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		<identifier>oai:zbc.uz.zgora.pl:87263</identifier>
	    <datestamp>2025-08-07T13:19:33Z</datestamp>
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<dc:title xml:lang="pl"><![CDATA[Vanilla convolutional neural network is all you need for online and offline signature verification]]></dc:title>
<dc:creator><![CDATA[Yilmaz, Mustafa Berkay]]></dc:creator>
<dc:creator><![CDATA[Öztürk, Kagan]]></dc:creator>
<dc:subject xml:lang="pl"><![CDATA[signature verification]]></dc:subject>
<dc:subject xml:lang="pl"><![CDATA[representation learning]]></dc:subject>
<dc:subject xml:lang="pl"><![CDATA[deep learning]]></dc:subject>
<dc:subject xml:lang="pl"><![CDATA[convolutional neural networks]]></dc:subject>
<dc:description xml:lang="pl"><![CDATA[Recent advances in deep learning have been utilized successively to improve the performance of signature verification (SV) systems. Deep models proposed in the literature are complicated and need to learn many parameters to give acceptable error rates, requiring a lot of training data. On the other hand, those models are designed and hand-crafted specializing in the problem, online or offline SV.]]></dc:description>
<dc:description xml:lang="pl"><![CDATA[In this work, we suggest and show on popular datasets that similar and simple convolutional neural network (CNN) models can achieve state-of-the-art results both for offline and online SV problems. For offline SV, our work outperforms its counterparts with and without data augmentation. We also show that a very similar CNN architecture can be employed for online SV. To the best of our knowledge, this is the first work to show that CNNs can be used to learn online signature representations directly from raw data.]]></dc:description>
<dc:publisher><![CDATA[Zielona Góra: Uniwersytet Zielonogórski]]></dc:publisher>
<dc:contributor><![CDATA[Korbicz, Józef (1951- ) - red.]]></dc:contributor>
<dc:contributor><![CDATA[Uciński, Dariusz - red.]]></dc:contributor>
<dc:date><![CDATA[2025]]></dc:date>
<dc:type xml:lang="pl"><![CDATA[artykuł]]></dc:type>
<dc:identifier><![CDATA[http://www.zbc.uz.zgora.pl/repozytorium/Content/87263/AMCS_2025_35_2_12.pdf]]></dc:identifier>
<dc:identifier><![CDATA[https://zbc.uz.zgora.pl/repozytorium/dlibra/publication/101995/edition/87263/content]]></dc:identifier>
<dc:identifier><![CDATA[oai:zbc.uz.zgora.pl:87263]]></dc:identifier>
<dc:source xml:lang="pl"><![CDATA[AMCS, volume 35, number 2 (2025)]]></dc:source>
<dc:source xml:lang="pl"><![CDATA[https://www.amcs.uz.zgora.pl/?action=papers&issue=136]]></dc:source>
<dc:language><![CDATA[eng]]></dc:language>
<dc:relation><![CDATA[oai:zbc.uz.zgora.pl:publication:101995]]></dc:relation>
<dc:rights xml:lang="pl"><![CDATA[Biblioteka Uniwersytetu Zielonogórskiego]]></dc:rights>
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