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Papers/Semantic Human Matting

Semantic Human Matting

Quan Chen, Tiezheng Ge, Yanyu Xu, Zhiqiang Zhang, Xinxin Yang, Kun Gai

2018-09-05Image Matting
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Abstract

Human matting, high quality extraction of humans from natural images, is crucial for a wide variety of applications. Since the matting problem is severely under-constrained, most previous methods require user interactions to take user designated trimaps or scribbles as constraints. This user-in-the-loop nature makes them difficult to be applied to large scale data or time-sensitive scenarios. In this paper, instead of using explicit user input constraints, we employ implicit semantic constraints learned from data and propose an automatic human matting algorithm (SHM). SHM is the first algorithm that learns to jointly fit both semantic information and high quality details with deep networks. In practice, simultaneously learning both coarse semantics and fine details is challenging. We propose a novel fusion strategy which naturally gives a probabilistic estimation of the alpha matte. We also construct a very large dataset with high quality annotations consisting of 35,513 unique foregrounds to facilitate the learning and evaluation of human matting. Extensive experiments on this dataset and plenty of real images show that SHM achieves comparable results with state-of-the-art interactive matting methods.

Results

TaskDatasetMetricValueModel
Image MattingAM-2KMAD0.0102SHM
Image MattingAM-2KMSE0.0068SHM
Image MattingAM-2KSAD17.81SHM
Image MattingP3M-10kMAD0.0125SHM
Image MattingP3M-10kMSE0.01SHM
Image MattingP3M-10kSAD21.56SHM
Image MattingAIM-500Conn.170.67SHM
Image MattingAIM-500Grad.115.29SHM
Image MattingAIM-500MAD0.1012SHM
Image MattingAIM-500MSE0.0921SHM
Image MattingAIM-500SAD170.44SHM

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