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dc.contributor.author정제창-
dc.date.accessioned2016-08-24T07:31:30Z-
dc.date.available2016-08-24T07:31:30Z-
dc.date.issued2015-03-
dc.identifier.citationWeb Applications and Networking (WSWAN), 2015 2nd World Symposium on , Page. 1-6en_US
dc.identifier.isbn978-1-4799-8171-7-
dc.identifier.ismn978-1-4799-8172-4-
dc.identifier.urihttp://ieeexplore.ieee.org/xpls/abs_all.jsp?arnumber=7210294&tag=1-
dc.identifier.urihttp://hdl.handle.net/20.500.11754/22748-
dc.description.abstractDeep neural networks (DNNs) are increasingly being researched and employed as a solution to various image and video processing tasks. In this paper we address the problem of digital image compression using DNNs. We use two different DNN architectures for image compression i.e. one employing the logistic sigmoid neurons and the other engaging the hyperbolic tangent neurons. Experiments show that the network employing the hyperbolic tangent neurons out performs the one with the sigmoid neurons. Results indicate that the hyperbolic tangent neurons not only improve the PSNR of the reconstructed images by a significant 2~5dB on average but they also converge several order of magnitude faster than the logistic sigmoid neurons.en_US
dc.language.isoenen_US
dc.publisherWSWAN Organizing Committeeen_US
dc.subjectDeep neural networksen_US
dc.subjectartificial neuronsen_US
dc.subjecthyperbolic tangent neuronsen_US
dc.subjectimage compressionen_US
dc.subjectlogistic sigmoid neuronsen_US
dc.titleExploiting Deep Neural Networks for Digital Image Compressionen_US
dc.typeArticleen_US
dc.identifier.doi10.1109/WSWAN.2015.7210294-
dc.relation.page1-6-
dc.contributor.googleauthorHussain, Farhan-
dc.contributor.googleauthorJeong, Jechang-
dc.sector.campusS-
dc.sector.daehakCOLLEGE OF ENGINEERING[S]-
dc.sector.departmentDEPARTMENT OF ELECTRONIC ENGINEERING-
dc.identifier.pidjjeong-
Appears in Collections:
COLLEGE OF ENGINEERING[S](공과대학) > ELECTRONIC ENGINEERING(융합전자공학부) > Articles
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