21 12:52:15

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