Arquitectura de Consolidación de la Información para Seguros de la Salud Mediante Big Data

Translated title of the contribution: Information Consolidation Architecture for Health Insurance Using Big Data

Joe Frand Llerena Izquierdo, Jose Alberto Zerega Prado

Research output: Contribution to journalArticle

Abstract

The identification of data that is in various sources of information and its consolidation to deliver it as useful is achieved with Big Data. The overall objective of this work is to develop an information consolidation architecture design for health insurance using Big Data. For this research proposal, the analytical empirical method is used, of a quasi-experimental type with a quantitative approach, through the analysis of relevant references and specification of the architecture components. The results of this research allow categorizing different computational architectures for health insurance through a review of relevant literature, developing an architectural model of a computational system for an Ecuadorian health insurance company oriented to the consolidation of information, and evaluating the study methodology used to establish feasible factors of the model. The contribution of this work allows determining the applicability of the model to national or foreign health insurance companies by contrasting feasible factors in a specific company of the environment. It is concluded that the different sources of information or types of data used in the field of health insurance allow to know several edges of data analysis through a Big Data architecture, in addition to obtaining indicators to improve decision making; 73% of the established factors are viable in an Ecuadorian health insurance company.
Translated title of the contributionInformation Consolidation Architecture for Health Insurance Using Big Data
Original languageSpanish (Ecuador)
Pages (from-to)18-31
Number of pages14
JournalMemoria Investigaciones en Ingeniería
Volume1
Issue number1
DOIs
StatePublished - 20 Dec 2022

Keywords

  • Big data applications
  • Health and safety
  • Information architecture

CACES Knowledge Areas

  • 116A Computer Science

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