Encoding CNN Activations for Writer Recognition
December 21, 2017 Β· Declared Dead Β· π International Workshop on Document Analysis Systems
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Authors
Vincent Christlein, Andreas Maier
arXiv ID
1712.07923
Category
cs.CV: Computer Vision
Citations
56
Venue
International Workshop on Document Analysis Systems
Last Checked
5 months ago
Abstract
The encoding of local features is an essential part for writer identification and writer retrieval. While CNN activations have already been used as local features in related works, the encoding of these features has attracted little attention so far. In this work, we compare the established VLAD encoding with triangulation embedding. We further investigate generalized max pooling as an alternative to sum pooling and the impact of decorrelation and Exemplar SVMs. With these techniques, we set new standards on two publicly available datasets (ICDAR13, KHATT).
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