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SYSTEMS AND METHODS FOR COMPUTER GENERATED RECOMMENDATIONS WITH IMPROVED ACCURACY AND RELEVANCE

机译:计算机产生的系统和方法,提出了提高准确性和相关性的建议

摘要

The disclosed embodiments relate to a computer implemented recommender system/method which enables the computer to provide more “emotionally” relevant/connected, and therefore more likely to be successful, recommendations while minimizing dependency on historical data as well susceptibility to bias, e.g. monetary and/or sponsor based. The disclosed embodiments segment a target set of known users into groups based on similar characteristics and then associate each group with one or more unique sets of affinities derived from the social media interactions of a general population having similar affinities. Similarly, a unique set of affinity characteristics is derived, and stored in a data structure, for each of a set of recommendations. The unique sets of affinities associated with the groups are compared with the set of affinity characteristics associated with each recommendations to derive a subset thereof relevant to the users of the particular group.
机译:所公开的实施例涉及一种计算机实现的推荐系统/方法,其使计算机能够提供更多“情绪化”相关/连接的,因此更有可能是成功的推荐,同时最小化对历史数据的依赖性以及偏差的易感性,例如偏差。 基于货币和/或赞助商。 所公开的实施例将目标集合组已知用户组分成基于类似特征,然后将每个组与来自具有类似亲和力的一般群体的社交媒体相互作用的一种或多种类型的亲和力。 类似地,针对一组建议中的每一个导出唯一的亲和特征,并存储在数据结构中。 将与组相关联的独特亲和力集合与与每个建议相关联的关联特征集,以导出与特定组的用户相关的子集。

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