Machine learning systems for automated database element processing and prediction output generation

A computer system includes memory hardware configured to store a machine learning model, historical feature vector inputs, and computer-executable instructions, and processor hardware configured to execute the instructions. The instructions include training a first machine learning model with the hi...

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Bibliographische Detailangaben
Hauptverfasser: Lee, Yee Wah Eva, Maharana, Sourav, Bhosrekar, Yogendra D, Shaw, Margaret A, Chudzik, Robert E, Swain, Stephanie C, Wong, Man Hin, Lam, Man Tat, Fogarty, David J
Format: Patent
Sprache:eng
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Zusammenfassung:A computer system includes memory hardware configured to store a machine learning model, historical feature vector inputs, and computer-executable instructions, and processor hardware configured to execute the instructions. The instructions include training a first machine learning model with the historical feature vector inputs to generate a title score output, and training a second machine learning model with the historical feature vector inputs to generate a background score output. For each entity in a set, the instructions include processing a title feature vector input with the first machine learning model, and processing a background feature vector with a second machine learning model, to generate a tittle score output and a background score output each indicative of a likelihood that the entity is a decision entity. The instructions include automatically distributing structured campaign data to the entity based on the title score output and the background score output.