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Interactive Semantic Featuring for Text Classification

  • arXiv (Cornell University)
  • Cornell University
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Abstract

In text classification, dictionaries can be used to define human-comprehensible features. We propose an improvement to dictionary features called smoothed dictionary features. These features recognize document contexts instead of n-grams. We describe a principled methodology to solicit dictionary features from a teacher, and present results showing that models built using these human-comprehensible features are competitive with models trained with Bag of Words features.

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Publication details

DOI
10.48550/arxiv.1606.07545
OpenAlex
W2461752188
Document type
preprint
Language
EN
Source
arXiv (Cornell University)
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