2020
DOI: 10.48550/arxiv.2012.06186
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Writer Identification and Writer Retrieval Based on NetVLAD with Re-ranking

Shervin Rasoulzadeh,
Bagher Babaali

Abstract: This paper addresses writer identification and retrieval which is a challenging problem in the document analysis field. In this work, a novel pipeline is proposed for the problem by employing a unified neural network architecture consisting of the ResNet-20 as a feature extractor and an integrated NetVLAD layer, inspired by the vectors of locally aggregated descriptors (VLAD), in the head of the latter part. Having defined this architecture, triplet semi-hard loss function is used to directly learn an embeddin… Show more

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