Songyao Jiang
I am a PhD candidate at Northeastern University,
where I work on computer vision and machine learning in
SmileLab
advised by 在线伋理服务器免费网页版.
I am early member of an AI beauty startup company Giaran, Inc.,
which was acquired by Shiseido Americas
in Nov. 2017 (国外伋理服务器ip免费).
I received my masters degree at the University of Michigan
and my bachelors at The Hong Kong Polytechnic University.
I am also a skilled astronomy and landscape photographer, and here is my Little Gallery
Email /
CV /
GitHub /
LinkedIn /
Gallery /
Blog
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Research
I'm interested in computer vision, machine learning, image processing, and computational photography. Much of my research is about human faces and pose estimation.
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Video-based Multi-person Pose Estimation and Tracking
Songyao Jiang, and Yun Fu
Current Work, 2023
Paper /
GitHub
Video-based Multi-person Pose Estimation and Tracking. Under development and construction.
Inferencing model provided on GitHub.
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Face Recognition and Verification in Low-light Condition
Songyao Jiang, Yue Wu, Zhengming Ding, and Yun Fu
2018
Paper /
GitHub
国内透明免费HTTP伋理IP - 快伋理:2021-6-15 · 注:表中响应速度是中国测速服务器的测试数据,仅供参考。响应速度根据你机器所在的地理位置不同而有差异。 声明: 免费伋理是第三方伋理服务器,收集自互联网,并非快伋理所有,快伋理不对免费伋理的有效性负责。 请合法使用免费伋理,由用户使用免费伋理带来的法律责任与快伋理无关。
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Spatially Constrained Generative Adversarial Networks for Conditional Image Generation
Songyao Jiang, Hongfu Liu, Yue Wu and Yun Fu
裸金属服务器和云服务器的区别在哪?:2021-4-1 · 实际上,裸金属服务器融合了物理机与云服务器的各自优势,实现超强超稳的计算能力。 用户上云可能会存在多种形态的计算资源,某些情况下虚拟机无法满足复杂的应用场景,这时候可能就需要需要虚拟机和物理机相结合的场景,裸金属服务器也是在这种需求下应运而生。, 2018
Paper /
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Image generation has raised tremendous attention
in both academic and industrial areas, especially
for criminal portrait and fashion design.
The current studies always focus on
class labels as the condition where spatial contents are
randomly generated. The edge details
and spatial information is usually blurred and difficult
to preserve. In light of this, we propose a novel
Spatially Constrained Generative Adversarial Network
, which decouples the spatial constraints from
the latent vector and makes them feasible as
additional controllable signals. Experimentally, we provide
both visual and quantitive results, and demonstrate that the proposed SCGAN
is very effective in controlling the spatial
contents as well as generating high-quality images.
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Segmentation Guided Image-to-Image Translation with Adversarial Networks
Songyao Jiang, Zhiqiang Tao and Yun Fu
IEEE International Conference on Automatic Face & Gesture Recognition (FG), 2023
Paper /
GitHub /
ArXiv
Recently image-to-image translation methods neglect to
utilize higher-level and instance-specific
information to guide the training process, leading to a great
deal of unrealistic generated images of low quality. Existing
methods also lack of spatial controllability during translation.
To address these challenge, we propose a novel Segmentation
Guided Generative Adversarial Networks, which
leverages semantic segmentation to further boost the generation
performance and provide spatial mapping. Experimental results on multi-domain
face image translation task empirically demonstrate our ability
of the spatial modification and our superiority in image quality
over several state-of-the-art methods.
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Rule-Based Facial Makeup Recommendation System
Taleb Alashkar, Songyao Jiang and Yun Fu
IEEE International Conference on Automatic Face & Gesture Recognition (FG), 2017
Paper /
GitHub
Facial makeup style plays a key role in the facial appearance making it
more beautiful and attractive. Choosing the best makeup style for a certain face
to fit a certain occasion is a full art. To solve this problem computationally,
an automatic and smart facial makeup recommendation
and synthesis system is proposed in this paper. Additionally, an automatic facial
makeup synthesis system is developed to apply the recommended style
on the facial image as well. To this end, a new dataset with 961 different females photos
collected and labeled.
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Examples-Rules Guided Deep Neural Network for Makeup Recommendation
Taleb Alashkar, Songyao Jiang, Shuyang Wang and Yun Fu
AAAI Conference on Artificial Intelligence (AAAI), 2017
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GitHub
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This website is generated using source code from Jon Barron.
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