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Design and Implementation of Credit Evaluation System for Healthy Aged Service

机译:健康老年服务信用评估系统的设计与实现

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As the problem of global aging intensifies, the quality of credit for healthy aged service has increasingly received more attention. The traditional evaluation of credit quality of healthy aged service still uses the manual entry way to evaluate the service quality, which cannot well deal with huge data in the evaluation for healthy aged service quality. Therefore, in this paper, a credit quality evaluation system is designed and implemented to predict and evaluate user's credit ratings by a standard operation flow for healthy aged service. In this system, we establish a predictive model to automatically evaluate healthy aged service credit quality by machine learning technique. The credit data is quantified and processed for extracting credit ratings-related features. Machine learning technique is utilized to explore the latent relationship between the credit data and its rating. The credit evaluation model for healthy aged service can be built by supervised learning method for predicting user's credit ratings. The design and implementation of this system provides a reasonable solution for auto-evaluation of credit quality of healthy aged service, which can save more manpower and improve service quality in healthy aged service.
机译:由于全球老龄化的侵略性的问题,健康老年服务的信贷质量越来越受到更多关注。传统的健康老年服务信贷质量评估仍然使用了手动进入方式来评估服务质量,这不能很好地处理对健康老年服务质量评估的巨大数据。因此,在本文中,设计并实施了信用质量评估系统,以通过用于健康老化服务的标准操作流程来预测和评估用户的信用评级。在该系统中,我们建立了一种预测模型,通过机器学习技术自动评估健康的老年服务信用质量。信用数据被量化并处理以提取相关信用评级相关特征。机器学习技术用于探讨信用数据与其评级之间的潜在关系。健康老年服务的信用评估模型可以通过监督学习方法来预测用户的信用评级。该系统的设计和实施为健康老年服务的信用质量提供了合理的解决方案,可以节省更多的人力,提高健康老年服务的服务质量。

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