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The knowledge-based signal analysis for a heart sound information system

机译:基于知识的心声信息系统信号分析

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A heart sound information system (HSIS) has been developed, and a knowledge based signal analysis was employed in this study. We tried to combine knowledge engineering methods with traditional signal analysis methods for heart sounds to identify the heart sound components, classify the heart sounds, and make clinical diagnosis. Production rules were used to represent the knowledge in this system. In this system, we used backward-chaining when identifying heart sound components and used forward-chaining when making diagnosis. Metaknowledge was used to control the calling sequence of rules and to specify the problem solving strategies to enhance the inference effectiveness. To test the validity of knowledge based heart sound signal analysis, we selected 50 abnormal heart sound samples. The sources of these samples include those we collected from patients, those from existing heart sound tapes and those from other hospitals. Compared with the judgement of cardiologist, the coincidence rate was 86%.
机译:已经开发了一种心脏声音信息系统(HSIS),本研究采用了基于知识的信号分析。我们试图将知识工程方法与传统的信号分析方法结合起来的心脏声音,以识别心脏声音组件,分类心脏声音,并进行临床诊断。生产规则用于代表该系统中的知识。在该系统中,我们在识别心脏声音组件时向后链接和在制作诊断时使用前后链。 Metaknowledge用于控制调用规则序列,并指定解决策略以提高推理效果。为了测试知识的心声信号分析的有效性,我们选择了50个异常的心声样本。这些样品的来源包括我们从患者收集的那些,那些来自现有心脏声音磁带和其他医院的人。与心脏病专家的判断相比,巧合率为86%。

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