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首页> 外文期刊>Journal of visual communication & image representation >Robust skin detection in real-world images
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Robust skin detection in real-world images

机译:真实图像中的强大皮肤检测

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摘要

Human skin detection in images is desirable in many practical applications, e.g., human-computer interaction and adult-content filtering. However, existing methods are mainly suffer from confusing backgrounds in real-world images. In this paper, we try to address this issue by exploring and combining several human skin properties, i.e. color property, texture property and region property. First, images are divided into superpixels, and robust skin seeds and background seeds are acquired through color property and texture property of skin. Then we combining color, region and texture properties of skin by proposing a novel skin color and texture based graph cuts (SCTGC) to acquire the final skin detection results. Comprehensive and comparative experiments show that the proposed method achieves promising performance and outperforms many state-of-the-art methods over publicly available challenging datasets with a great part of hard images. (C) 2015 Elsevier Inc. All rights reserved.
机译:在许多实际应用中,例如在人机交互和成人内容过滤中,人们希望在图像中进行人体皮肤检测。但是,现有方法主要遭受现实图像中背景混乱的困扰。在本文中,我们尝试通过探索和组合几种人类皮肤属性(即颜色属性,纹理属性和区域属性)来解决此问题。首先,将图像划分为超像素,并通过皮肤的颜色属性和纹理属性获取健壮的皮肤种子和背景种子。然后,我们通过提出一种新颖的基于皮肤颜色和纹理的图形切割(SCTGC)来组合皮肤的颜色,区域和纹理属性,以获取最终的皮肤检测结果。全面和比较的实验表明,与具有大量硬图像的公开可用的挑战性数据集相比,所提出的方法具有令人鼓舞的性能,并且优于许多最新技术。 (C)2015 Elsevier Inc.保留所有权利。

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