用不完全四分体方法测量非度量多维标度中的相似度

A. Zaborski
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引用次数: 0

摘要

摘要研究背景:迄今为止,已经发展了许多直接度量多维尺度相似性的方法(如排名、排序、两两比较等)。方法的选择会影响被调查者的主观感受,如疲劳、因评价过多而产生的倦怠感,或难以表达相似度评价。目的:在提出的方法中,对于所有四元素集(四分体)的对象,被调查者被要求挑选出最相似和最不相似的对。由于四分体的数量随着物体数量的增加而迅速增加,因此该研究的目的是表明基于减少的四分体数量来测量相似性的可能性。研究方法:为了使标度结果独立于被调查者的主观影响,在给定距离矩阵的基础上进行分析。为了构建基于四分体的感知地图,使用MINISSA程序进行了多维缩放。通过Procrustes统计来测试结果点配置与基于距离矩阵确定的配置的匹配质量。结果:在不完全四分体的选择对多维标度的结果没有显著影响,即使四分体中的所有对物体不能同样频繁地出现。新颖性:一种计算非度量多维尺度相似性的新颖方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The Use of the Incomplete Tetrad Method for Measuring the Similarities in Nonmetric Multidimensional Scaling
Abstract Research background: So far, many methods of direct measurement of similarity in multidimensional scaling have been developed (e.g. ranking, sorting, pairwise comparison and others). The method selection affects the subjective feelings of the respondents, i.e. fatigue, weariness resulting from making numerous assessments, or difficulties in expressing similarity assessments. Purpose: In the proposed method, for all four-element sets (tetrads) of objects a respondent is asked to pick out the most similar and the least similar pair. Because the number of tetrads increases very rapidly with the number of objects, the aim of the study is to indicate the possibility of measuring similarities based on the reduced number of tetrads. Research methodology: In order to make scaling results independent from respondents’ subjective effects the analysis was made on the basis of the given distance matrix. To construct perceptual maps based on tetrads, multidimensional scaling with the use of the MINISSA program was performed. The quality of matching the resulting points configuration to the configuration determined based on the distance matrix was tested by a Procrustes statistic. Results: It was demonstrated that the choice of the incomplete set of tetrads has no significant effect on the results of multidimensional scaling, even when all pairs of objects in tetrads cannot be presented equally frequently. Novelty: An original method for calculating similarities in nonmetric multidimensional scaling.
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