Combining Dimensions and Features in Similarity-Based Representations

نویسندگان

  • Daniel J. Navarro
  • Michael D. Lee
چکیده

This paper develops a new representational model of similarity data that combines continuous dimensions with discrete features. An algorithm capable of learning these representations is described, and a Bayesian model selection approach for choosing the appropriate number of dimensions and features is developed. The approach is demonstrated on a classic data set that considers the similarities between the numbers 0 through 9.

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تاریخ انتشار 2002