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Predictive-collaborative model as recovery and validation tool. Case of study: Psychiatric emergency department decision support

机译:预测性协作模型作为恢复和验证工具。研究案例:精神科急诊科决策支持

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There is a frequent situation in data mining where data collected must be used in real time to support decisions and they could present missing or non consistent values. The objective of this proposal consists of the recovery of missing values and verifies the consistency and integrity of the provided, in order to increase the information to support decisions. To address this, a predictive-collaborative model has been designed. It is composed of different predictive models generated by means of a training set and classifier selection algorithm. The combined suggestions of these predictive models are offered to support decisions. As case of study, the psychiatric emergency department at the Doce de Octubre Hospital in Madrid has been considered, where the response time is critical and the data are acquired in a stress situation which affects the quality of data significantly.
机译:数据挖掘中经常出现这样的情况,即必须实时使用收集到的数据来支持决策,并且这些数据可能呈现缺失或不一致的值。该提案的目的在于恢复缺失的值,并验证所提供内容的一致性和完整性,以便增加信息以支持决策。为了解决这个问题,已经设计了一种预测协作模型。它由通过训练集和分类器选择算法生成的不同预测模型组成。提供了这些预测模型的组合建议以支持决策。作为研究案例,已经考虑了马德里Doce de Octubre医院的精神科急诊科,在该科中,响应时间至关重要,并且在压力很大的情况下获取数据会严重影响数据的质量。

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