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Method and system for machine learning based item matching by considering user mindset

机译:考虑用户心态的基于机器学习的项目匹配方法与系统

摘要

Existing approaches for item matching that are used for retail strategies are based on similarity matching, however, do not consider user mindset, magnitude present across quantitative AVs and segment specific customer interest on certain qualitative AVs. Embodiments of the present disclosure provide a method and system for Machine Learning (ML) based item matching by considering user mindset, magnitude present across quantitative AVs and segment specific customer interest on certain qualitative AV. The item matching approach disclosed, performs data analytics at the AV level to identify possible close matching items from the list of available partially matching as well as non-matching items. The method disclosed primarily performs Attribute (AT) enrichment by quantizing all the qualitative AVs to be analyzed. Weights are assigned to all the quantized AVs based on a Demand Transfer (DT) value provided by a Customer Decision Tree (CDT), wherein the CDT captures the user mindset.
机译:用于零售策略的项目匹配的现有方法基于相似性匹配,然而,不考虑用户心态、横跨定量AVS的幅度和特定质量AVS上的特定客户兴趣。本发明的实施例提供了一种用于基于机器学习(ML)的项目匹配的方法和系统,该方法和系统通过考虑用户心态、定量AV中存在的量值以及特定于细分市场的客户对某些定性AV的兴趣来进行匹配。公开的项目匹配方法在AV级别执行数据分析,以从可用的部分匹配和非匹配项目列表中识别可能的紧密匹配项目。所公开的方法主要通过量化所有待分析的定性AV来执行属性(AT)富集。根据客户决策树(CDT)提供的需求转移(DT)值,将权重分配给所有量化AV,其中CDT捕获用户心态。

著录项

  • 公开/公告号US11282093B2

    专利类型

  • 公开/公告日2022-03-22

    原文格式PDF

  • 申请/专利权人 TATA CONSULTANCY SERVICES LIMITED;

    申请/专利号US201916707748

  • 发明设计人 JEISOBERS THIRUNAVUKKARASU;

    申请日2019-12-09

  • 分类号G06Q10;G06Q30/02;G06N20;G06N7;G06N5;

  • 国家 US

  • 入库时间 2022-08-25 00:01:14

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