Writer Identification Using GMM Supervectors and Exemplar-SVMs

نویسندگان

  • Vincent Christlein
  • David Bernecker
  • Florian Hönig
  • Andreas K. Maier
  • Elli Angelopoulou
چکیده

This paper describes a method for robust offline writer identification. We propose to use RootSIFT descriptors computed densely at the script contours. GMM supervectors are used as encoding method to describe the characteristic handwriting of an individual scribe. GMM supervectors are created by adapting a background model to the distribution of local feature descriptors. Finally, we propose to use Exemplar-SVMs to train a document-specific similarity measure. We evaluate the method on three publicly available datasets (ICDAR / CVL / KHATT) and show that our method sets new performance standards on all three datasets. Additionally, we compare different feature sampling strategies as well as other encoding methods.

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عنوان ژورنال:
  • Pattern Recognition

دوره 63  شماره 

صفحات  -

تاریخ انتشار 2017