COMBINING MACHINE-LEARNING AND SOCIAL DATA TO GENERATE PERSONALIZED RECOMMENDATIONS

A computing device receives a message including a request for a recommendation. A representation of a hypothetical ideal recommendation to provide in response to the message is determined based on the message content. Data regarding entities that are potential recommendations are retrieved from a da...

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Main Authors ZENG, Bo, PENG, Fuchun, DUMOULIN, Benoit, HAN, Kun
Format Patent
LanguageEnglish
French
German
Published 10.03.2021
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Abstract A computing device receives a message including a request for a recommendation. A representation of a hypothetical ideal recommendation to provide in response to the message is determined based on the message content. Data regarding entities that are potential recommendations are retrieved from a data store, the data regarding each entity including a representation of the entity (e.g., a vector) derived from factual information about the entity and opinions of other users of the entity. Ranking scores are determined for at least a subset of the entities based on the difference between the entity representations and the representation of the hypothetical ideal recommendation. An entity to recommend is selected based on the ranking scores and a reply to the message is sent that identifies the selected entity.
AbstractList A computing device receives a message including a request for a recommendation. A representation of a hypothetical ideal recommendation to provide in response to the message is determined based on the message content. Data regarding entities that are potential recommendations are retrieved from a data store, the data regarding each entity including a representation of the entity (e.g., a vector) derived from factual information about the entity and opinions of other users of the entity. Ranking scores are determined for at least a subset of the entities based on the difference between the entity representations and the representation of the hypothetical ideal recommendation. An entity to recommend is selected based on the ranking scores and a reply to the message is sent that identifies the selected entity.
Author HAN, Kun
DUMOULIN, Benoit
ZENG, Bo
PENG, Fuchun
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DocumentTitleAlternate COMBINAISON DE DONNÉES D'APPRENTISSAGE MACHINE ET DE DONNÉES SOCIALES POUR GÉNÉRER DES RECOMMANDATIONS PERSONNALISÉES
KOMBINIEREN VON MASCHINENLERNEN UND SOZIALEN DATEN ZUR ERZEUGUNG VON PERSONALISIERTEN EMPFEHLUNGEN
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Snippet A computing device receives a message including a request for a recommendation. A representation of a hypothetical ideal recommendation to provide in response...
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SubjectTerms CALCULATING
COMPUTING
COUNTING
DATA PROCESSING SYSTEMS OR METHODS, SPECIALLY ADAPTED FORADMINISTRATIVE, COMMERCIAL, FINANCIAL, MANAGERIAL, SUPERVISORYOR FORECASTING PURPOSES
PHYSICS
SYSTEMS OR METHODS SPECIALLY ADAPTED FOR ADMINISTRATIVE,COMMERCIAL, FINANCIAL, MANAGERIAL, SUPERVISORY OR FORECASTINGPURPOSES, NOT OTHERWISE PROVIDED FOR
Title COMBINING MACHINE-LEARNING AND SOCIAL DATA TO GENERATE PERSONALIZED RECOMMENDATIONS
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