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首页> 外文期刊>Knowledge and Information Systems >Finding best evidence for evidence-based best practice recommendations in health care: the initial decision support system design
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Finding best evidence for evidence-based best practice recommendations in health care: the initial decision support system design

机译:为卫生保健中基于证据的最佳实践建议寻找最佳证据:初始决策支持系统设计

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摘要

A major problem for Canadian health organizations is finding best evidence for evidence-based best practice recommendations. Medications are not always effectively used and misuse may harm patients. Drugs are the fastest-growing element of Canadian health care spending, second only to hospital spending. Three hundred million prescriptions are filled annually. Prescription drugs accounted for 5.8% of total health care spending in 1980 and close to 18% today. A primary long-term goal of this research is to develop a decision support system for evidence-based management, quality control and best practice recommendations for medical prescriptions. Our results will improve accessibility and management of information by: (1) building an prototype for adaptive information extraction, text and data mining from (online) documents to find evidence on which to base best practices; and (2) employing multiply sectioned Bayesian networks (MSBNs) to infer a probabilistic interpretation to validate evidence for recommendations; MSBNs provide this structure. Best practices to improve drug-related health outcomes; patients’ quality of life; and cost-effective use of medications by changing knowledge and behavior. This research will support next generation eHealth decision support systems, which routinely find and verify evidence from multiple sources, leading to cost-effective use of drugs, improve patients’ quality of life and optimize drug-related health outcomes.
机译:加拿大卫生组织的一个主要问题是找到基于证据的最佳实践建议的最佳证据。药物并非总是有效使用,滥用可能会伤害患者。毒品是加拿大医疗保健支出增长最快的要素,仅次于医院支出。每年有3亿张处方。处方药在1980年占医疗总支出的5.8%,今天已接近18%。这项研究的主要长期目标是开发决策支持系统,用于循证管理,质量控制和医学处方最佳实践建议。我们的结果将通过以下方法改善信息的可访问性和信息管理:(1)构建用于从(在线)文档中进行自适应信息提取,文本和数据挖掘的原型,以寻找最佳实践的依据; (2)采用多节贝叶斯网络(MSBN)推断概率解释以验证推荐证据; MSBN提供此结构。改善与毒品有关的健康结果的最佳做法;患者的生活质量;通过改变知识和行为来经济有效地使用药物。这项研究将支持下一代eHealth决策支持系统,该系统定期从多个来源查找和验证证据,从而可以经济高效地使用药物,改善患者的生活质量并优化与药物相关的健康结果。

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