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Generating Person Images with Appearance-aware Pose Stylizer

Siyu Huang, Haoyi Xiong, Zhi-Qi Cheng, Qingzhong Wang, Xingran Zhou, Bihan Wen, Jun Huang, Dejing Dou

Research output: Chapters, Conference Papers, Creative and Literary WorksRGC 32 - Refereed conference paper (with host publication)peer-review

Abstract

Generation of high-quality person images is challenging, due to the sophisticated entanglements among image factors, e.g., appearance, pose, foreground, background, local details, global structures, etc. In this paper, we present a novel end-to-end framework to generate realistic person images based on given person poses and appearances. The core of our framework is a novel generator called Appearance-aware Pose Stylizer (APS) which generates human images by coupling the target pose with the conditioned person appearance progressively. The framework is highly flexible and controllable by effectively decoupling various complex person image factors in the encoding phase, followed by re-coupling them in the decoding phase. In addition, we present a new normalization method named adaptive patch normalization, which enables region-specific normalization and shows a good performance when adopted in person image generation model. Experiments on two benchmark datasets show that our method is capable of generating visually appealing and realistic-looking results using arbitrary image and pose inputs.
Original languageEnglish
Title of host publicationProceedings of the Twenty-Ninth International Joint Conference on Artificial Intelligence
EditorsChristian Bessiere
PublisherInternational Joint Conferences on Artificial Intelligence
Pages623-629
ISBN (Electronic)9780999241165
DOIs
Publication statusPublished - Jan 2021
Event29th International Joint Conference on Artificial Intelligence (IJCAI 2020) - Virtual, Yokohama, Japan
Duration: 7 Jan 202115 Jan 2021
https://ijcai20.org/
http://static.ijcai.org/2020-accepted_papers.html
https://www.ijcai.org/Proceedings/2020/

Publication series

NameIJCAI International Joint Conference on Artificial Intelligence
Volume2021-January
ISSN (Print)1045-0823

Conference

Conference29th International Joint Conference on Artificial Intelligence (IJCAI 2020)
Abbreviated titleIJCAI 2020
PlaceJapan
CityYokohama
Period7/01/2115/01/21
Internet address

Bibliographical note

Research Unit(s) information for this publication is provided by the author(s) concerned.

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