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HAIKU: A Semantic Framework for Surveillance of Healthcare-Associated Infections

机译:Haiku:监测医疗保健相关感染的语义框架

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Healthcare-Associated Infections (HAI) impose a substantial health and financial burden. Surveillance for HAI is essential to develop and evaluate prevention and control efforts. The traditional approaches to HAI surveillance are often limited in scope and efficiency by the need to manually obtain and integrate data from disparate paper charts and information systems. The considerable effort required for discovery and integration of relevant data from multiple sources limits the current effectiveness of HAI surveillance. Knowledge-based systems can address this problem of contextualizing data to support integration and reasoning. In order to facilitate knowledge-based decision making in this area, availability of a reference vocabulary is crucial. The existing terminologies in this domain still suffer from inconsistencies and confusion in different medical/clinical practices, and there is a need for their further improvement and clarification. To develop a common understanding of the infection control domain and to achieve data interoperability in the area of hospital-acquired infections, we present the HAI Ontology (HAIO) to improve knowledge processing in pervasive healthcare environments, as part of the HAIKU (Hospital Acquired Infections - Knowledge in Use) system. The HAIKU framework assists physicians and infection control practitioners by providing recommendations regarding case detection, risk stratification and identification of diagnostic factors.
机译:医疗保健相关感染(海)征收了大量的健康和金融负担。海海监督对于开发和评估预防和控制努力至关重要。由于需要手动获取和整合来自不同纸图和信息系统的数据,传统的海监督方法往往受限于范围和效率。从多个来源发现和集成相关数据所需的相当大的努力限制了海监测的当前有效性。基于知识的系统可以解决上下文化数据以支持集成和推理的问题。为了促进基于知识的决策,参考词汇的可用性至关重要。该领域的现有术语仍然遭受不同的医疗/临床实践的不一致和混乱,需要进一步改善和澄清。为了开发对感染控制领域的共同理解并在医院收购的感染区域实现数据互操作性,我们介绍了海底本体(HAIO),以改善普及医疗环境中的知识处理,作为Haku(医院获得的感染 - 使用知识)系统。 Haiku框架通过提供关于案例检测,风险分层和诊断因素的鉴定提供建议,协助医生和感染控制从业者。

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