Innovative approaches to multi-attribute decision-making in brain carcinoma diagnosis: a complex q-rung orthopair trapezoidal fuzzy framework and aggregation operator analysis

Pairote Yiarayong
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Abstract

This manuscript tackles brain carcinoma diagnosis through a multi-attribute decision-making lens. Using complex q-rung orthopair trapezoidal fuzzy sets, we develop tailored aggregation operators and explore their significance. We delve into idempotency theory, highlighting instances where monotonicity and boundedness fail. Building on these operators, we propose a novel methodology for fuzzy environment decision-making. Applied to medical diagnosis, we identify the most dangerous brain carcinoma type, showcasing practical utility. Comparative analyses confirm the superiority of our technique, promising advancements in diagnosis methodologies.

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脑癌诊断中多属性决策的创新方法:复杂q-rung正对梯形模糊框架和聚合算子分析
本手稿从多属性决策的角度探讨脑癌诊断问题。我们利用复杂的 q-rung 正对梯形模糊集,开发了量身定制的聚合算子,并探讨了它们的意义。我们深入研究了幂等性理论,强调了单调性和有界性失效的情况。在这些算子的基础上,我们提出了一种用于模糊环境决策的新方法。应用于医疗诊断,我们识别出了最危险的脑癌类型,展示了实用性。对比分析证实了我们技术的优越性,有望推动诊断方法的进步。
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