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Copula-Based Non-Metric Unfolding on Augmented Data Matrix

  • Marta Nai Ruscone,
  • Daniel Fernández,
  • Antonio D’Ambrosio

摘要

A multidimensional unfolding technique that is not prone to degenerate solutions and is based on multidimensional scaling of a complete data matrix is proposed. We adopt the strategy of augmenting the data matrix, trying to build a complete dissimilarity matrix, by using copula-based association measures among rankings (the individuals), and between rankings and objects (namely, a rank-order representation of the objects through tied rankings). The proposed technique leads to acceptable recovery of given preference structures.