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CASESIAN : a knowledge-based system using statistical and experiential perspectives for improving the knowledge sharing in the medical prescription process

机译:CASESIAN:基于知识的系统,使用统计和经验观点来改进医疗处方过程中的知识共享

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摘要

Knowledge sharing is crucial for better patient care in the healthcare industry, but it is challenging for physicians to exchange their clinical insights and practice experiences, particularly with regard to the issuing of prescriptions for medicine. The aim of our study is to facilitate knowledge sharing and information exchange in this area by means of a knowledge-based system. We propose a knowledge-based system, CASESIAN, to automatically model each physician’s prescription experience. This is done by collecting as many as possible instances of when the physician has issued a prescription. These occasions will be analyzed from a statistical perspective to form a reciprocal interactive knowledge sharing process for the issuing of medical prescriptions which we will call the prescription process. With the help of the prescription data in medical organizations, the knowledge-based system employs the Bayesian Theorem to correlate the experience of peers in order to evaluate individual prescription knowledge as retrieved through the case-based reasoning technique. In addition, a system prototype was implemented in a Hong Kong medical organization to evaluate the feasibility of such an approach. Our evaluation indicates that there is a significant improvement in knowledge sharing after the adoption of the system. CASESIAN obtains a higher rating in both recall and precision measurement when compared to traditional knowledge-based system. In particular, its information retrieval is much stronger than the baseline in around 40%. Furthermore, regarding the result of the interviews, physicians agree that the system can improve the storing and sharing of medical prescription knowledge.
机译:知识共享对于医疗保健行业中更好的患者护理至关重要,但对医生来说,交流他们的临床见解和实践经验(尤其是在开具医疗处方方面)具有挑战性。我们研究的目的是通过基于知识的系统来促进该领域的知识共享和信息交换。我们提出了一种基于知识的系统CASESIAN,以自动模拟每位医生的处方经验。这是通过收集医生开出处方时的尽可能多的实例来完成的。这些场合将从统计学的角度进行分析,以形成用于发行医疗处方的相互互动的知识共享过程,我们将其称为处方过程。借助医疗机构中的处方数据,基于知识的系统采用贝叶斯定理来关联同龄人的经验,以评估通过基于案例的推理技术检索到的个人处方知识。此外,在香港的一家医疗机构中实施了系统原型,以评估这种方法的可行性。我们的评估表明,采用该系统后,知识共享有了显着改善。与传统的基于知识的系统相比,CASESIAN在召回率和精确度测量方面均获得更高的评价。特别是,其信息检索比基线要强大得多,约40%。此外,关于访问的结果,医生同意该系统可以改善医疗处方知识的存储和共享。

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