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Observation-Specific Explanations Through Scattered Data Approximation

  • Valentina Ghidini,
  • Michael Multerer,
  • Jacopo Quizi,
  • Rohan Sen

摘要

This work introduces the definition of observation-specific explanations to assign a score to each data point proportional to its importance in the definition of the prediction process. Such explanations involve the identification of the most influential observations for the black-box model of interest. The proposed method involves estimating these explanations by constructing a surrogate model through scattered data approximation utilizing the orthogonal matching pursuit algorithm. The proposed approach is validated on both simulated and real-world datasets.