深層学習を用いたアパレルアイテム平置き画像から着装状態への変換
URI | http://harp.lib.hiroshima-u.ac.jp/hiroshima-cu/metadata/12520 | ||||||||||||||||||||||||
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JSAI2019tsumugiwa.pdf
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Open Date
:2019-07-05
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Title |
深層学習を用いたアパレルアイテム平置き画像から着装状態への変換
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Title Alternative |
Image-to-image Translation from Apparel Item Image Placed Flat to Image Put on Using Deep Neural Networks
シンソウ ガクシュウ オ モチイタ アパレル アイテム ヒラオキ ガゾウ カラ チャクソウ ジョウタイ エノ ヘンカン
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Author |
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Abstract |
This paper deals with image-to-image translation of apparel items. The images are difficult to be translated because the items are variously set, when they are took photos: being placed flat, being put on the mannequin and so on. We try to investigate and improve the previous work also known as ‘pix2pix’ based on deep neural networks, especially deep convolutional generative adversarial network (DCGAN). We propose a new two-stage procedure. Some experimentation revealed that our proposed method was superior to the previous work, evaluated using structural similarity index. Moreover, we confirmed it generated item details (zipper, button) and patterns (dot) as the result of visual confirmation. This knowledge is very important because the fault image of the item without buttons should be completely different from the original item image. |
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Description |
2019年度(第33回):2019年6月4日-6月7日:新潟県新潟市(朱鷺メッセ新潟コンベンションセンター) |
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Journal Title |
人工知能学会全国大会論文集
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Volume |
33
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Spage |
1
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Epage |
4
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Published Date |
2019
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Publisher |
人工知能学会
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DOI | |||||||||||||||||||||||||
Language |
jpn
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NIIType |
Conference Paper
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Text Version |
出版社版
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Rights |
本著作物の著作権は人工知能学会に帰属します。本著作物は著作権者である人工知能学会の許可のもとに掲載するものです。ご利用に当たっては「著作権法」に従うことをお願いいたします。
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Note |
3Rin2-21 |
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Set |
hiroshima-cu
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