An integrated approach to a predictive and ranking model of use error using fuzzy BWM and fuzzy TOPSIS.

IF 1.6 4区 医学 Q3 ERGONOMICS
Samaneh Salari, Ali Karimi, Ehsan Farvaresh, Rajabali Hokmabadi
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引用次数: 0

Abstract

Avoiding error in handling artifacts is crucial for achieving a high level of system reliability and safety assessment. This study develops a predictive and ranking model of use error (PRUE). In the first phase, use errors are systematically detected and anticipated via an inquiry process in two levels (activity and function). In the second phase, the fuzzy best-worst method (F-BWM) is employed to determine relative weights of three criteria including consequence of use error (CUE), detection of use error (DUE) and probability of use error (PUE). Fuzzy TOPSIS is then employed to rank use errors according to their risk level. The use errors of an infant ventilator device are assessed to demonstrate applicability of the PRUE method. The results of the present study confirm the reliability and applicability of this approach to assess artifact use errors. Moreover, the PRUE method can be utilized in investigation of user interface design.

使用模糊 BWM 和模糊 TOPSIS 建立使用误差预测和排序模型的综合方法。
避免在处理人工制品时出现错误对于实现高水平的系统可靠性和安全评估至关重要。本研究开发了一个使用错误预测和排序模型(PRUE)。在第一阶段,通过两个层次(活动和功能)的查询过程系统地检测和预测使用错误。在第二阶段,采用模糊优劣法(F-BWM)确定三个标准的相对权重,包括使用错误的后果(CUE)、使用错误的检测(DUE)和使用错误的概率(PUE)。然后采用模糊 TOPSIS 根据风险程度对使用错误进行排序。对婴儿呼吸机设备的使用错误进行了评估,以证明 PRUE 方法的适用性。本研究的结果证实了这种方法在评估人工制品使用错误方面的可靠性和适用性。此外,PRUE 方法还可用于研究用户界面设计。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
4.80
自引率
8.30%
发文量
152
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