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Research on Intelligent Diagnosing Model Based Similarity Distance

机译:基于智能诊断模型的相似距离研究

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In order to help human expert solve the problem of disease diagnosing, we analyze the comparability and relativity between pattern similarity distance and diagnosis as to the solution means, and pioneer the theoretical model of similarity-distance on the basis of certainty factors vectors and fuzzy membership factors vectors, and its corresponding data structure mode. Furthermore, the software hierarchy of model and recognition algorithm are designed. Experimentation statistics demonstrate that compared with the human expert, the novel model could obtain a satisfying accuracy rate of diagnosis over 85%, and reduce a rate of misdiagnosis effectively.
机译:为了帮助人类专家解决疾病诊断问题,我们分析了模式相似度距离和诊断之间的可比性和相对性以及解决方案的诊断,并在确定性因素向量和模糊成员的基础上提出了相似性 - 距离的理论模型因子向量及其相应的数据结构模式。此外,设计了模型和识别算法的软件层次结构。实验统计证明,与人类专家相比,新型模型可以获得满足的诊断率超过85%,并有效降低误诊率。

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