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The methodology of dynamic uncertain causality graph for intelligent diagnosis of vertigo

机译:动态不确定因果图的眩晕智能诊断方法

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摘要

Vertigo is a common complaint with many potential causes involving otology, neurology and general medicine, and it is fairly difficult to distinguish the vertiginous disorders from each other accurately even for experienced physicians. Based on comprehensive investigations to relevant characteristics of vertigo, we propose a diagnostic modeling and reasoning methodology using Dynamic Uncertain Causality Graph. The symptoms, signs, findings of examinations, medical histories, etiology and pathogenesis, and so on, are incorporated in the diagnostic model. A modularized modeling scheme is presented to reduce the difficulty in model construction, providing multiple perspectives and arbitrary granularity for disease causality representations. We resort to the "chaining" inference algorithm and weighted logic operation mechanism, which guarantee the exactness and efficiency of diagnostic reasoning under situations of incomplete and uncertain information. Moreover, the causal insights into underlying interactions among diseases and symptoms intuitively demonstrate the reasoning process in a graphical manner. These solutions make the conclusions and advices more explicable and convincing, further increasing the objectivity of clinical decision-making. Verification experiments and empirical evaluations are performed with clinical vertigo cases. The results reveal that, even with incomplete observations, this methodology achieves encouraging diagnostic accuracy and effectiveness. This study provides a promising assistance tool for physicians in diagnosis of vertigo.
机译:眩晕是一种常见的主诉,有许多潜在的原因,涉及耳科,神经病学和普通医学,即使对于有经验的医生,也很难准确地区分彼此的Vertiggo疾病。在对眩晕症相关特征进行全面调查的基础上,我们提出了一种使用动态不确定因果图的诊断建模和推理方法。症状,体征,检查结果,病史,病因和发病机理等已纳入诊断模型。提出了一种模块化的建模方案,以减少模型构建的难度,为疾病因果关系表示提供多种视角和任意粒度。我们采用“链式”推理算法和加权逻辑运算机制,以保证在信息不完整和不确定的情况下诊断推理的准确性和效率。此外,对疾病和症状之间潜在相互作用的因果见解以图形方式直观地说明了推理过程。这些解决方案使结论和建议更加明确和令人信服,从而进一步提高了临床决策的客观性。临床眩晕病例进行了验证实验和经验评估。结果表明,即使观察结果不完整,该方法也可以实现令人鼓舞的诊断准确性和有效性。这项研究为医生诊断眩晕提供了有希望的辅助工具。

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