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METHOD AND SYSTEM FOR UNSUPERVISED MULTI-MODAL SET COMPLETION AND RECOMMENDATION

机译:无监督多模态设置完成和推荐方法和系统

摘要

The online shopping is highly based on human perception on products and the human perception on products depends on semantic features of products. Conventional methods provides product recommendation based on historical data and are supervised. The present disclosure receives a set of multi-modal data. A plurality of features are extracted from the set of data at a plurality of resolution levels and the plurality of features are arranged as parallel corpus based on a category associated with each data from the set of data. Further, an abstract interaction vector is computed for each element of the set of data using the parallel corpus. Further, the set of recommendations are identified by comparing the abstract interaction vector associated with the set of data with an abstract interaction vector associated with each of a plurality of items stored in the database by utilizing a similarity metric.
机译:在线购物高度基于人类对产品的看法,对产品的人类看法取决于产品的语义特征。 传统方法提供基于历史数据的产品推荐,并受到监督。 本公开接收一组多模态数据。 从多个分辨率级别的数据集中从一组数据中提取多个特征,并且基于与来自一组数据相关联的类别的类别被布置为并行语料库。 此外,使用并行语料库计算抽象交互向量。 此外,通过将与存储器集合的抽象交互向量进行比较通过利用相似度量来比较与与数据库中的多个项目相关联的抽象交互向量相关联的抽象交互向量来识别该组建议。

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