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Automatic classification of communication logs into implementation stages via text analysis

机译:通过文本分析将通信日志自动分类到实施阶段

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摘要

BackgroundTo improve the quality, quantity, and speed of implementation, careful monitoring of the implementation process is required. However, some health organizations have such limited capacity to collect, organize, and synthesize information relevant to its decision to implement an evidence-based program, the preparation steps necessary for successful program adoption, the fidelity of program delivery, and the sustainment of this program over time. When a large health system implements an evidence-based program across multiple sites, a trained intermediary or broker may provide such monitoring and feedback, but this task is labor intensive and not easily scaled up for large numbers of sites.We present a novel approach to producing an automated system of monitoring implementation stage entrances and exits based on a computational analysis of communication log notes generated by implementation brokers. Potentially discriminating keywords are identified using the definitions of the stages and experts’ coding of a portion of the log notes. A machine learning algorithm produces a decision rule to classify remaining, unclassified log notes.
机译:背景技术为了提高实施的质量,数量和速度,需要仔细监控实施过程。但是,某些卫生组织的能力有限,无法收集,整理和综合与其实施基于证据的计划的决定,成功通过计划所必需的准备步骤,计划执行的忠诚度以及计划的维持有关的信息。随着时间的推移。当大型卫生系统在多个站点上实施基于证据的计划时,受过训练的中介或经纪人可能会提供此类监视和反馈,但此任务是劳动密集型的,并且不容易扩展到大量站点。基于对实施代理生成的通信日志记录的计算分析,生成一个监视实施阶段入口和出口的自动化系统。使用阶段的定义和专家对部分日志记录的编码来识别可能有区别的关键字。机器学习算法会生成决策规则,以对其余未分类的日志记录进行分类。

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