提出融合多种距离的评分函数,提升肺癌疼痛评估准确性
Combined-distance-based score function of cognitive fuzzy sets and its application in lung cancer pain evaluation
- 构建结合改进闵可夫斯基与豪斯多夫距离的复合距离
- 在肺癌疼痛评估中表现更稳定且信息利用更充分
- 适合医疗决策中需兼顾抗干扰与信息完整性的场景
在决策分析中,认知模糊集(CFS)能有效表达专家对备选方案的复杂评价。然而,现有研究中关于CFS距离的探讨较少,传统闵可夫斯基距离忽略了CFS的犹豫度,可能导致误差。为此,本文提出改进的认知模糊闵可夫斯基(CF-IM)距离和认知模糊豪斯多夫(CF-H)距离。研究表明,CF-H距离抗扰动能力更强,而CF-IM距离信息利用率更高。为平衡二者,提出线性组合的复合距离(CF-C)。基于此,构建了基于复合距离的认知模糊评分函数,并应用于肺癌疼痛评估。敏感性与对比分析验证了该方法的可靠性与优势。
原文摘要 · Abstract (English)
In decision making, the cognitive fuzzy set (CFS) is a useful tool in expressing experts' complex assessments of alternatives. The distance of CFS, which plays an important role in decision analyses, is necessary when the CFS is applied in solving practical issues. However, as far as we know, the studies on the distance of CFS are few, and the current Minkowski distance of CFS ignores the hesitancy degree of CFS, which might cause errors. To fill the gap of the studies on the distance of CFS, because of the practicality of the Hausdorff distance, this paper proposes the improved cognitive fuzzy Minkowski (CF-IM) distance and the cognitive fuzzy Hausdorff (CF-H) distance to enrich the studies on the distance of CFS. It is found that the anti-perturbation ability of the CF-H distance is stronger than that of the CF-IM distance, but the information utilization of the CF-IM distance is higher than that of the CF-H distance. To balance the anti-perturbation ability and information utilization of the CF-IM distance and CF-H distance, the cognitive fuzzy combined (CF-C) distance is proposed by establishing the linear combination of the CF-IM distance and CF-H distance. Based on the CF-C distance, a combined-distanced-based score function of CFS is proposed to compare CFSs. The proposed score function is employed in lung cancer pain evaluation issues. The sensitivity and comparison analyses demonstrate the reliability and advantages of the proposed methods.
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